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One of these hazards is aerosols. Addressing this issue in areas that suffer from this hazard is of critical importance. Scientific research over the past two decades has shown that aerosol particles are one of the main pollutants from the perspective of public health and health. The purpose of the present study is to monitor and model aerosol temporal and spatial variations in Iran. Aerosols or airborne particles with health effects such as heart, vascular and respiratory diseases are associated. For this purpose, MODIS (or Moderate Resolution Imaging Spectroradiometer) and NOAA (or National Oceanic and Atmospheric Administration) satellite data and BTD (or Brightness Temperature Difference) were used. Given the 20-year study period (2000–2019), the output of much satellite data was divided into four five-year periods to monitor aerosols with high accuracy. The results showed that aerosol values in terms of intensity and frequency of optical depth (AOD) increased over the 20-year time series, and its intensity was higher in the last 5 years. According to the results obtained from the NODIS and NOAA satellite data and comparing their outputs, NOAA satellite data were associated with outliers, which was significantly different from the other cohort data. For this reason, the MODIS satellite image output was used to monitor aerosol images. The innovation of the present study is the use of remote sensing science to monitor the effects of aerosols on the environment and human’s health. According to the results from MODIS satellite data, the maximum optical depth (AOD) of the aerosols is for July 2003 with a value of 0.63, but according to the NOAA satellite data output, the maximum optical depth (AOD) of the aerosols is for March 2013 with a value of 2.54. As the values of aerosols increase in frequency and intensity and the areas with the highest intensity of aerosols have been identified, it can be overcome by careful planning of their problems. Areas, where the amount and volume of aerosols were higher, should be observed in health protocols. By preventing and maintaining good hygiene, the negative effects of aerosols can be reduced.",{"EN":246,"VI":247},"Monitoring of aerosols and studying its effects on the environment and humans health in Iran","Quan trắc aerosol và nghiên cứu tác động của aerosol đến môi trường cùng sức khỏe con người tại Iran",{"VOID":249},"Al-Hurban, A. E., & Al-Ostad, A. N. (2010). Textural characteristics of dust fallout and potential effect on public health in Kuwait City and suburbs. Environmental Geology, 60(1), 169–181. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs12665-009-0177-3.\nAmarloo, J., Javid, H., Shakarian, R., Rezaei, F., & Vahdani, A. (2017). Dust particles and their impact on air quality. 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Nuclear Instruments and Methods in Physics Research, 10, 908.\nYe, B., Ji, X., Yang, H., Yao, X., Chan, C., Cadle, S., et al. (2003). Concentration and chemical composition of PM2.5 in Shanghai for a 1-year period. Atmospheric Environment, 37(4), 449–510. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fs1352-2310(02)00918-4.\nZaidoon, T. A., Raghad, H., & Nadia, A. (2019). Integrated TRMM data and standardized precipitation index to monitor the meteorological drought. Civil Engineering Journal, 5(7), 1590–1598. https:\u002F\u002Fdoi.org\u002F10.28991\u002Fcej-2019-03091355.\nZalesna, E., Grzonka, J., Rubel, M., Carrasco, A., Widdowson, V., Baron, A., et al. (2017). Studies of dust from JET with the ITER like wall: Composition and internal structure. Nuclear Materials and Energy, 8(12), 582–587. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.nme.2016.11.027.\nZhiyuan, H., Jianping, H., Chun, Z., Jiangrong, B., Qinjian, J., Yun, Q., et al. (2019). Modeling the contributions of Northern Hemisphere dust sources to dust outflow from East Asia. Atmospheric Environment, 6(14), 1352–2310. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.atmosenv.2019.01.022.\nZielhofer, C., Hans, S., William, F., Birgit, S., Elisabeth, D., Michael, S., et al. (2017). Millennial scale fluctuations in Saharan dust supply across the decline of the African humid period. Quatemary Science Reviews, 4(171), 119–135. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.quascirev.2017.07.010.",{"VOID":251},"10.1007\u002Fs10653-020-00709-w","PUBLICATION","VERIFIED","2025-02-22T02:49:57.969+00:00","Auto Verify",[257],"VI","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10653-020-00709-w",[260,276,291,306,321,334],{"id":261,"sortIndex":19,"researcher":18,"roles":262,"affiliations":264,"properties":273,"displayName":275,"givenName":18,"familyName":18},"ac870052-c2b1-4746-8a2f-dbc935123d79",[263],"AUTHOR",[265],{"id":266,"sortIndex":19,"affiliation":267,"properties":18},"01096c8f-645f-418c-8be9-6b89043ebf53",{"id":266,"createTime":18,"updateTime":18,"relativeEntities":268,"slug":18,"properties":269,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":272,"statistic":18},[],{"title":270},{"VI":271},"Department of Physical Geography, University of Mohaghegh Ardabili, Ardabil, Iran",[],{"title":274},{"VI":275},"Aghil Madadi",{"id":277,"sortIndex":167,"researcher":18,"roles":278,"affiliations":279,"properties":288,"displayName":290,"givenName":18,"familyName":18},"2ed9ace9-34f5-4fb2-a31b-5a458b83faa3",[263],[280],{"id":281,"sortIndex":19,"affiliation":282,"properties":18},"a100605c-bb31-4bfd-ad85-aaed9389a881",{"id":281,"createTime":18,"updateTime":18,"relativeEntities":283,"slug":18,"properties":284,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":287,"statistic":18},[],{"title":285},{"VI":286},"Department of Geography, Payame Noor University (PNU), Tehran, Iran",[],{"title":289},{"VI":290},"Atefeh Hoseini 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Kashani",{"id":307,"sortIndex":174,"researcher":18,"roles":308,"affiliations":309,"properties":318,"displayName":320,"givenName":18,"familyName":18},"21af39ce-9ade-4474-9700-d07aaaf2b288",[263],[310],{"id":311,"sortIndex":19,"affiliation":312,"properties":18},"1e47c3c3-81ec-46e5-9d36-087f54a8eae2",{"id":311,"createTime":18,"updateTime":18,"relativeEntities":313,"slug":18,"properties":314,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":317,"statistic":18},[],{"title":315},{"VI":316},"Geography and Urban and Rural Planning, Faculty of Literature and Humanities, University of Mohaghegh Ardabili, Ardabil, Iran",[],{"title":319},{"VI":320},"Ata Ghaffari Gilandeh",{"id":322,"sortIndex":195,"researcher":18,"roles":323,"affiliations":324,"properties":331,"displayName":333,"givenName":18,"familyName":18},"c848b358-4b14-47b1-a5b6-7aacf31521a6",[263],[325],{"id":296,"sortIndex":19,"affiliation":326,"properties":18},{"id":296,"createTime":18,"updateTime":18,"relativeEntities":327,"slug":18,"properties":328,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":330,"statistic":18},[],{"title":329},{"VI":301},[],{"title":332},{"VI":333},"Vahid 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Kianian","ARTICLE",{"url":258,"publisher":351,"properties":411},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":352,"slug":10,"properties":353,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":356,"manageAffiliations":380,"indexDatabases":391,"url":18,"thumbnailPath":18,"statistic":406,"gsStatistic":18,"type":231,"analyzePriority":18},[],{"issn":354,"title":355},{"VOID":13},{"VOID":15},[357,361,365,369,373,377],{"id":22,"createTime":18,"updateTime":18,"relativeEntities":358,"label":359,"description":360,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":25},{},{"id":34,"createTime":18,"updateTime":18,"relativeEntities":362,"label":363,"description":364,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":37},{},{"id":28,"createTime":18,"updateTime":18,"relativeEntities":366,"label":367,"description":368,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":31},{},{"id":40,"createTime":18,"updateTime":18,"relativeEntities":370,"label":371,"description":372,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":43},{},{"id":46,"createTime":18,"updateTime":18,"relativeEntities":374,"label":375,"description":376,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":49},{},{"id":52,"createTime":18,"updateTime":18,"relativeEntities":378,"label":379,"description":18,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":55},[381,386],{"id":58,"createTime":18,"updateTime":18,"relativeEntities":382,"slug":18,"properties":383,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":385,"statistic":18},[],{"title":384},{"EN":62},[64],{"id":66,"createTime":18,"updateTime":18,"relativeEntities":387,"slug":18,"properties":388,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":390,"statistic":18},[],{"title":389},{"EN":70},[],[392,399],{"id":74,"indexDatabase":393,"url":85,"indexYears":86,"academicFieldIds":398,"indexDatabaseRanking":94},{"id":76,"createTime":18,"updateTime":18,"relativeEntities":394,"label":395,"description":396,"key":82,"publicationTags":397,"standard":18},[],{"EN":79,"VI":79},{"EN":79,"VI":81},[84],[88,89,90,91,92,93],{"id":96,"indexDatabase":400,"url":18,"indexYears":18,"academicFieldIds":405,"indexDatabaseRanking":18},{"id":98,"createTime":18,"updateTime":18,"relativeEntities":401,"label":402,"description":403,"key":105,"publicationTags":404,"standard":18},[],{"EN":101,"VI":101},{"EN":103,"VI":104},[107,108],[110,111,112,113],{"impactFactor":19,"impactFactorByYear":407,"i10Index":126,"i10IndexLast5Year":127,"totalPublication":128,"totalPublicationByYear":408,"totalCitation":164,"totalCitationByYear":409,"totalCitationPerPublication":196,"totalCitationPerPublicationByYear":410,"hindexLast5Year":151,"hindex":151},{"2012":116,"2013":117,"2014":117,"2015":118,"2016":117,"2017":119,"2018":120,"2019":121,"2020":122,"2021":123,"2022":124,"2023":125},{"1979":130,"1980":130,"1981":131,"1982":132,"1983":133,"1984":133,"1985":133,"1986":130,"1987":134,"1988":135,"1989":136,"1990":137,"1991":138,"1992":139,"1993":136,"1994":140,"1995":135,"1996":139,"1997":130,"1998":141,"1999":142,"2000":139,"2001":141,"2002":137,"2003":143,"2004":138,"2005":144,"2006":145,"2007":146,"2008":147,"2009":148,"2010":149,"2011":150,"2012":151,"2013":152,"2014":153,"2015":154,"2016":155,"2017":156,"2018":157,"2019":158,"2020":159,"2021":160,"2022":161,"2023":162,"2024":163},{"1979":166,"1981":133,"1982":167,"1983":137,"1984":168,"1985":169,"1986":168,"1987":170,"1988":171,"1989":132,"1990":172,"1991":173,"1992":174,"1994":175,"1995":176,"1996":177,"2005":178,"2006":160,"2007":179,"2008":180,"2009":181,"2010":182,"2011":183,"2012":184,"2013":185,"2014":186,"2015":160,"2016":187,"2017":188,"2018":189,"2019":190,"2020":191,"2021":192,"2022":193,"2023":194,"2024":195},{"1979":198,"1981":199,"1982":200,"1983":201,"1984":202,"1985":203,"1986":204,"1987":204,"1988":205,"1989":206,"1990":207,"1991":208,"1992":209,"1994":210,"1995":211,"1996":212,"2005":213,"2006":214,"2007":215,"2008":216,"2009":217,"2010":218,"2011":219,"2012":220,"2013":221,"2014":222,"2015":223,"2016":224,"2017":225,"2018":226,"2019":227,"2020":228,"2021":229,"2022":123,"2023":230,"2024":200},{"pages":412,"volume":414},{"VOID":413},"317-331",{"VOID":415},"43","2020-09-09",2020,[107,94],false,{"id":421,"createTime":422,"updateTime":423,"relativeEntities":424,"slug":425,"properties":426,"entityType":252,"verifyStatus":253,"verifyTime":436,"verifyNote":255,"languages":18,"translateLanguages":437,"viewCount":19,"primaryUrl":438,"fullTextUrl":18,"authors":439,"publicationType":349,"publisherRelationship":593,"citationCount":18,"citationInfo":18,"publishDate":659,"publishYear":660,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":661,"openAccess":18,"references":18,"isForceReanalyzing":419},"600da768-d953-4fba-a92f-f238709e5afd","2024-01-10T07:24:22.038+00:00","2026-09-08T12:15:05.112+00:00",[],"Fate-of-endosulfan-in-ginseng-farm-and-effect-of-granular-biochar-treatment-on-endosulfan-accumulation-in-ginseng",{"abstract":427,"title":429,"references":432,"doi":434},{"EN":428},"Endosulfan was widely used as an insecticide in the agricultural sector before its environmental persistence was fully understood. Although its fate and transport in the environment have been studied, the effects of historic endosulfan residues in soil and its bioaccumulation in crops are not well understood. This knowledge gap was addressed by investigating the dissipation and bioaccumulation of endosulfan in ginseng as a perennial crop in fresh and aged endosulfan-contaminated fields. In addition, the effect of granular biochar (GBC) treatment on the bioaccumulation factor (BAF) of endosulfan residue in ginseng was assessed. The 50% dissipation time (DT50) of the total endosulfan was over 770 days in both the fresh and aged soils under mulching conditions. This was at least twofold greater than the reported (6– > 200 days) in arable soil. Among the endosulfan congeners, the main contributor to the soil residue was endosulfan sulfate, as observed from 150 days after treatment. The BAF for the 2-year-old ginseng was similar in the fresh (1.682–2.055) and aged (1.372–2.570) soils, whereas the BAF for the 3-year-old ginseng in the aged soil (1.087–1.137) was lower than that in the fresh soil (1.771–2.387). The treatment with 0.3 wt% GBC extended the DT50 of endosulfan in soil; however, this could successfully suppress endosulfan uptake, and reduced the BAFs by 66.5–67.7% in the freshly contaminated soil and 32.3–41.4% in the aged soil. Thus, this adsorbent treatment could be an effective, financially viable, and sustainable option to protect human health by reducing plant uptake of endosulfan from contaminated soils.",{"EN":430,"VI":431},"Fate of endosulfan in ginseng farm and effect of granular biochar treatment on endosulfan accumulation in ginseng","Số phận của endosulfan trong trang trại nhân sâm và ảnh hưởng của xử lý biochar dạng hạt lên sự tích lũy endosulfan trong nhân sâm",{"VOID":433},"Abbas, F., Hammad, H. M., Ishaq, W., Farooque, A. A., Bakhat, H. 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A comparison of the effectiveness of QuEChERS, FaPEx and a modified QuEChERS method on the determination of organochlorine pesticides in ginseng. PLoS ONE, 16, e0246108.\nChalise, D., Kumar, L., Sharma, R., & Kristiansen, P. (2020). Assessing the impacts of tillage and mulch on soil erosion and corn yield. Agronomy, 10, 63.\nChoi, G. H., Jeong, D. K., Lim, S. J., Ro, J. H., Ryu, S. H., Park, B. J., et al. (2017). Plant uptake potential of endosulfan from soil by carrot and spinach. Journal of Applied Biological Chemistry, 60(4), 339–342.\nChoi, G. H., Lee, D. Y., Bruce-Vanderpuije, P., Song, A. R., Lee, H. S., Park, S. W., et al. (2021). Environmental and dietary exposure of perfluorooctanoic acid and perfluorooctanesulfonic acid in the Nakdong River, Korea. Environmental Geochemistry and Health, 43, 347–360.\nChoi, G. H., Lee, D. Y., Ryu, S. H., Park, B. J., Moon, B. C., & Kim, J. H. (2018a). Investigation of the bioconcentration factor of endosulfan for rice from soil. 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Environmental Geochemistry and Health, 43, 2193–2202.\nLubick, N. (2010). Environment endosulfan’s exit: U.S. EPA pesticide review leads to a ban. Science, 328, 1466–1466.\nMishra, P. C., & Patel, R. K. (2008). Removal of endosulfan by sal wood charcoal. Journal of Hazardous Materials, 152, 730–736.\nMitton, F. M., Gonzalez, M., Monserrat, J. M., & Miglioranza, K. S. B. (2016). Potential use of edible crops in the phytoremediation of endosulfan residues in soil. Chemosphere, 148, 300–306.\nMukherjee, I. (2012). Influence of organic amendments on the degradation of endosulfan. Bulletin of Environmental Contamination and Toxicology, 89, 334–339.\nMwango, S. B., Msanya, B. M., Mtakwa, P. W., Kimaro, D. N., Deckers, J., & Poesen, J. (2016). Effectiveness of mulching under miraba in controlling soil erosion, fertility restoration and crop yield in the Usambara Mountains Tanzania. Land Degradation and Development, 27(4), 1266–1275.\nNegro, C. L., Senkman, L. E., Vierling, J., Repetti, M. R., Garcia, S. R., & Collins, P. (2012). Bioaccumulation in freshwater crabs. Endosulfan accumulation in different tissues of zilchiopsis collastinensis P. (Decapoda: Trichodactylidae). Bulletin of Environmental Contamination and Toxicology, 89, 1000–1003.\nNtow, W. J., Ameyibor, J., Kelderman, P., Drechsel, P., & Gijzen, H. J. (2007). Dissipation of endosulfan in field-grown tomato (Lycopersicon esculentum) and cropped soil at Akumadan, Ghana. Journal of Agricultural and Food Chemistry, 55, 10864–10871.\nOh, J. Y., Kim, Y. J., Jang, M. G., Joo, S. C., Kwon, W. S., Kim, S. Y., et al. (2014). Investigation of ginsenosides in different tissues after elicitor treatment in Panax ginseng. Journal of Ginseng Research, 38(4), 270–277.\nOh, K. Y., Choi, G. H., Bae, J. H., Lee, D. Y., Lee, S. W., & Kim, J. H. (2020). Effect of soil organic matter content on plant uptake factor of ginseng for endosulfan. Journal of Applied Biological Chemistry, 63(4), 401–406.\nPan, J., Zheng, W., Pang, X., Zhang, J., Chen, X., Yuan, M., et al. (2021). Comprehensive investigation on ginsenosides in different parts of a garden-cultivated ginseng root and rhizome. Molecules, 26(6), 1696.\nParsottambhai, S. M. K., & Rawat, M. (2020). Effect of mulching on growth, yield and quality of onion (Allium cepa L.): A review. Journal of Pharmacognosy and Phytochemistry, 9(6), 1861–1863.\nPonnam, V., Katari, N. K., Mandapati, R. N., Nannapaneni, S., Tondepu, S., & Jonnalagadda, S. B. (2020). Efficacy of biochar in removal of organic pesticide, Bentazone from watershed systems. Journal of Environmental Science and Health, Part B, 55(4), 396–405.\nQian, S., Zhu, H., Xiong, B., Zheng, G., Zhang, J., & Xu, W. (2017). Adsorption and desorption characteristics of endosulfan in two typical agricultural soils in Southwest China. Environmental Science and Pollution Research, 24(12), 11493–11503.\nSathishkumar, P., Mohan, K., Ganesan, A. R., Govarthanan, M., Yusoff, A. R. M., & Gu, F. L. (2021). Persistence, toxicological effect and ecological issues of endosulfan – A review. Journal of Hazardous Materials, 416, 125779.\nShivaramaiah, H. M., Sanchez-Bayo, F., Al-Rifai, J., & Kennedy, I. R. (2005). The fate of endosulfan in water. Journal of Environmental Science and Health, Part B, 40(5), 711–720.\nSingh, R. P., & Singh, S. (2008). Adsorption and movement of endosulfan in soils: A verification of th co-solvent theory and a comparison of batch equilibrium and soil thin layer chromatography results. Adsorption Science and Technology, 26(3), 185–199.\nSong, Y. N., Hong, H. G., Son, J. S., Kwon, Y. O., Lee, H. H., Kim, J. H., et al. (2019). Investigation of ginsenosides and antioxidant activities in the roots, leaves, and stems of ydroponic-cultured ginseng (Panax ginseng Meyer). Preventive Nutrition and Food Science, 24(3), 283–292.\nSun, Y., Chang, X. P., Zhao, L. X., Zhou, B., Weng, L. P., & Li, Y. T. (2020). Comparative study on the pollution status of organochlorine pesticides (OCPs) and bacterial community diversity and structure between plastic shed and open-field soils from northern China. Science of the Total Environment, 741, 139620.\nTariq, M. Y., Afzal, S., & Hussain, I. (2006). Degradation and persistence of cotton pesticides in sandy loam soils from Punjab, Pakistan. Environmental Research, 100, 184–196.\nToledo, M. C. F., & Jonsson, C. M. (1992). Bioaccumulation and elimination of endosulfan in zebra fish (Brachydanio rerio). Pest Management Science, 36, 207–211.\nVaikosen, E. N., Olu-Owolabi, B. I., Gibson, L. T., Adebowale, K. O., Davidson, C. M., & Asogwa, U. (2019). Kinetic field dissipation and fate of endosulfan after application on Theobroma cacao farm in tropical Southwestern Nigeria. Environmental Monitoring and Assessment, 191, 196.\nWeber, J., Halsall, C. J., Muir, D., Teixeira, C., Small, J., Solomon, K., et al. (2010). Endosulfan, a global pesticide: A review of its fate in the environment and occurrence in the Arctic. Science of the Total Environment, 408, 2966–2984.\nZhang, N., Yang, Y., Tao, S., Liu, Y., & Shi, K. L. (2011). Sequestration of organochlorine pesticides in soils of distinct organic carbon content. Environmental Pollution, 159, 700–705.\nZhao, Z. H., Zeng, H. A., Wu, J. L., & Zhang, L. (2013). Organochlorine pesticide (OCP) residues in mountain soils from Tajikistan. Environmetal Science Process and Impacts, 15, 608–616.",{"VOID":435},"10.1007\u002Fs10653-021-01152-1","2025-02-06T23:27:36.060+00:00",[257],"https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10653-021-01152-1",[440,455,470,485,498,511,524,537,551,566,580],{"id":441,"sortIndex":19,"researcher":18,"roles":442,"affiliations":443,"properties":452,"displayName":454,"givenName":18,"familyName":18},"80fbdade-4152-48e9-993d-b1adab5902a9",[263],[444],{"id":445,"sortIndex":19,"affiliation":446,"properties":18},"37e6ca3c-6022-4395-ab93-b054406667a9",{"id":445,"createTime":18,"updateTime":18,"relativeEntities":447,"slug":18,"properties":448,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":451,"statistic":18},[],{"title":449},{"VI":450},"Department of Agricultural Chemistry, Institutes of Agriculture and Life Science (IALS), Gyeongsang National University, Jinju, Republic of 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orceReanalyzing":419},"725de914-b91d-415e-a6d9-0f439f5316a3","2024-01-05T19:12:01.597+00:00","2026-09-08T07:14:25.764+00:00",[],"Hydrogeochemical-characteristics-of-a-multi-layered-coastal-aquifer-system-in-the-Mekong-Delta-Vietnam",{"abstract":669,"title":671,"references":674,"doi":676},{"EN":670},"Groundwater is a primary freshwater source for various domestic, industrial and agricultural purposes, especially in coastal regions where there are lacking surface water supply. However, groundwater quality in coastal regions is often threatened by seawater intrusion and contamination due to both anthropogenic activities and natural processes. Therefore, insights into groundwater geochemistry and occurrences are necessary for sustainable groundwater management in coastal regions. The main aim of this study is to investigate the hydrogeochemical characteristics and their influencing factors in a coastal area of the Mekong Delta, Vietnam (MD). A total of 286 groundwater samples were taken from shallow and deep aquifers for analyzing major ions and stable isotopes. The results show that deep groundwater is dominated by Ca–HCO$$_{3}$$, Ca–Na–HCO$$_3$$, Ca–Mg–Cl, and Na–HCO$$_3$$ while shallow groundwater is dominated by the Na–Cl water type. In this region, the main geochemical processes controlling groundwater chemistry are ion exchanges, mineralization and evaporation. Groundwater salinization in coastal aquifers of the Mekong Delta is caused by (1) paleo-seawater intrusion and evaporation occurring in the Holocene and Pleistocene aquifers, (2) dissolution of salt sediment\u002Frock and leakage of saline from upper to lower aquifers due to excessive groundwater exploitation and hydraulic connection. High nitrate concentrations in both shallow and deep aquifers are related to human activities. These results imply that groundwater extraction may exacerbate groundwater quality-related problems and suitable solutions for sustainable groundwater management in the coastal area of the Mekong Delta are needed.",{"EN":672,"VI":673},"Hydrogeochemical characteristics of a multi-layered coastal aquifer system in the Mekong Delta, Vietnam","Đặc điểm địa hóa thủy văn của hệ thống tầng chứa nước ven biển nhiều lớp ở đồng bằng sông Cửu Long, Việt Nam",{"VOID":675},"Abboud, I. A. (2018). Geochemistry and quality of groundwater of the Yarmouk basin aquifer, north Jordan. Environmental Geochemistry and Health, 40, 1405–1435.\nAbu-alnaeem, M. F., Yusoff, I., Ng, T. F., Alias, Y., & Raksmey, M. (2018). Assessment of groundwater salinity and quality in Gaza coastal aquifer, Gaza Strip, Palestine: An integrated statistical, geostatistical and hydrogeochemical approaches study. Science of The Total Environment, 615, 972–989.\nAbu Al Naeem, M. F., Yusoff, I., Ng, T. F., Maity, J. P., & Alias, Y. (2019). A study on the impact of anthropogenic and geogenic factors on groundwater salinization and seawater intrusion in Gaza coastal aquifer, Palestine: An integrated multi-techniques approach. Journal of African Earth Sciences, 156, 75–93.\nAhada, C. P. S., & Suthar, S. (2018). Groundwater nitrate contamination and associated human health risk assessment in southern districts of Punjab, India. Environmental Science and Pollution Research, 25, 25336–25347.\nAji, K., Tang, C., Song, X., Kondoh, A., Sakura, Y., Yu, J., et al. (2007). Characteristics of chemistry and stable isotopes in groundwater of Chaobai and Yongding River basin, North China Plain. Hydological Processes, 22(1), 63–72.\nAn, T. D., Tsujimura, M., Le Phu, V., Kawachi, A., & Ha, D. T. (2014). Chemical characteristics of surface water and groundwater in Coastal Watershed, Mekong Delta, Vietnam. Procedia Environmental Sciences, 20, 712–721.\nAn, Y., & Lu, W. (2018). Hydrogeochemical processes identification and groundwater pollution causes analysis in the northern Ordos Cretaceous Basin, China. Environmental Geochemistry and Health, 40, 1209–1219.\nAn, T. D., Tsujimura, M., Phu, V. L., Ha, D. T., & Hai, N. V. (2018). Isotopic and hydrogeochemical signatures in evaluating groundwater quality in the coastal area of the Mekong Delta, Vietnam. In D. Tien Bui, A. Ngoc Do, H.-B. Bui, & N.-D. Hoang (Eds.), Advances and applications in geospatial technology and earth resources: Proceedings of the international conference on geo-spatial technologies and earth resources 2017 (pp. 293–314). Cham: Springer International Publishing.\nAmeur, M., Hamzaoui-Azaza, F., & Gueddari, M. (2016). Nitrate contamination of Sminja aquifer groundwater in Zaghouan, northeast Tunisia: WQI and GIS assessments. Desalination and Water Treatment, 57, 23698–23708.\nAmiri, V., Nakhaei, M., Lak, R., & Kholghi, M. (2016). Investigating the salinization and freshening processes of coastal groundwater resources in Urmia aquifer, NW Iran. Environmental Monitoring and Assessment, 188, 233.\nAppelo, C. A. J., & Postma, D. (2004). Geochemistry, groundwater and pollution. Boca Raton: CRC Press.\nArgamasilla, M., Barberá, J. A., & Andreo, B. (2017). Factors controlling groundwater salinization and hydrogeochemical processes in coastal aquifers from southern Spain. 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E. (2012). Hydrochemical characterization of the water resources in the coastal environments of the outer Río de la Plata estuary, Argentina. Journal of South American Earth Sciences, 37, 113–121.\nCary, L., Petelet-Giraud, E., Bertrand, G., Kloppmann, W., Aquilina, L., Martins, V., et al. (2015). Origins and processes of groundwater salinization in the urban coastal aquifers of Recife (Pernambuco, Brazil): A multi-isotope approach. Science of The Total Environment, 530(531), 411–429.\nChau, N. D. G., Sebesvari, Z., Amelung, W., & Renaud, F. G. (2015). Pesticide pollution of multiple drinking water sources in the Mekong Delta, Vietnam: evidence from two provinces. Environmental science and pollution research, 22(12), 9042–9058.\nChekirbane, A., Tsujimura, M., Lachaal, F., Khadhar, S., Mlayah, A., & Kawachi, A. (2016). 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Vo",{"id":737,"sortIndex":174,"researcher":18,"roles":738,"affiliations":739,"properties":755,"displayName":757,"givenName":18,"familyName":18},"a295953a-4bc5-4f8d-bd9a-bdf55566c874",[263],[740,746],{"id":687,"sortIndex":19,"affiliation":741,"properties":18},{"id":687,"createTime":18,"updateTime":18,"relativeEntities":742,"slug":18,"properties":743,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":745,"statistic":18},[],{"title":744},{"VI":692},[],{"id":747,"sortIndex":167,"affiliation":748,"properties":754},"214e4eab-5989-4ae7-be92-ce27fbdcf334",{"id":747,"createTime":18,"updateTime":18,"relativeEntities":749,"slug":18,"properties":750,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":753,"statistic":18},[],{"title":751},{"VI":752},"Department of Hydrogeology, Helmholtz Centre for Environmental Research - UFZ, Leipzig, Germany",[],{},{"title":756},{"VI":757},"Van Tam Nguyen",{"id":759,"sortIndex":195,"researcher":18,"roles":760,"affiliations":761,"properties":768,"displayName":770,"givenName":18,"familyName":18},"e220f33f-dffa-4da2-a0c8-6c12f2b62939",[263],[762],{"id":695,"sortIndex":19,"affiliation":763,"properties":18},{"id":695,"createTime":18,"updateTime":18,"relativeEntities":764,"slug":18,"properties":765,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":767,"statistic":18},[],{"title":766},{"VI":700},[],{"title":769},{"VI":770},"Dwight Kambuku",{"id":772,"sortIndex":170,"researcher":18,"roles":773,"affiliations":774,"properties":783,"displayName":785,"givenName":18,"familyName":18},"0a724d40-0cfd-4d6b-90bd-37dd56d2278b",[263],[775],{"id":776,"sortIndex":19,"affiliation":777,"properties":18},"37815329-c5ad-43c8-9d35-dba502cf6144",{"id":776,"createTime":18,"updateTime":18,"relativeEntities":778,"slug":18,"properties":779,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":782,"statistic":18},[],{"title":780},{"VI":781},"Institute for Water and Environment Research, Thuy Loi University, Ho Chi Minh, Vietnam",[],{"title":784},{"VI":785},"Thanh Duc Dang",{"url":680,"publisher":787,"properties":847},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":788,"slug":10,"properties":789,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":792,"manageAffiliations":816,"indexDatabases":827,"url":18,"thumbnailPath":18,"statistic":842,"gsStatistic":18,"type":231,"analyzePriority":18},[],{"issn":790,"title":791},{"VOID":13},{"VOID":15},[793,797,801,805,809,813],{"id":22,"createTime":18,"updateTime":18,"relativeEntities":794,"label":795,"description":796,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":25},{},{"id":34,"createTime":18,"updateTime":18,"relativeEntities":798,"label":799,"description":800,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":37},{},{"id":28,"createTime":18,"updateTime":18,"relativeEntities":802,"label":803,"description":804,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":31},{},{"id":40,"createTime":18,"updateTime":18,"relativeEntities":806,"label":807,"description":808,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":43},{},{"id":46,"createTime":18,"updateTime":18,"relativeEntities":810,"label":811,"description":812,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":49},{},{"id":52,"createTime":18,"updateTime":18,"relativeEntities":814,"label":815,"description":18,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":55},[817,822],{"id":58,"createTime":18,"updateTime":18,"relativeEntities":818,"slug":18,"properties":819,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":821,"statistic":18},[],{"title":820},{"EN":62},[64],{"id":66,"createTime":18,"updateTime":18,"relativeEntities":823,"slug":18,"properties":824,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":826,"statistic":18},[],{"title":825},{"EN":70},[],[828,835],{"id":74,"indexDatabase":829,"url":85,"indexYears":86,"academicFieldIds":834,"indexDatabaseRanking":94},{"id":76,"createTime":18,"updateTime":18,"relativeEntities":830,"label":831,"description":832,"key":82,"publicationTags":833,"standard":18},[],{"EN":79,"VI":79},{"EN":79,"VI":81},[84],[88,89,90,91,92,93],{"id":96,"indexDatabase":836,"url":18,"indexYears":18,"academicFieldIds":841,"indexDatabaseRanking":18},{"id":98,"createTime":18,"updateTime":18,"relativeEntities":837,"label":838,"description":839,"key":105,"publicationTags":840,"standard":18},[],{"EN":101,"VI":101},{"EN":103,"VI":104},[107,108],[110,111,112,113],{"impactFactor":19,"impactFactorByYear":843,"i10Index":126,"i10IndexLast5Year":127,"totalPublication":128,"totalPublicationByYear":844,"totalCitation":164,"totalCitationByYear":845,"totalCitationPerPublication":196,"totalCitationPerPublicationByYear":846,"hindexLast5Year":151,"hindex":151},{"2012":116,"2013":117,"2014":117,"2015":118,"2016":117,"2017":119,"2018":120,"2019":121,"2020":122,"2021":123,"2022":124,"2023":125},{"1979":130,"1980":130,"1981":131,"1982":132,"1983":133,"1984":133,"1985":133,"1986":130,"1987":134,"1988":135,"1989":136,"1990":137,"1991":138,"1992":139,"1993":136,"1994":140,"1995":135,"1996":139,"1997":130,"1998":141,"1999":142,"2000":139,"2001":141,"2002":137,"2003":143,"2004":138,"2005":144,"2006":145,"2007":146,"2008":147,"2009":148,"2010":149,"2011":150,"2012":151,"2013":152,"2014":153,"2015":154,"2016":155,"2017":156,"2018":157,"2019":158,"2020":159,"2021":160,"2022":161,"2023":162,"2024":163},{"1979":166,"1981":133,"1982":167,"1983":137,"1984":168,"1985":169,"1986":168,"1987":170,"1988":171,"1989":132,"1990":172,"1991":173,"1992":174,"1994":175,"1995":176,"1996":177,"2005":178,"2006":160,"2007":179,"2008":180,"2009":181,"2010":182,"2011":183,"2012":184,"2013":185,"2014":186,"2015":160,"2016":187,"2017":188,"2018":189,"2019":190,"2020":191,"2021":192,"2022":193,"2023":194,"2024":195},{"1979":198,"1981":199,"1982":200,"1983":201,"1984":202,"1985":203,"1986":204,"1987":204,"1988":205,"1989":206,"1990":207,"1991":208,"1992":209,"1994":210,"1995":211,"1996":212,"2005":213,"2006":214,"2007":215,"2008":216,"2009":217,"2010":218,"2011":219,"2012":220,"2013":221,"2014":222,"2015":223,"2016":224,"2017":225,"2018":226,"2019":227,"2020":228,"2021":229,"2022":123,"2023":230,"2024":200},{"pages":848,"volume":850},{"VOID":849},"661-680",{"VOID":851},"42","2019-08-20",2019,[107,94],{"id":856,"createTime":857,"updateTime":858,"relativeEntities":859,"slug":860,"properties":861,"entityType":252,"verifyStatus":253,"verifyTime":871,"verifyNote":255,"languages":18,"translateLanguages":872,"viewCount":19,"primaryUrl":873,"fullTextUrl":18,"authors":874,"publicationType":349,"publisherRelationship":929,"citationCount":18,"citationInfo":18,"publishDate":995,"publishYear":996,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":997,"openAccess":18,"references":18,"isForceReanalyzing":419},"6379fa45-d583-440b-a15f-6aa3a7f71e65","2024-01-05T01:50:41.156+00:00","2026-09-06T13:15:13.579+00:00",[],"Graphene-oxide-nanosheets-immobilised-on-honeycomb-pore-structure-of-pomelo-peel-for-enhanced-removal-of-methylene-blue",{"abstract":862,"title":864,"references":867,"doi":869},{"EN":863},"Herein, for the first time, a simple, green, direct immersion immobilisation method is reported for graphene oxide (GO) nanosheets using pomelo peel (PL) as a substrate. A GO\u002FPL porous sponge was successfully prepared and used to remove methylene blue (MB) from dye wastewater. Considering the porosity, hydrophilicity and elasticity of the PL, the PL was placed in a GO aqueous suspension through direct immersion immobilisation. The carboxyl and hydroxyl groups in the peel could effectively capture and immobilise the GO nanosheets. GO was adsorbed into the PL pores and dispersed throughout the PL. Finally, the prepared super-hydrophilic and elastic GO\u002FPL exhibited excellent adsorption performance towards MB in dye wastewater. The adsorption results revealed that the adsorption behaviour was consistent with the Langmuir isotherm and quasi-secondary kinetic models. The maximum equilibrium adsorption capacity of GO\u002FPL towards MB was 124.2 mg\u002Fg, exceeding the values obtained for most of the previously reported adsorbents. Moreover, after five consecutive adsorption–desorption cycles, GO\u002FPL retained 75% of its initial adsorption capacity. Mechanistic analysis revealed that pore filling, electrostatic attraction, ion exchange and hydrogen bonding interactions are the primary driving forces facilitating MB adsorption.",{"EN":865,"VI":866},"Graphene oxide nanosheets immobilised on honeycomb pore structure of pomelo peel for enhanced removal of methylene blue","Các tấm nano graphene oxide được cố định trên cấu trúc lỗ tổ ong của vỏ bưởi để tăng cường loại bỏ methylene blue",{"VOID":868},"Afroze, S., & Sen, T. K. (2018). A review on heavy metal ions and dye adsorption from water by agricultural solid waste adsorbents. Water Air and Soil Pollution, 229, 50. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11270-018-3869-z\nAigbe, U. O., Ukhurebor, K. E., Onyancha, R. B., et al. (2021). Fly ash-based adsorbent for adsorption of heavy metals and dyes from aqueous solution: A review. Journal of Materials Research and Technology-Jmr&t, 14, 2751–2774. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jmrt.2021.07.140\nAli, I., Basheer, A., Mbianda, X. Y., et al. (2019). Graphene based adsorbents for remediation of noxious pollutants from wastewater. Environment International, 127, 160–180. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.envint.2019.03.029\nAli, R. M., Hamad, H. A., Hussein, M. M., et al. (2016). Potential of using green adsorbent of heavy metal removal from aqueous solutions: Adsorption kinetics, isotherm, thermodynamic, mechanism and economic analysis. Ecological Engineering, 91, 317–332. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.ecoleng.2016.03.015\nAng, Z. R., Kong, I., Lee, R. S. Y., et al. (2022). Preparation of 3D graphene-carbon nanotube-magnetic hybrid aerogels for dye adsorption. New Carbon Materials, 37, 424–434. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fs1872-5805(21)60029-x\nArgun, M. E., Guclu, D., & Karatas, M. (2014). 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F., Zhang, Y. R., et al. (2018). Compressive, ultralight and fire-resistant lignin-modified graphene aerogels as recyclable absorbents for oil and organic solvents. Chemical Engineering Journal, 350, 173–180. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.cej.2018.05.189\nContreras, M., Grande-Tovar, C. D., Vallejo, W., et al. (2019). Bio-removal of methylene blue from aqueous solution by galactomyces geotrichum KL20A. Water, 11, 13. https:\u002F\u002Fdoi.org\u002F10.3390\u002Fw11020282\nDemir, H., Top, A., Balkose, D., et al. (2008). Dye adsorption behavior of Luffa cylindrica fibers. Journal of Hazardous Materials, 153, 389–394. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jhazmat.2007.08.070\nDutta, K., Mukhopadhyay, S., Bhattacharjee, S., et al. (2001). Chemical oxidation of methylene blue using a Fenton-like reaction. Journal of Hazardous Materials, 84, 57–71. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fs0304-3894(01)00202-3\nEl Qada, E. N., Allen, S. J., & Walker, G. M. (2006). Adsorption of methylene blue onto activated carbon produced from steam activated bituminous coal: A study of equilibrium adsorption isotherm. Chemical Engineering Journal, 124, 103–110. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.cej.2006.08.015\nFan, L. L., Luo, C. N., Li, X. J., et al. (2012). Fabrication of novel magnetic chitosan grafted with graphene oxide to enhance adsorption properties for methyl blue. Journal of Hazardous Materials, 215, 272–279. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jhazmat.2012.02.068\nFan, X. B., Peng, W. C., Li, Y., et al. (2008). Deoxygenation of exfoliated graphite oxide under alkaline conditions: A green route to graphene preparation. Advanced Materials, 20, 4490–4493. https:\u002F\u002Fdoi.org\u002F10.1002\u002Fadma.200801306\nFeng, T., Xu, J. J., Yu, C. F., et al. (2019). Graphene oxide wrapped melamine sponge as an efficient and recoverable adsorbent for Pb(II) removal from fly ash leachate. Journal of Hazardous Materials, 367, 26–34. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jhazmat.2018.12.053\nGuan, H., Cheng, Z. Y., & Wang, X. Q. (2018). Highly compressible wood sponges with a spring-like lamellar structure as effective and reusable oil absorbents. ACS Nano, 12, 10365–10373. https:\u002F\u002Fdoi.org\u002F10.1021\u002Facsnano.8b05763\nGuex, L. G., Sacchi, B., Peuvot, K. F., et al. (2017). Experimental review: Chemical reduction of graphene oxide (GO) to reduced graphene oxide (rGO) by aqueous chemistry. Nanoscale, 9, 9562–9571. https:\u002F\u002Fdoi.org\u002F10.1039\u002Fc7nr02943h\nHaydari, I., Aziz, K., Kaya, S., et al. (2023). Green synthesis of reduced graphene oxide and their use on column adsorption of phenol from olive mill wastewater. Process Safety and Environmental Protection, 170, 1079–1091. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.psep.2022.12.086\nHuang, T. T., Yan, M., He, K., et al. (2019). Efficient removal of methylene blue from aqueous solutions using magnetic graphene oxide modified zeolite. Journal of Colloid and Interface Science, 543, 43–51. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jcis.2019.02.030\nHuang, Z., Xiong, C., Zhao, M., et al. (2021). Surface-functionalized pomelo peel-derived biochar with mercapto-1,2,4-triazloe for selective elimination of toxic Pb (II) in aqueous solutions. Advanced Powder Technology, 32, 1013–1022. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.apt.2021.02.004\nHummers, W. S., Jr., & Offeman, R. E. (1958). Preparation of graphitic oxide. Journal of the American Chemical Society, 80, 1339–1339. https:\u002F\u002Fdoi.org\u002F10.1021\u002Fja01539a017\nJiang, L., Wen, Y. Y., Zhu, Z. J., et al. (2021). A double cross-linked strategy to construct graphene aerogels with highly efficient methylene blue adsorption performance. Chemosphere, 265, 8. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.chemosphere.2020.129169\nJin, Y. H., Du, Q. J., Li, Y. H., et al. (2022). Removal of methylene blue by crosslinked egg white protein\u002Fgraphene oxide bionanocomposite aerogels. Nanomaterials, 12, 14. https:\u002F\u002Fdoi.org\u002F10.3390\u002Fnano12152659\nKuang, Y., Zhang, Z. Y., & Wu, D. Y. (2022). Synthesis of graphene oxide\u002Fpolyethyleneimine sponge and its performance in the sustainable removal of Cu(II) from water. Science of the Total Environment, 806, 12. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.scitotenv.2021.151258\nLi, N., Yue, Q. Y., Gao, B. Y., et al. (2019). One-step synthesis of peanut hull\u002Fgraphene aerogel for highly efficient oil-water separation. Journal of Cleaner Production, 207, 764–771. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jclepro.2018.10.038\nLin, K. Y. A., Yang, H. T., Petit, C., et al. (2014). Removing oil droplets from water using a copper-based metal organic frameworks. Chemical Engineering Journal, 249, 293–301. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.cej.2014.03.107\nLiu, Y., Zheng, Y. A., & Wang, A. Q. (2010). Enhanced adsorption of Methylene Blue from aqueous solution by chitosan-g-poly (acrylic acid)\u002Fvermiculite hydrogel composites. Journal of Environmental Sciences, 22, 486–493. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fs1001-0742(09)60134-0\nLiu, Z. W., Cao, C. X., & Han, B. H. (2019). A cationic porous organic polymer for high-capacity, fast, and selective capture of anionic pollutants. Journal of Hazardous Materials, 367, 348–355. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jhazmat.2018.12.091\nLow, S. K., & Tan, M. C. (2018). Dye adsorption characteristic of ultrasound pre-treated pomelo peel. Journal of Environmental Chemical Engineering, 6, 3502–3509. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jece.2018.05.013\nLuo, X. P., Fu, S. Y., Du, Y. M., et al. (2017). Adsorption of methylene blue and malachite green from aqueous solution by sulfonic acid group modified MIL-101. Microporous and Mesoporous Materials, 237, 268–274. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.micromeso.2016.09.032\nManabe, S., Kiliyankil, V. A., Takiguchi, S., et al. (2021). Graphene nanosheets homogeneously incorporated in polyurethane sponge for the elimination of water-soluble organic dyes. Journal of Colloid and Interface Science, 584, 816–826. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jcis.2020.10.012\nMindivan, F., Gul, U. D., & Goktas, M. (2021). Application of graphene-based adsorbents in the treatment of dye-contaminated wastewater; kinetic and isotherm studies. Journal of Vinyl & Additive Technology, 27, 485–496. https:\u002F\u002Fdoi.org\u002F10.1002\u002Fvnl.21821\nMolla, A., Li, Y. Y., Mandal, B., et al. (2019). Selective adsorption of organic dyes on graphene oxide: Theoretical and experimental analysis. Applied Surface Science, 464, 170–177. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.apsusc.2018.09.056\nPandimurugan, R., & Thambidurai, S. (2016). Synthesis of seaweed-ZnO-PANI hybrid composite for adsorption of methylene blue dye. Journal of Environmental Chemical Engineering, 4, 1332–1347. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jece.2016.01.030\nPavan, F. A., Lima, E. C., Dias, S. L. P., et al. (2008). Methylene blue biosorption from aqueous solutions by yellow passion fruit waste. Journal of Hazardous Materials, 150, 703–712. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jhazmat.2007.05.023\nQi, C. Y., Zhao, L. Q., Lin, Y., et al. (2018). Graphene oxide\u002Fchitosan sponge as a novel filtering material for the removal of dye from water. Journal of Colloid and Interface Science, 517, 18–27. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jcis.2018.01.089\nQi, Y. C., Yang, M. L., Xu, W. H., et al. (2017). 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Heliyon, 8, e09930. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.heliyon.2022.e09930\nRechberger, F., & Niederberger, M. (2017). Translucent nanoparticle-based aerogel monoliths as 3-dimensional photocatalysts for the selective photoreduction of CO2 to methanol in a continuous flow reactor. Materials Horizons, 4, 1115–1121. https:\u002F\u002Fdoi.org\u002F10.1039\u002Fc7mh00423k\nRen, X. M., Li, J., Chen, C. L., et al. (2018). Graphene analogues in aquatic environments and porous media: Dispersion, aggregation, deposition and transformation. Environmental Science-Nano, 5, 1298–1340. https:\u002F\u002Fdoi.org\u002F10.1039\u002Fc7en01258f\nRodriguez, A., Garcia, J., Ovejero, G., et al. (2009). Adsorption of anionic and cationic dyes on activated carbon from aqueous solutions: Equilibrium and kinetics. Journal of Hazardous Materials, 172, 1311–1320. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jhazmat.2009.07.138\nSari Yilmaz, M. (2022). Graphene oxide\u002Fhollow mesoporous silica composite for selective adsorption of methylene blue. Microporous and Mesoporous Materials, 330, 111570. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.micromeso.2021.111570\nSaya, L., Gautam, D., Malik, V., et al. (2021). Natural polysaccharide based graphene oxide nanocomposites for removal of dyes from wastewater: A review. Journal of Chemical and Engineering Data, 66, 11–37. https:\u002F\u002Fdoi.org\u002F10.1021\u002Facs.jced.0c00743\nSelcuk, H. (2005). Decolorization and detoxification of textile wastewater by ozonation and coagulation processes. Dyes and Pigments, 64, 217–222. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.dyepig.2004.03.020\nSheng, X., Dong, D., Lu, X., et al. (2020). MXene-wrapped bio-based pomelo peel foam\u002Fpolyethylene glycol composite phase change material with enhanced light-to-thermal conversion efficiency, thermal energy storage capability and thermal conductivity. Composites Part A: Applied Science and Manufacturing, 138, 106067. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.compositesa.2020.106067\nSmith, A. T., LaChance, A. M., Zeng, S., et al. (2019). Synthesis, properties, and applications of graphene oxide\u002Freduced graphene oxide and their nanocomposites. Nano Materials Science, 1, 31–47. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.nanoms.2019.02.004\nSong, Y., Li, H. H., Gao, Y., et al. (2019). Grass-modified graphene aerogel for effective oil-water separation. Process Safety and Environmental Protection, 129, 119–129. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.psep.2019.06.018\nSosa-Martinez, J. D., Balagurusamy, N., Montanez, J., et al. (2020). Synthetic dyes biodegradation by fungal ligninolytic enzymes: Process optimization, metabolites evaluation and toxicity assessment. Journal of Hazardous Materials, 400, 12. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jhazmat.2020.123254\nTao, E., Ma, D., Yang, S., Hao, X., et al. (2020). Graphene oxide-montmorillonite\u002Fsodium alginate aerogel beads for selective adsorption of methylene blue in wastewater. Journal of Alloys and Compounds, 832, 154833. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jallcom.2020.154833\nVargas, A. M. M., Cazetta, A. L., Kunita, M. H., et al. (2011). Adsorption of methylene blue on activated carbon produced from flamboyant pods (Delonix regia): Study of adsorption isotherms and kinetic models. Chemical Engineering Journal, 168, 722–730. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.cej.2011.01.067\nWang, G. F., Qin, H. L., Gao, X., et al. (2018). Graphene thin films by noncovalent-interaction-driven assembly of graphene monolayers for flexible supercapacitors. Chem, 4, 896–910. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.chempr.2018.01.008\nWang, J. Q., & Han, Z. D. (2006). The combustion behavior of polyacrylate ester\u002Fgraphite oxide composites. Polymers for Advanced Technologies, 17, 335–340. https:\u002F\u002Fdoi.org\u002F10.1002\u002Fpat.698\nWang, L., Xin, X., Yang, M., et al. (2015). Effects of graphene oxide and salinity on sodium deoxycholate hydrogels and their applications in dye absorption. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 483, 112–120. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.colsurfa.2015.07.044\nWang, M. Z., Li, Y. H., Cui, M. F., et al. (2022). Barium alginate as a skeleton coating graphene oxide and bentonite-derived composites: Excellent adsorbent based on predictive design for the enhanced adsorption of methylene blue. Journal of Colloid and Interface Science, 611, 629–643. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jcis.2021.12.115\nWang, X. S., Tang, Y. P., & Tao, S. R. (2009). Kinetics, equilibrium and thermodynamic study on removal of Cr (VI) from aqueous solutions using low-cost adsorbent Alligator weed. Chemical Engineering Journal, 148, 217–225. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.cej.2008.08.020\nWu, Z. G., Deng, W. J., Zhou, W., et al. (2019). Novel magnetic polysaccharide\u002Fgraphene oxide @Fe3O4 gel beads for adsorbing heavy metal ions. Carbohydrate Polymers, 216, 119–128. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.carbpol.2019.04.020\nYang, S., Ji, Y., Wu, Y., et al. (2018). Air-dried graphene-based sponge for Water\u002Foil separation and strain sensing. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 555, 358–364. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.colsurfa.2018.07.018\nYang, Z., Liu, X., Liu, X., et al. (2021). Preparation of β-cyclodextrin\u002Fgraphene oxide and its adsorption properties for methylene blue. Colloids and Surfaces B: Biointerfaces, 200, 111605. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.colsurfb.2021.111605\nYao, G. H., Liu, X. K., Zhang, G. Y., et al. (2021). Green synthesis of tannic acid functionalized graphene hydrogel to efficiently adsorb methylene blue. Colloids and Surfaces a-Physicochemical and Engineering Aspects, 625, 12. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.colsurfa.2021.126972\nYilmaz, M. S. (2022). Graphene oxide\u002Fhollow mesoporous silica composite for selective adsorption of methylene blue. Microporous and Mesoporous Materials, 330, 13. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.micromeso.2021.111570\nYin, L., Hu, B., Zhuang, L., et al. (2020). Synthesis of flexible cross-linked cryptomelane-type manganese oxide nanowire membranes and their application for U(VI) and Eu(III) elimination from solutions. Chemical Engineering Journal, 381, 122744. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.cej.2019.122744\nZhang, C. Z., Shen, Q. Q., Wang, Y., et al. (2023). Experimental study on mechanisms of reactions of radicals with graphene oxide particles in wastewater. Journal of Molecular Liquids, 373, 10. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.molliq.2023.121231\nZhang, R. Y., Ma, M. Z., Zhang, Q., et al. (2018). Multifunctional g-C3N4\u002Fgraphene oxide wrapped sponge monoliths as highly efficient adsorbent and photocatalyst. Applied Catalysis B-Environmental, 235, 17–25. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.apcatb.2018.04.061\nZhang, W., Song, J. Y., He, Q. L., et al. (2020). Novel pectin based composite hydrogel derived from grapefruit peel for enhanced Cu(II) removal. Journal of Hazardous Materials, 384, 12. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jhazmat.2019.121445\nZhang, W. J., Zhou, C. J., Zhou, W. C., et al. (2011). Fast and considerable adsorption of methylene blue dye onto graphene oxide. Bulletin of Environmental Contamination and Toxicology, 87, 86–90. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs00128-011-0304-1\nZhao, F., Liu, L. F., Yang, F. L., et al. (2013). E-Fenton degradation of MB during filtration with Gr\u002FPPy modified membrane cathode. Chemical Engineering Journal, 230, 491–498. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.cej.2013.06.117\nZhong, W. Y., Zhuang, Z. F., Zhu, Z. M., et al. (2021). Photochemical construction of Ni\u002FCdS double-walled magnetic hollow microspheres with simultaneously enhanced visible-light photocatalytic activity and recyclability. Chemphotochem, 5, 735–747. https:\u002F\u002Fdoi.org\u002F10.1002\u002Fcptc.202100031\nZhu, L., Wang, Y., Wang, Y., et al. (2017). An environmentally friendly carbon aerogels derived from waste pomelo peels for the removal of organic pollutants\u002Foils. Microporous and Mesoporous Materials, 241, 285–292. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.micromeso.2016.12.033\nZhu, L., Wang, Y., Wang, Y. X., et al. (2017b). An environmentally friendly carbon aerogels derived from waste pomelo peels for the removal of organic pollutants\u002Foils. Microporous and Mesoporous Materials, 241, 285–292. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.micromeso.2016.12.033\nZhu, X., Zhou, G., He, G., et al. (2023). Directly loading graphene oxide into melamine sponge for fast and high-efficiency adsorption of methylene blue. Surfaces and Interfaces, 36, 102575. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.surfin.2022.102575",{"VOID":870},"10.1007\u002Fs10653-023-01765-8","2025-01-24T21:10:12.065+00:00",[257],"https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10653-023-01765-8",[875,890,903,916],{"id":876,"sortIndex":19,"researcher":18,"roles":877,"affiliations":878,"properties":887,"displayName":889,"givenName":18,"familyName":18},"5bb48adb-d39d-456f-8bcc-109813231f1a",[263],[879],{"id":880,"sortIndex":19,"affiliation":881,"properties":18},"59178248-0ada-4384-91ea-e3db777c2061",{"id":880,"createTime":18,"updateTime":18,"relativeEntities":882,"slug":18,"properties":883,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":886,"statistic":18},[],{"title":884},{"EN":885},"Key Laboratory for Ecological Metallurgy of Multimetallic Mineral (Ministry of Education), Northeastern University, Shenyang, People’s 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migration of organochlorine pesticides (OCPs) and cypermethrin residues from internal organs to edible tissues of ice-held Labeo rohita (rohu) was investigated in this study. The liver (246 µg\u002Fkg) had the highest level of ∑OCP residues, followed by the gills (226 µg\u002Fkg), intestine (167 µg\u002Fkg), and muscle tissue (54 µg\u002Fkg). The predominant OCPs in the liver and gut were endosulfan (53–66 µg\u002Fkg), endrin (45–53 µg\u002Fkg), and dichloro-diphenyl-trichloroethane (DDT; 26–35 µg\u002Fkg). The ∑OCP residues in muscle increased to 152 µg\u002Fkg when the entire rohu was stored in ice, but they decreased to 129 µg\u002Fkg in gill tissues. On days 5 and 9, the total OCPs in the liver increased to 317 µg\u002Fkg and 933 µg\u002Fkg, respectively. Beyond day 5 of storage, total internal organ disintegration had led to an abnormal increase in OCP residues of liver-like mass. Despite a threefold increase in overall OCP residues by day 9, accumulation of benzene hexachloride (BHC) and heptachlor was sixfold, endrin and DDT were fourfold, aldrin was threefold, and endosulfan and cypermethrin were both twofold. Endosulfan, DDT, endrin, and heptachlor were similarly lost in the gills at a rate of 40%, while aldrin and BHC were also lost at 60 and 30%, respectively. The accumulation of OCP residues in tissues has been attributed to particular types of fatty acid derivatives. The study concluded that while pesticide diffusion to edible tissues can occur during ice storage, the levels observed were well below the allowable limit for endosulfan, endrin, and DDT.",{"EN":1008,"VI":1009},"Diffusion of organochlorine (OCPs) and cypermethrin pesticides from rohu (Labeo rohita) internal organs to edible tissues during ice storage: a threat to human health","Khuếch tán thuốc trừ sâu clo hữu cơ (OCPs) và cypermethrin từ nội tạng cá rohu (Labeo rohita) sang các mô ăn được trong bảo quản bằng đá: mối nguy đối với sức khoẻ con người",{"EN":1011},"",{"VOID":1013},"Abdollahi, M., Ranjbar, A., Shadnia, S., Nikfar, S., & Rezaiee, A. (2004). Pesticides and oxidative stress: A review. Medical Science Monitor, 10(6), 141–147.\nAdeyeye, S. A. O., Oyewole, O. B., Obadina, A. O., Omemu, A. M., Adeniran, O. E., Oyedele, H. A., & Abayomi, S. O. (2015). Quality and safety assessment of traditional smoked fish from Lagos State. Nigeria: International Journal of Aquaculture. https:\u002F\u002Fdoi.org\u002F10.5376\u002Fija.2015.05.0015\nAktar, W., Sengupta, D., & Chowdhury, A. (2009). Impact of pesticides use in agriculture: Their benefits and hazards. Interdisciplinary Toxicology, 2(1), 1–12.\nAOAC. (1995). Official methods of analysis. Washington, DC, USA: Association of official analytical chemists Inc.\nArisekar, U. (2017). Pesticides Risk Assessment of Freshwater Fish Caught from Thamirabharani River Basin. Master Thesis submitted to Tamil Nadu Fisheries University, Fisheries College and Research Institute, Thoothukudi, Tamil Nadu, India, (pp.1–103).\nArisekar, U., Shakila, R. J., Shalini, R., & Jeyasekaran, G. (2021a). Pesticides contamination in the Thamirabarani, a perennial river in peninsular India: The first report on ecotoxicological and human health risk assessment. Chemosphere, 267, 129251.\nArisekar, U., Shakila, R. J., Shalini, R., Jeyasekaran, G., Arumugam, N., Almansour, A. I., & Perumal, K. (2022). Bioaccumulation of organochlorine pesticide residues (OCPs) at different growth stages of pacific white leg shrimp (Penaeus vannamei): First report on ecotoxicological and human health risk assessment. Chemosphere, 308, 136459.\nArisekar, U., Shakila, R. J., Jeyasekaran, G., Shalini, R., Kumar, P., Malani, A. H., & Rani, V. (2019). Accumulation of organochlorine and pyrethroid pesticide residues in fish, water, and sediments in the Thamirabarani river system of southern peninsular India. Environmental Nanotechnology, Monitoring & Management, 11, 100194.\nArisekar, U., Shakila, R. J., Jeyasekaran, G., Shalini, Sundhar, & S. (2018). Contamination profile of organophosphorous pesticides (OPPs) residues in water, sediment and fish tissues of Thamirabarani river system South India. International Research Journal of Environmental Science, 7(7), 7–15.\nArisekar, U., Shakila, R. J., Shalini, R., & Jeyasekaran, G. (2020). Human health risk assessment of heavy metals in aquatic sediments and freshwater fish caught from Thamirabarani River, the Western Ghats of South Tamil Nadu. Marine Pollution Bulletin, 159, 111496.\nArisekar, U., Shakila, R. J., Shalini, R., Jeyasekaran, G., & Padmavathy, P. (2022b). Effect of household culinary processes on organochlorine pesticide residues (OCPs) in the seafood (Penaeus vannamei) and its associated human health risk assessment: Our vision and future scope. Chemosphere, 297, 134075.\nArisekar, U., Shakila, R. J., Shalini, R., Jeyasekaran, G., Keerthana, M., Arumugam, N., Almansour, A. I., & Perumal, K. (2022c). Distribution and ecological risk assessment of heavy metals using geochemical normalization factors in the aquatic sediments. Chemosphere, 294, 133708.\nArisekar, U., Shakila, R. J., Shalini, R., Jeyasekaran, G., Sivaraman, B., & Surya, T. (2021b). Heavy metal concentrations in the macroalgae, seagrasses, mangroves, and crabs collected from the Tuticorin coast (Hare Island), Gulf of Mannar. South India. Marine Pollution Bulletin, 163, 111971.\nCAC, (2016). Codex Alimentarius Commission, 39th session–Maximum residual limits for Pesticides, Rome, Italy.\nCDC, (2016). National Biomonitoring Program: Organochlorine Pesticides Overview. Centers for Disease Control and Prevention. (p. 2016). https:\u002F\u002Fwww.cdc.gov\u002F biomonitoring\u002FTrichlorophenols_Biomonitoring Summary.html. Accessed 16 September 2017\nDarko, G., & Acquaah, S. O. (2007). Levels of organochlorine pesticides residues in meat. International Journal of Environmental Science & Technology, 4, 521–524.\nFinizio, A., Vighi, M., & Sandroni, D. (1997). Determination of n-octanol\u002Fwater partition coefficient (Kow) of pesticide critical review and comparison of methods. Chemosphere, 34(1), 131–161.\nFolch, J., Lees, M., & Sloane Stanley, G. H. (1957). A simple method for the isolation and purification of total lipids from animal tissues. Journal of Biological Chemistry, 226(1), 497–509.\nGenuis, S. J., Lane, K., & Birkholz, D. (2016). Human elimination of organochlorine pesticides: Blood, urine, and sweat study. BioMed Research International, 2016, 1–10.\nGhose, N. C., Saha, D., & Gupta, A. (2009). Synthetic detergents (surfactants) and organochlorine pesticide signatures in surface water and groundwater of greater Kolkata, India. Journal of Water Resource and Protection, 1(4), 290.\nGuo, L., Qiu, Y., Zhang, G., Zheng, G. J., Lam, P. K., & Li, X. (2008). Levels and bioaccumulation of organochlorine pesticides (OCPs) and polybrominated diphenyl ethers (PBDEs) in fishes from the Pearl River estuary and Daya Bay. South China. Environmental Pollution, 152(3), 604–611.\nJames, R. A., Purvaja, R., & Ramesh, R. (2015). Environmental Integrity of the Tamiraparani River Basin, South India. Environmental Management of River Basin Ecosystems (pp. 507–523). Springer International Publishing.\nKaushik, A., Sharma, H. R., Jain, S., Dawra, J., & Kaushik, C. P. (2010). Pesticide pollution of river Ghaggar in Haryana. India. Environmental Monitoring and Assessment, 160(1), 61–69.\nKaushik, C. P., Sharma, H. R., Jain, S., Dawra, J., & Kaushik, A. (2008). Pesticide residues in river Yamuna and its canals in Haryana and Delhi, India. Environmental Monitoring and Assessment, 144(1), 329–340.\nKumarasamy, P., Govindaraj, S., Vignesh, S., Rajendran, R. B., & James, R. A. (2012). Anthropogenic nexus on organochlorine pesticide pollution: A case study with Tamiraparani river basin, South India. Environmental Monitoring and Assessment, 184(6), 3861–3873.\nLeena, S., Choudhary, S. K., & Singh, P. K. (2012). Pesticide concentration in water and sediment of River Ganga at selected sites in middle Ganga plain. International Journal of Environmental Sciences, 3(1), 260.\nLehotay, S. (2007). AOAC official method 2007 pesticide residues in foods by acetonitrile extraction and partitioning with Magnesium Sulfate. Journal of AOAC International, 90(2), 485–520.\nLi, X. H., Wang, W., Wang, J., Cao, X. L., Wang, X. F., Liu, J. C., Liu, X. F., Xu, X. B., & Jiang, X. N. (2008). Contamination of soils with organochlorine pesticides in urban parks in Beijing, China. Chemosphere, 70(9), 1660–1668.\nMahboob, S., Niazi, F., AlGhanim, K., Sultana, S., Al-Misned, F., & Ahmed, Z. (2015). Health risks associated with pesticide residues in water, sediments and the muscle tissues of Catlacatla at head Balloki on the River Ravi. Environmental Monitoring and Assessment, 187(3), 81.\nManimekalai, D., Srinivasan, A., Padmavathy, P., Jawahar, P., George, R., & Arisekar, U. (2022). Acute and chronic toxicity effects of the heptachlor pesticide on Tilapia (Oreochromis mossambicus): Impact to behavioral patterns and histopathological responses. Journal of Coastal Research, 38(5), 999–1010.\nNoble, A. (1993). Partition coefficients (n-octanol—water) for pesticides. Journal of Chromatography A, 642(1–2), 3–14.\nNorli, H. R., Christiansen, A., & Deribe, E. (2011). Application of QuEChERS method for extraction of selected persistent organic pollutants in fish tissue and analysis by gas chromatography mass spectrometry. Journal of Chromatography A, 1218(41), 7234–7241.\nPathak, N., Shakila, R. J., Jeyasekaran, G., & P, P., N, N., Shalini, R., Arisekar, U., Patel, A., Kumar, U., Malini, A.H. and Mayilvahnan, R. (2021). Variation in the nutritional composition of soft and hard blue swimming crabs (Portunus pelagicus) having good export potential. Journal of Aquatic Food Product Technology, 30(6), 706–719.\nRahnan, S. A., Huah, T. S., Nassan, O., & Daud, N. M. (1995). Fatty acid composition of some Malaysian freshwater fish. Food Chemistry, 54(1), 45–49.\nReddy, C. P. K., Manikandavelu, D., Arisekar, U., Ahilan, B., Uma, A., Jayakumar, N., Kim, W., Govarthanan, M., Harini, C., Vidya, R. S., & Madhavan, N. (2023). Toxicological effect of endocrine disrupting insecticide (deltamethrin) on enzymatical, haematological and histopathological changes in the freshwater iridescent shark. Pangasius Hypothalamus. Environmental Toxicology and Pharmacology, 101, 104201.\nSahena, F., Zaidul, I. S. M., Jinap, S., Karim, A. A., Abbas, K. A., Norulaini, N. A. N., & Omar, A. K. M. (2009). Application of supercritical CO2 in lipid extraction–a review. Journal of Food Engineering, 95(2), 240–253.\nShalini, R., Jeyasekaran, G., Shakila, R. J., & Arisekar, U. (2021). Trace element concentrations in the organs of fish along the southeast coast of India. Marine Pollution Bulletin, 162, 111817.\nShalini, R., Jeyasekaran, G., Shakila, R. J., Arisekar, U., Sundhar, S., Jawahar, P., Aanand, S., & HemaMalini, A. (2020). Concentrations of trace elements in the organs of commercially exploited crustaceans and cephalopods caught in the waters of Thoothukudi South India. Marine Pollution Bulletin, 154, 111045.\nShinggu, D. Y., Maitera, O. N., & Barminas, J. T. (2015). Level of organochlorine pesticides residue in fish, water and sediment in Biu dam (Reservoir) Borno State Nigeria. International Research Journal of Pure and Applied Chemistry, 5(2), 150.\nSilva, D. M. L. D., Camargo, P. B. D., Martinelli, L. A., Lanças, F. M., Pinto, J. S., & Avelar, W. E. P. (2008). Organochlorine pesticides in Piracicaba river basin (São Paulo\u002FBrazil): A survey of sediment, bivalve and fish. Química Nova, 31, 214–219.\nSundhar, S., JeyaShakila, R., Jeyasekaran, G., Shalini, R., Arisekar, U., & Jenishma, J. S. (2019). Safety assessment of edible red seaweeds Gracilaria and Gelidiella of Gulf of Mannar in terms of OCP residual contamination. Environmental Nanotechnology, Monitoring & Management, 12, 100245.\nSundhar, S., Shakila, R. J., Jeyasekaran, G., Aanand, S., Shalini, R., Arisekar, U., Surya, T., Malini, N. A. H., & Boda, S. (2020). Risk assessment of organochlorine pesticides in seaweeds along the Gulf of Mannar Southeast India. Marine Pollution Bulletin, 161, 111709.\nSundhar, S., Shakila, R. J., Shalini, R., Aanand, S., Jayakumar, N., Arisekar, U., & Surya, T. (2023). First report on the exposure and health risk assessment of organochlorine pesticide residues in Caulerpa racemosa, and their potential impact on household culinary processes. Food Research International, 174, 113559.\nTaiwo, A. M. (2019). A review of environmental and health effects of organochlorine pesticide residues in Africa. Chemosphere, 220, 1126–1140.\nUlaganathan, A., Robinson, J. S., Rajendran, S., Geevaretnam, J., Shanmugam, S., Natarajan, A., Abdulrahman, A., & Karthikeyan, P. (2022). Potentially toxic elements contamination and its removal by aquatic weeds in the riverine system: A comparative approach. Environmental Research, 206, 112613.\nUSEPA United States Environmental Protection Agency. (2017). National Primary Drinking Water Regulations. https:\u002F\u002Fwww.epa.gov\u002Fground-water-and drinking-water\u002Fnational-primary drinking-water-regulations. Accessed 18 July 2017.\nWorld Health Organization (2008). Guidelines for drinking water quality, III Edition Vol. 1 Recommendation. WHO, Geneva.\nZhao, Z., Zhang, L., Wu, J., & Fan, C. (2009). Distribution and bioaccumulation of organochlorine pesticides in surface sediments and benthic organisms from Taihu Lake China. 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bodies (AB) form in the lungs as a result of a biomineralization process initiated by the alveolar macrophages in the attempt to remove asbestos. During this process, organic and inorganic material deposit on the foreign fibers forming a Fe-rich coating. The AB start to form in months, thus quickly becoming the actual interface between asbestos and the lung tissue. Therefore, revealing their composition, and, in particular, the chemical form of Fe, which is the major component of the AB, is essential to assess their possible role in the pathogenesis of asbestos-related diseases. In this work we report the result of the first x-ray diffraction measurements performed on single AB embedded in the lung tissue samples of former asbestos plant workers. The combination with x-ray absorption spectroscopy data allowed to unambiguously reveal that Fe is present in the AB in the form of two Fe-oxy(hydroxides): ferrihydrite and goethite. The presence of goethite, which can be explained in terms of the transformation of ferrihydrite (a metastable phase) due to the acidic conditions induced by the alveolar macrophages in their attempt to phagocytose the fibers, has toxicological implications that are discussed in the paper.",{"EN":1267},"Closing the knowledge gap on the composition of the asbestos bodies",{"VOID":1269},"[\"3967368057471472451\"]",{"VOID":1271},"10.1007\u002Fs10653-023-01557-0","2024-05-03T11:21:57.894+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10653-023-01557-0",[1275,1300,1325,1342,1359,1374,1389,1402],{"id":1276,"sortIndex":19,"researcher":18,"roles":1277,"affiliations":1278,"properties":1295,"displayName":1297,"givenName":18,"familyName":18},"37117eeb-a31a-4cb1-bb53-a1d460ea6500",[263],[1279,1287],{"id":1280,"sortIndex":19,"affiliation":1281,"properties":18},"dee55315-6dc1-41e1-bc32-84a13679d7b0",{"id":1280,"createTime":18,"updateTime":18,"relativeEntities":1282,"slug":18,"properties":1283,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1286,"statistic":18},[],{"title":1284},{"VI":1285},"National Research Council, Institute of Nanotechnology (CNR-Nanotec), Rome, Italy",[],{"id":1288,"sortIndex":167,"affiliation":1289,"properties":18},"7b590d00-a5ef-4c42-917c-bf0d22c937e3",{"id":1288,"createTime":18,"updateTime":18,"relativeEntities":1290,"slug":18,"properties":1291,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1294,"statistic":18},[],{"title":1292},{"VI":1293},"Centre for the Study of Asbestos and Other Toxic Particulate, University of Torino, Turin, Italy",[],{"title":1296,"gsAuthor":1298},{"VI":1297},"F. 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(2021a). Asbestos bodies count and morphometry in bulk lung tissue samples by non-invasive X-ray micro-tomography. Scientific Reports, 11, 1–11. https:\u002F\u002Fdoi.org\u002F10.1038\u002Fs41598-021-90057-1","https:\u002F\u002Fwww.nature.com\u002Farticles\u002Fs41598-021-90057-1",{"doi":1492},"10.1038\u002Fs41598-021-90057-1",{"id":1494,"text":1495,"url":1496,"identifiers":1497},"1b020b2c-5ee6-4b11-b7b4-386ac2461e74","Bardelli, F., Brun, F., De Panfilis, S., Cloetens, P., Capella, S., Belluso, E., Bellis, D., Di Napoli, A., & Cedola, A. (2021b). Chemo-physical properties of asbestos bodies in human lung tissues studied at the nano-scale by non-invasive, label free X-ray imaging and spectroscopic techniques. 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Natural ferrihydrites in surface deposits from Finland and their association with silica. Geochimica Et Cosmochimica Acta. https:\u002F\u002Fdoi.org\u002F10.1016\u002F0016-7037(81)90250-7","https:\u002F\u002Flinkinghub.elsevier.com\u002Fretrieve\u002Fpii\u002F0016703781902507",{"doi":1534},"10.1016\u002F0016-7037(81)90250-7",{"id":1536,"text":1537,"url":1538,"identifiers":1539},"4767d46d-2c02-41e8-bb9a-af952cbb638b","Chasteen, N. D., & Harrison, P. M. (1999). Mineralization in ferritin: An efficient means of iron storage. Journal of Structural Biology, 126, 182–194. https:\u002F\u002Fdoi.org\u002F10.1006\u002Fjsbi.1999.4118","https:\u002F\u002Flinkinghub.elsevier.com\u002Fretrieve\u002Fpii\u002FS1047847799941187",{"doi":1540},"10.1006\u002Fjsbi.1999.4118",{"id":18,"text":1542,"url":18,"identifiers":1543},"Chilom, C. G., Găzdaru, D. M., Bălăsoiu, M., Bacalum, M., Stolyar, S. V., & Popescu, A. I. (2017). Biomedical application of biogenic ferrihydrite nanoparticles. Romanian Journal of Physics, 62, 1–13.",{},{"id":18,"text":1545,"url":18,"identifiers":1546},"Craighead, J. E., Abraham, J. L., Churg, A., Green, F. H., Kleinerman, J., Pratt, P. C., Seemayer, T. A., Vallyathan, V., & Weill, H. (1982). The pathology of asbestos-associated diseases of the lungs and pleural cavities: Diagnostic criteria and proposed grading schema. Report of the Pneumoconiosis Committee of the College of American Pathologists and the National Institute for Occupational Sa. Archives of Pathology & Laboratory Medicine, 106, 544–596.",{},{"id":18,"text":1548,"url":1549,"identifiers":1550},"Croce, A., Musa, M., Allegrina, M., Trivero, P., & Rinaudo, C. (2013). Environmental scanning electron microscopy technique to identify asbestos phases inside ferruginous bodies. 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Nano Today, 41, 101317. https:\u002F\u002Fdoi.org\u002F10.1016\u002FJ.NANTOD.2021.101317","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS1748013221002425",{"doi":1777},"10.1016\u002Fj.nantod.2021.101317",{"id":1779,"createTime":1780,"updateTime":1781,"relativeEntities":1782,"slug":1783,"properties":1784,"entityType":252,"verifyStatus":253,"verifyTime":1793,"verifyNote":255,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":1794,"fullTextUrl":18,"authors":1795,"publicationType":349,"publisherRelationship":1824,"citationCount":1890,"citationInfo":1891,"publishDate":1894,"publishYear":1892,"citationAnalyzeStatus":1895,"lastCitationAnalyze":1781,"indexDatabases":1896,"openAccess":18,"references":1897,"isForceReanalyzing":419},"7fccfb72-e4e5-46d2-8038-27840aad4013","2024-02-10T16:57:35.938+00:00","2026-07-26T14:41:50.537+00:00",[],"Determination-of-arsenic-in-crude-petroleum-and-liquid-hydrocarbons",{"abstract":1785,"title":1787,"gsPaper":1789,"doi":1791},{"EN":1786},"Total arsenic was determined in crude petroleum and liquid hydrocarbons derived from crude petroleum by extraction with boiling water or boiling aqueous nitric acid (concentration 0.25 to 2.5 M), mineralization of the extracts with concentrated nitric\u002Fsulphuric acid, and reduction of the arsenate to arsine in a hydride generator. The arsine was flushed into a helium-DC plasma. The arsenic emission was monitored at 228.8 nm. The total arsenic concentration in 53 crude oil samples ranged from 0.04 to 514 mg L−1 (median 0.84 mg L−1). Arsenic was also determined in several refined liquid hydrocarbons and in a commercially available arsenic standard in an organic matrix (triphenylarsine in xylene). The method was checked with NIST 1634b “Trace Elements in Residual Fuel Oil”. The arsenic concentration found in this standard agreed with the certified value (0.12±0.2 μg g−1) within experimental error. Viscous hydrocarbons such as the fuel oil must be dissolved in xylene for the extraction to be successful. Hydride generation applied to an aqueous not-mineralized extract from an oil containing 1.67 μg As mL−1 revealed, that trimethylated arsenic (520 ng mL−1) is the predominant arsenic species among the reducible and detectable arsenic compounds. Monomethylated arsenic (104 ng ml−1), inorganic arsenic (23 ng mL−1), and dimethylated arsenic (low ng mL−1) were also detected. The sum of the concentrations of these arsenic species accounts for only 39% of the total arsenic in the sample.",{"EN":1788},"Determination of arsenic in crude petroleum and liquid hydrocarbons",{"VOID":1790},"[\"9275980102368219379\"]",{"VOID":1792},"10.1007\u002FBF01758658","2024-05-02T08:07:54.023+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002FBF01758658",[1796,1811],{"id":1797,"sortIndex":19,"researcher":18,"roles":1798,"affiliations":1799,"properties":1808,"displayName":1810,"givenName":18,"familyName":18},"d95a2123-f404-4a21-a4ff-a534862a6cfb",[263],[1800],{"id":1801,"sortIndex":19,"affiliation":1802,"properties":18},"8c74709a-7fe8-4c78-9498-188dd9744128",{"id":1801,"createTime":18,"updateTime":18,"relativeEntities":1803,"slug":18,"properties":1804,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1807,"statistic":18},[],{"title":1805},{"VI":1806},"Department of Chemistry, Texas A&M University, College Station, USA",[],{"title":1809},{"VI":1810},"Bal K. Puri",{"id":1812,"sortIndex":167,"researcher":18,"roles":1813,"affiliations":1814,"properties":1821,"displayName":1823,"givenName":18,"familyName":18},"a3fe0a2d-ecba-4c16-b3c6-05fe7809a500",[263],[1815],{"id":1801,"sortIndex":19,"affiliation":1816,"properties":18},{"id":1801,"createTime":18,"updateTime":18,"relativeEntities":1817,"slug":18,"properties":1818,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1820,"statistic":18},[],{"title":1819},{"VI":1806},[],{"title":1822},{"VI":1823},"Kurt J. Irgolic",{"url":1794,"publisher":1825,"properties":1885},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1826,"slug":10,"properties":1827,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":1830,"manageAffiliations":1854,"indexDatabases":1865,"url":18,"thumbnailPath":18,"statistic":1880,"gsStatistic":18,"type":231,"analyzePriority":18},[],{"issn":1828,"title":1829},{"VOID":13},{"VOID":15},[1831,1835,1839,1843,1847,1851],{"id":22,"createTime":18,"updateTime":18,"relativeEntities":1832,"label":1833,"description":1834,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":25},{},{"id":34,"createTime":18,"updateTime":18,"relativeEntities":1836,"label":1837,"description":1838,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":37},{},{"id":28,"createTime":18,"updateTime":18,"relativeEntities":1840,"label":1841,"description":1842,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":31},{},{"id":40,"createTime":18,"updateTime":18,"relativeEntities":1844,"label":1845,"description":1846,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":43},{},{"id":46,"createTime":18,"updateTime":18,"relativeEntities":1848,"label":1849,"description":1850,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":49},{},{"id":52,"createTime":18,"updateTime":18,"relativeEntities":1852,"label":1853,"description":18,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":55},[1855,1860],{"id":58,"createTime":18,"updateTime":18,"relativeEntities":1856,"slug":18,"properties":1857,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1859,"statistic":18},[],{"title":1858},{"EN":62},[64],{"id":66,"createTime":18,"updateTime":18,"relativeEntities":1861,"slug":18,"properties":1862,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1864,"statistic":18},[],{"title":1863},{"EN":70},[],[1866,1873],{"id":74,"indexDatabase":1867,"url":85,"indexYears":86,"academicFieldIds":1872,"indexDatabaseRanking":94},{"id":76,"createTime":18,"updateTime":18,"relativeEntities":1868,"label":1869,"description":1870,"key":82,"publicationTags":1871,"standard":18},[],{"EN":79,"VI":79},{"EN":79,"VI":81},[84],[88,89,90,91,92,93],{"id":96,"indexDatabase":1874,"url":18,"indexYears":18,"academicFieldIds":1879,"indexDatabaseRanking":18},{"id":98,"createTime":18,"updateTime":18,"relativeEntities":1875,"label":1876,"description":1877,"key":105,"publicationTags":1878,"standard":18},[],{"EN":101,"VI":101},{"EN":103,"VI":104},[107,108],[110,111,112,113],{"impactFactor":19,"impactFactorByYear":1881,"i10Index":126,"i10IndexLast5Year":127,"totalPublication":128,"totalPublicationByYear":1882,"totalCitation":164,"totalCitationByYear":1883,"totalCitationPerPublication":196,"totalCitationPerPublicationByYear":1884,"hindexLast5Year":151,"hindex":151},{"2012":116,"2013":117,"2014":117,"2015":118,"2016":117,"2017":119,"2018":120,"2019":121,"2020":122,"2021":123,"2022":124,"2023":125},{"1979":130,"1980":130,"1981":131,"1982":132,"1983":133,"1984":133,"1985":133,"1986":130,"1987":134,"1988":135,"1989":136,"1990":137,"1991":138,"1992":139,"1993":136,"1994":140,"1995":135,"1996":139,"1997":130,"1998":141,"1999":142,"2000":139,"2001":141,"2002":137,"2003":143,"2004":138,"2005":144,"2006":145,"2007":146,"2008":147,"2009":148,"2010":149,"2011":150,"2012":151,"2013":152,"2014":153,"2015":154,"2016":155,"2017":156,"2018":157,"2019":158,"2020":159,"2021":160,"2022":161,"2023":162,"2024":163},{"1979":166,"1981":133,"1982":167,"1983":137,"1984":168,"1985":169,"1986":168,"1987":170,"1988":171,"1989":132,"1990":172,"1991":173,"1992":174,"1994":175,"1995":176,"1996":177,"2005":178,"2006":160,"2007":179,"2008":180,"2009":181,"2010":182,"2011":183,"2012":184,"2013":185,"2014":186,"2015":160,"2016":187,"2017":188,"2018":189,"2019":190,"2020":191,"2021":192,"2022":193,"2023":194,"2024":195},{"1979":198,"1981":199,"1982":200,"1983":201,"1984":202,"1985":203,"1986":204,"1987":204,"1988":205,"1989":206,"1990":207,"1991":208,"1992":209,"1994":210,"1995":211,"1996":212,"2005":213,"2006":214,"2007":215,"2008":216,"2009":217,"2010":218,"2011":219,"2012":220,"2013":221,"2014":222,"2015":223,"2016":224,"2017":225,"2018":226,"2019":227,"2020":228,"2021":229,"2022":123,"2023":230,"2024":200},{"pages":1886,"volume":1888},{"VOID":1887},"95-99",{"VOID":1889},"11",26,{"total":1890,"publishYear":1892,"statisticByYear":1893},1989,{"1990":167,"1991":167,"1997":167,"2003":167,"2007":171,"2010":171,"2012":171,"2013":171,"2015":167,"2018":167,"2019":167,"2020":167,"2021":174,"2022":174,"2023":171,"2024":167,"2026":167},"1989-12-01","DONE_ANALYZE_CITATION",[107,94],[1898,1901,1904,1907,1910,1913,1916,1919,1922,1925,1928,1931,1934,1937,1940,1943],{"id":1583,"text":1899,"url":1585,"identifiers":1900},"Armstrong, R., Gibson, N.A., Hosking, J.W. and Weatherburn, D.C. 1967. The preparation and properties of some quaternary arsonium compounds.Australian J. Chem.,20, 2771–2776.",{"doi":1587},{"id":18,"text":1902,"url":18,"identifiers":1903},"Braier, H.A. and Eppolito, J. 1975. Determination of trace metals in petroleum: instrumental methods. In: Yen, T.F. (ed.),The Role of Trace Metals in Petroleum, pp. 65–87. Ann Arbor Science, Ann Arbor, Michigan.",{},{"id":18,"text":1905,"url":18,"identifiers":1906},"Carr, C.D. and Borst, J.E. 1978. Use of inductively coupled plasma spectroscopy for the analysis of undigested organic materials and oils. Applied Research Laboratory, Sunland, California. Presented at the 1978 Pittsburgh Conference.",{},{"id":1583,"text":1908,"url":1585,"identifiers":1909},"Clark, P.J., Zingaro, R.A., Irgolic, K.J. and McGinley, A.N. 1980. Arsenic and selenium in Texas lignite.International J, Environ. Analytical Chem.,7, 295–314.",{"doi":1587},{"id":18,"text":1911,"url":18,"identifiers":1912},"Davis, W.E. and Associates. 1968.National Inventory of Sources of Emissions. Arsenic, Beryllium, Manganese, Mercury and Vanadium, Arsenic. Section I, 51pp. Leawood, Kansas.",{},{"id":18,"text":1914,"url":18,"identifiers":1915},"Decocq, W.E., Brocas, J.J., DeWindt, J. and Druon, C. 1986. Automatic wear metals control in diesel lubricating oil by ICPES.Am. Laboratory (November), 128–133.",{},{"id":1583,"text":1917,"url":1585,"identifiers":1918},"Hausler, D. 1987. Trace element analysis of organic solutions using inductively coupled plasma-mass spectrometry.Spectrochim. Acta,42B, 63–73.",{"doi":1587},{"id":18,"text":1920,"url":18,"identifiers":1921},"Hitchon, B., Filby, R.H. and Shah, K.R. 1975. Geochemistry of trace elements in crude oils. Alberta, Canada. In: Yen, T.F (ed.).The Role of Trace Metals in Petroleum, pp. 111–121. Ann Arbor Science, Ann Arbor, Michigan.",{},{"id":1583,"text":1923,"url":1585,"identifiers":1924},"Irgolic, K.J. and Stockton, R.A. 1987. Element-specific detectors for liquid chromatography: the determination of arsenic compounds.Marine Chem.,22, 265–287.",{"doi":1587},{"id":18,"text":1926,"url":18,"identifiers":1927},"Irgolic, K.J., 1989. The determination of arsenic and arsenic compounds in enviromental samples. In: Stöppler, M. (ed.),Hazardous Metals in the Environment. Elsevier, Amsterdam, in press.",{},{"id":1583,"text":1929,"url":1585,"identifiers":1930},"Kingston, H.M. and Jassie, L.B. (ed.). 1988.Introduction to Microwave Sample Preparation: Theory and Practice. American Chemical Society, Washington, DC.",{"doi":1587},{"id":1583,"text":1932,"url":1585,"identifiers":1933},"Mohan, M.S., Zingaro, R.A., Micks, P. and Clark, P.J. 1982. Analysis and speciation of arsenic in herbicide-treated soils by DC helium emission spectrometry.International J. Environ. Analyt. Chem.,11, 175–187.",{"doi":1587},{"id":1583,"text":1935,"url":1585,"identifiers":1936},"Sulcek, Z. and Povondra, P. 1989.Methods of Decomposition in Inorganic Analysis. CRC Press, Inc., Boca Raton, Florida.",{"doi":1587},{"id":1583,"text":1938,"url":1585,"identifiers":1939},"Tanaka, T. 1988. Distribution of arsenic in the natural environment with emphasis on rocks and soils.J. Appl. Organometallic Chem.,2, 283–295.",{"doi":1587},{"id":18,"text":1941,"url":18,"identifiers":1942},"US National Academy of Sciences. 1977.Arsenic, Chapter 3, pp.16–26. Washington, DC.",{},{"id":18,"text":1944,"url":18,"identifiers":1945},"Valkovic, V. 1978.Trace Elements in Petroleum. The Petroleum Publishing Co., Tulsa, Oklahoma.",{},{"id":1947,"createTime":1948,"updateTime":1949,"relativeEntities":1950,"slug":1951,"properties":1952,"entityType":252,"verifyStatus":253,"verifyTime":1963,"verifyNote":255,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":1964,"fullTextUrl":18,"authors":1965,"publicationType":349,"publisherRelationship":1994,"citationCount":19,"citationInfo":2060,"publishDate":2063,"publishYear":2061,"citationAnalyzeStatus":1895,"lastCitationAnalyze":1949,"indexDatabases":2064,"openAccess":18,"references":18,"isForceReanalyzing":419},"6cf8679e-5c4d-45db-8109-359ae2779954","2024-01-14T09:11:27.474+00:00","2026-07-23T21:55:36.885+00:00",[],"Utility-of-check-dams-in-dilution-of-fluoride-concentration-in-ground-water-and-the-resultant-analysis-of-blood-serum-and-urine-of-villagers-Anantapur-District-Andhra-Pradesh-India",{"abstract":1953,"title":1955,"gsPaper":1957,"references":1959,"doi":1961},{"EN":1954},"High levels of fluoride (beyond 1.5 ppm) in ground water as source of drinking water are common in many parts of Andhra Pradesh, India, causing fluorosis. The study carried out in endemic Nalgonda District, Andhra Pradesh, has indicated that the fluoride-rich ground water present in the wells located down stream and close to the surface water bodies is getting diluted by the low-fluoride surface water. Encouraged by this result, check dams were constructed upstream of the identified marginally high fluoride bearing ground water zones in Anantapur District to reduce fluoride levels as an alternate solution for safe drinking water. In this paper, an attempt is made to study the utility and effect of these check dams in dilution of fluoride concentration in drinking water and its resultant impact on the health aspects of certain villagers of Anantapur District through the analysis of their blood serum and urine. Ground water samples from three fluoride-affected villages, blood and urine of males and females from the same villages were collected and analyzed for fluoride using ion selective electrode method. The results indicated that the fluoride levels in blood serum and urine of males in the age group of 5–11 years are found to be the highest. The concentration of fluoride in ground water is directly proportional to the concentration of fluoride in blood serum and urine. The concentration of fluoride in ground water with depth of the aquifer is a function of lithology, amount and duration of rainfall, rate of infiltration, level of ground water exploitation in the area etc. The construction of check dams upstream of the identified marginally high fluoride waters will not only cause additional recharge of ground water but also reduces the fluoride concentration eventually improving the health of the villagers.",{"EN":1956},"Utility of check dams in dilution of fluoride concentration in ground water and the resultant analysis of blood serum and urine of villagers, Anantapur District, Andhra Pradesh, India",{"VOID":1958},"[\"358752569700571512\"]",{"VOID":1960},"V Agrawal AK Vaish P Vaish (1997) ArticleTitleGroundwater quality: Focus on fluoride and fluorosis in Rajasthan Curr Sci 73 743–746 Occurrence Handle1:CAS:528:DyaK2sXnvFait7k%3D\nAP State Remote Sensing Applications Centre, (APSRAC) 1994 Integrated Remote Sensing Based Study for Identification of low Fluoride Ground Water Zones for Rural Water Supply in Anantapur District, AP, Technical Report, 21p.\nRN Athavale RK. Das (1999) ArticleTitleBeware! Fluorosis is zeroing in on you Down to Earth 8 24–25\nFA Chmilenko LV Baklanova AN Baklanov (1998) ArticleTitleDetermination of fluoride in waters by potentiometry with ion-selective electrodes J Anal Chem 53 461–465\nClesceri LS, Greenberg AE, Trussell RR (eds.) 1989 Standard Methods for the Examination of Water and Wastewater, 17th edn., American Public Health Association, pp. 10–200.\nDeshmukh AN, Wadaskar PM, Malpe DB. 1995 Fluorine in environment: A review. In Deshmukh AN, Yedekar DB, Nair KKK (eds.) Fluorine in Environment. Gondwana Geological Magazine, Special Issue 9, 1–20.\nDev Burman GK, Singh B, Khatri P. 1995 Hydrogeochemical studies of groundwater having high fluoride contents in Chandrapur District of Vidarbha region, Maharashtra. In Fluorine in Environment, Gondwana Geological Magazine, Special Issue 9, 71–80.\nRamamohana Rao, NV. 1982 Geochemical factors influencing the distribution of fluoride in rocks, soils and water resources of Nalgonda District, AP Unpublished Ph.D thesis, Osmania University, Hyderabad.\nRao RS, Krupanidhi KVJR, Venkata Swamy M, Rama Krishna GVA, Mastan Rao C, Subba Rao AV. 1992 Integrated remote sensing based approach to identify low fluoride drinking water sources – A case study in part of Nalgonda District, AP. In: Sahai B, Kachhwaha TS, Ravindran KV, Roy AK, Sharma ND, Sharma PK (eds.) Proceedings of the National Symposium on Remote Sensing for Sustainable Development, pp. 219–223.\nRao RS, Venkata Swamy M, Ramakrishna GVA, Mastan Rao C. 1995 Role of remote sensing in integrated fluorosis control programme in Anantapur District, Andhra Pradesh, India. In Muralikrishna IV (ed.), Proceedings of the International Conference on Remote Sensing and Geographical Information Systems for Environmental Planning, New Delhi: Tata McGraw-Hill Publishing Company Limited, pp. 309–314.\nRao RS, Tucker SP. 1996 Integrated remote sensing based approach to identify low fluoride drinking water sources – A case study of Nalgonda & Anantapur Districts of Andhra Pradesh, India. In Proceedings of the National Workshop on Application of Remote Sensing & GIS Techniques to Integrated Rural Development, SIII.15–SIII.38.\nKS Reddy KSS Prasad AN Raju (1999) ArticleTitleA biogeochemical study of the Podili and Tirupati area of Andhra Pradesh, India Environ Geol 37 313–316 Occurrence Handle10.1007\u002Fs002540050389\nVK Saxena S Ahmed (2001) ArticleTitleDissolution of fluoride in groundwater: A water–rock interaction study Environ Geol 40 1084–1087 Occurrence Handle10.1007\u002Fs002540100290\nN Subba Rao J Prakasa Rao B Nagamalleswara Rao P Niranjan Babu P Madusudhana Reddy D John Devadas (1998) ArticleTitleA preliminary report on fluoride content in groundwaters of Guntur area, Andhra Pradesh, India Curr Sci 75 887–888\nS Suma Latha SR Ambika SJ Prasad (1999) ArticleTitleFluoride contamination status of groundwater in Karnataka Curr Sci 76 730–734\nAK Susheela M Bhatnagar N Gnanasundaram TR Saraswathy (1999) ArticleTitleStructural aberrations in fluorosed human teeth: Biochemical and scanning electron microscopic studies Curr Sci 77 1677–1681\nJW Suttie EC Faltin (1971) ArticleTitleEffect of short period of fluoride ingestion on dental fluorosis in cattle Am J Veterinary Res 32 217–222\nVaidya SM, Patwardhan AA. 1995 Impact of fluoride ingestion in dental and skeletal fluorosis. In Fluorine in Environment. Gondwana Geological Magazine, Special Issue 9, 115–122.\nvan der Sommen JJ, Gischler M, Krupanidhi KVJR. 1994 Monitoring of groundwater in fluoride affected areas in Andhra Pradesh (India). In Proceedings of the International Workshop on Groundwater Monitoring and Recharge in Semi- arid Areas, pp. SI94–SI105.\nWorld Health Organization 1994 Fluorides and oral health, Technical Report Series 846, Report of a WHO Expert Committee on oral health status and fluoride use, 37p.\nBK Wodeyar G Sreenivasan (1996) ArticleTitleOccurrence of fluoride in the ground waters and its impact in Peddavankahalla basin, Bellary District, Karnataka – A preliminary study Curr Sci 70 71–73",{"VOID":1962},"10.1007\u002Fs10653-004-0786-4","2024-05-16T21:44:47.544+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10653-004-0786-4",[1966,1981],{"id":1967,"sortIndex":19,"researcher":18,"roles":1968,"affiliations":1969,"properties":1978,"displayName":1980,"givenName":18,"familyName":18},"19012a41-6d49-459e-8b85-82670ba45646",[263],[1970],{"id":1971,"sortIndex":19,"affiliation":1972,"properties":18},"35ef57d7-6a36-488b-8b7f-b57734889fb2",{"id":1971,"createTime":18,"updateTime":18,"relativeEntities":1973,"slug":18,"properties":1974,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1977,"statistic":18},[],{"title":1975},{"VI":1976},"AP State Remote Sensing Applications Centre (APSRAC), Directorate of Economics and Statistics (DES) Campus, Khairatabad, Hyderabad, India",[],{"title":1979},{"VI":1980},"S. V. B. K. Bhagavan",{"id":1982,"sortIndex":167,"researcher":18,"roles":1983,"affiliations":1984,"properties":1991,"displayName":1993,"givenName":18,"familyName":18},"d72cb914-9fc5-467e-b673-a8c9a2c363c7",[263],[1985],{"id":1971,"sortIndex":19,"affiliation":1986,"properties":18},{"id":1971,"createTime":18,"updateTime":18,"relativeEntities":1987,"slug":18,"properties":1988,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1990,"statistic":18},[],{"title":1989},{"VI":1976},[],{"title":1992},{"VI":1993},"V. 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:2214,"publishYear":996,"citationAnalyzeStatus":17,"lastCitationAnalyze":2215,"indexDatabases":2216,"openAccess":18,"references":18,"isForceReanalyzing":419},"bf591504-14d1-4494-8163-d12a87460a43","2023-12-29T19:18:25.399+00:00","2026-07-22T12:47:48.751+00:00",[],"Gamma-radiation-dose-rate-in-high-altitude-areas-in-the-Bageshwar-Champawat-and-Pithoragarh-districts-of-Uttarakhand-India",{"abstract":2072,"title":2074,"gsPaper":2076,"references":2078,"doi":2080},{"EN":2073},"Radiation has a deteriorating effect on humans as well as on the environment depending on its level, although we have all been exposed to natural gamma radiation from birth. The presence of radionuclides in rocks, soil, plants, and water is a major factor behind the natural gamma radiation. The present study deals with the study of natural gamma radiation at Bageshwar, Champawat and Pithoragarh districts of Uttarakhand. It also consists of seasonal variations in gamma radiation and its relationship with altitude and geology. The purpose of this study was to investigate the influence of altitude and geology on natural gamma radiation dose rate data in high-altitude areas of India. The highest gamma radiation value was 444 nSv\u002Fh in the summer and 342 nSv\u002Fh in the winter. The investigation recorded the gamma radiation up to 2542.20 m altitude, indicating that the geology of the areas is more relevant than the altitude. Few sites in such a high-altitude zone were found to exceed the value of 200 nSv\u002Fh, as reported by UNSCEAR. This research is necessary in order to consider the human health and climate changes, both of which are part of the action plan for the United Nation’s Sustainable Development Goals (SDG 3, SDG 13). \n                  \n                    \n                      \n                    \n                  \n                ",{"EN":2075},"Gamma radiation dose rate in high-altitude areas in the Bageshwar, Champawat and Pithoragarh districts of Uttarakhand, India",{"VOID":2077},"[\"7158131193974730037\"]",{"VOID":2079},"Abba, H., Saleh, M., Hassan, W., Aliyu, A., & Ramli, A. (2017). Mapping of natural gamma radiation (NGR) dose rate distribution in tin mining areas of Jos Plateau, Nigeria. Environmental Earth Sciences, 76, 1–9.\nAhamad, T., Singh, P., Nautiyal, O. P., Joshi, M., Bourai, A. A., Rana, A. S., & Singh, K. (2021). Quanitification of 222Rn\u002F220Rn exhalation rates from soil samples of Champawat region in Kumaun Himalaya, India. Journal of Radioanalytical and Nuclear Chemistry, 33, 1485–1495.\nBalabin, J. V., Gvozdevsky, B., Germanenko, A., Lukovnikova, A., & Toropov, A. (2019). Daily and seasonal variations of soft gamma radiation in the lower atmosphere. Bulletin of the Russian Academy of Sciences: Physics, 83, 596–599.\nBaykara, O., & Doğru, M. (2009). Determination of terrestrial gamma, 238U, 232Th and 40K in soil along fracture zones. Radiation Measurements, 44(1), 116–121.\nBıyık, R., Bingöldağ, N., Ataksor, B., & Duhan, F. (2023). Radiological assessment of natural radioactivity in a uranium deposit area: Köprübaşi, Türkiye. Radiation Protection Dosimetry, 199(2), 134–145.\nBrooks, A. L., Hoel, D. G., & Preston, R. J. (2016). The role of dose rate in radiation cancer risk: Evaluating the effect of dose rate at the molecular, cellular and tissue levels using key events in critical pathways following exposure to low LET radiation. 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A., Sanusi, S. M., & Gabdo, H. T. (2016). Radiological mapping of Kelantan, Malaysia, using terrestrial radiation dose rate. Isotopes in Environmental Health Studies, 52(3), 214–218.\nGusain, G., Rautela, B., Sahoo, S., Ishikawa, T., Prasad, G., Omori, Y., Sorimachi, A., Tokonami, S., & Ramola, R. (2012). Distribution of terrestrial gamma radiation dose rate in the eastern coastal area of Odisha, India. Radiation Protection Dosimetry, 152(1–3), 42–45.\nInoue, K., Fukushi, M., Van Le, T., Tsuruoka, H., Kasahara, S., & Nimelan, V. (2020). Distribution of gamma radiation dose rate related with natural radionuclides in all of Vietnam and radiological risk assessment of the built-up environment. Scientific Reports, 10(1), 12428.\nJeevarenuka, K., Pillai, G. S., Hameed, P. S., & Mathiyarasu, R. (2014). Evaluation of natural gamma radiation and absorbed gamma dose in soil and rocks of Perambalur district (Tamil Nadu, India). 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Radiochemistry, 62, 275–287.\nJindal, M. K., Sar, S. K., Baghel, T., & Wadhwa, D. S. (2021). Statistical study of the factors affecting outdoor gamma dose rate and impact of season. Journal of the Geological Society of India, 97, 85–93.\nJindal, M. K., Sar, S. K., Singh, S., & Arora, A. (2018b). Risk assessment from gamma dose rate in Balod District of Chhattisgarh, India. Journal of Radioanalytical and Nuclear Chemistry, 317, 387–395.\nKarunakara, N., Yashodhara, I., Kumara, K. S., Tripathi, R., Menon, S., Kadam, S., & Chougaonkar, M. (2014). Assessment of ambient gamma dose rate around a prospective uranium mining area of South India—A comparative study of dose by direct methods and soil radioactivity measurements. Results in Physics, 4, 20–27.\nKukreti, B., Hamilton, S., Sharma, G. and Kumar, P. (2014) Assessment of ambient gamma radiation levels in the sedimentary environment of Khasi Hills, Meghalaya (India) 1–2.\nLaogun, A., Ajayi, N., & Agaja, S. (2006). 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Environmental Science and Pollution Research. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11356-023-25711-4\nPatni, K., Pande, C., Pande, A. P., Tewari, G., & Joshi, T. (2020). Distribution of naturally occurring uranium and other heavy toxic elements in selected spring water samples of Pithoragarh District, Uttarakhand, India. SN Applied Sciences, 2(12), 2129.\nPatni, K., Pande, C., Pande, A. P., Tiwari, G., & Joshi, T. (2021). Seasonal variation of uranium and physico-chemical parameters in spring water sources of Pithoragarh city, Uttarakhand, India. Journal of Radioanalytical and Nuclear Chemistry, 329(2), 647–660.\nRafique, M., Basharat, M., Saeed, R. A., & Rahamn, S. (2013). Effect of geology and altitude on ambient outdoor gamma dose rates in district Poonch, azad Kashmir. Carpathian Journal of Earth and Environmental Sciences, 8(4), 165–173.\nRaghavendra, T., Ramakrishna, S., Vijayalakshmi, T., Himabindu, V., & Arunachalam, J. (2014). 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Journal of Applied Geophysics, 75(3), 455–463.",{"VOID":2081},"10.1007\u002Fs10653-023-01714-5","2024-06-26T23:17:17.598+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10653-023-01714-5",[2085,2102,2117,2134],{"id":2086,"sortIndex":19,"researcher":18,"roles":2087,"affiliations":2088,"properties":2097,"displayName":2099,"givenName":18,"familyName":18},"2b6dea5a-db8b-4f9a-a087-e6d42f65fd80",[263],[2089],{"id":2090,"sortIndex":19,"affiliation":2091,"properties":18},"a50c8e35-e131-43c8-af36-fcb890c5ab77",{"id":2090,"createTime":18,"updateTime":18,"relativeEntities":2092,"slug":18,"properties":2093,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":2096,"statistic":18},[],{"title":2094},{"VI":2095},"School of Allied Sciences, Graphic Era Hill University, Bhimtal Campus, Bhimtal, India",[],{"title":2098,"gsAuthor":2100},{"VI":2099},"Kiran 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Joshi",{"url":2083,"publisher":2150,"properties":2210},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":2151,"slug":10,"properties":2152,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":2155,"manageAffiliations":2179,"indexDatabases":2190,"url":18,"thumbnailPath":18,"statistic":2205,"gsStatistic":18,"type":231,"analyzePriority":18},[],{"issn":2153,"title":2154},{"VOID":13},{"VOID":15},[2156,2160,2164,2168,2172,2176],{"id":22,"createTime":18,"updateTime":18,"relativeEntities":2157,"label":2158,"description":2159,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":25},{},{"id":34,"createTime":18,"updateTime":18,"relativeEntities":2161,"label":2162,"description":2163,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":37},{},{"id":28,"createTime":18,"updateTime":18,"relativeEntities":2165,"label":2166,"description":2167,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":31},{},{"id":40,"createTime":18,"updateTime":18,"relativeEntities":2169,"label":2170,"description":2171,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":43},{},{"id":46,"createTime":18,"updateTime":18,"relativeEntities":2173,"label":2174,"description":2175,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":49},{},{"id":52,"createTime":18,"updateTime":18,"relativeEntities":2177,"label":2178,"description":18,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":55},[2180,2185],{"id":58,"createTime":18,"updateTime":18,"relativeEntities":2181,"slug":18,"properties":2182,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":2184,"statistic":18},[],{"title":2183},{"EN":62},[64],{"id":66,"createTime":18,"updateTime":18,"relativeEntities":2186,"slug":18,"properties":2187,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":2189,"statistic":18},[],{"title":2188},{"EN":70},[],[2191,2198],{"id":74,"indexDatabase":2192,"url":85,"indexYears":86,"academicFieldIds":2197,"indexDatabaseRanking":94},{"id":76,"createTime":18,"updateTime":18,"relativeEntities":2193,"label":2194,"description":2195,"key":82,"publicationTags":2196,"standard":18},[],{"EN":79,"VI":79},{"EN":79,"VI":81},[84],[88,89,90,91,92,93],{"id":96,"indexDatabase":2199,"url":18,"indexYears":18,"academicFieldIds":2204,"indexDatabaseRanking":18},{"id":98,"createTime":18,"updateTime":18,"relativeEntities":2200,"label":2201,"description":2202,"key":105,"publicationTags":2203,"standard":18},[],{"EN":101,"VI":101},{"EN":103,"VI":104},[107,108],[110,111,112,113],{"impactFactor":19,"impactFactorByYear":2206,"i10Index":126,"i10IndexLast5Year":127,"totalPublication":128,"totalPublicationByYear":2207,"totalCitation":164,"totalCitationByYear":2208,"totalCitationPerPublication":196,"totalCitationPerPublicationByYear":2209,"hindexLast5Year":151,"hindex":151},{"2012":116,"2013":117,"2014":117,"2015":118,"2016":117,"2017":119,"2018":120,"2019":121,"2020":122,"2021":123,"2022":124,"2023":125},{"1979":130,"1980":130,"1981":131,"1982":132,"1983":133,"1984":133,"1985":133,"1986":130,"1987":134,"1988":135,"1989":136,"1990":137,"1991":138,"1992":139,"1993":136,"1994":140,"1995":135,"1996":139,"1997":130,"1998":141,"1999":142,"2000":139,"2001":141,"2002":137,"2003":143,"2004":138,"2005":144,"2006":145,"2007":146,"2008":147,"2009":148,"2010":149,"2011":150,"2012":151,"2013":152,"2014":153,"2015":154,"2016":155,"2017":156,"2018":157,"2019":158,"2020":159,"2021":160,"2022":161,"2023":162,"2024":163},{"1979":166,"1981":133,"1982":167,"1983":137,"1984":168,"1985":169,"1986":168,"1987":170,"1988":171,"1989":132,"1990":172,"1991":173,"1992":174,"1994":175,"1995":176,"1996":177,"2005":178,"2006":160,"2007":179,"2008":180,"2009":181,"2010":182,"2011":183,"2012":184,"2013":185,"2014":186,"2015":160,"2016":187,"2017":188,"2018":189,"2019":190,"2020":191,"2021":192,"2022":193,"2023":194,"2024":195},{"1979":198,"1981":199,"1982":200,"1983":201,"1984":202,"1985":203,"1986":204,"1987":204,"1988":205,"1989":206,"1990":207,"1991":208,"1992":209,"1994":210,"1995":211,"1996":212,"2005":213,"2006":214,"2007":215,"2008":216,"2009":217,"2010":218,"2011":219,"2012":220,"2013":221,"2014":222,"2015":223,"2016":224,"2017":225,"2018":226,"2019":227,"2020":228,"2021":229,"2022":123,"2023":230,"2024":200},{"pages":2211,"volume":2213},{"VOID":2212},"8119-8133",{"VOID":994},"2023-08-04","2026-07-22T12:47:48.750+00:00",[107,94],{"id":2218,"createTime":2219,"updateTime":2220,"relativeEntities":2221,"slug":2222,"properties":2223,"entityType":252,"verifyStatus":253,"verifyTime":2234,"verifyNote":255,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":2235,"fullTextUrl":18,"authors":2236,"publicationType":349,"publisherRelationship":2386,"citationCount":18,"citationInfo":18,"publishDate":2451,"publishYear":2452,"citationAnalyzeStatus":2453,"lastCitationAnalyze":2454,"indexDatabases":2455,"openAccess":18,"references":18,"isForceReanalyzing":419},"54373c02-84ff-4ee3-815d-e15093756464","2024-01-09T07:35:39.675+00:00","2026-07-22T04:40:31.665+00:00",[],"Urinary-PAHs-metabolites-in-Karakoram-Highway-s-heavy-traffic-vehicle-HTV-drivers-evidence-of-exposure-and-health-risk",{"abstract":2224,"title":2226,"gsPaper":2228,"references":2230,"doi":2232},{"EN":2225},"The current study features PAHs exposure on Karakoram Highway, a route of utmost importance in Pakistan. The drivers of heavy traffic vehicles (HTV) on Karakoram Highway spend long hours amid dense traffic and therefore, inevitably inhale huge amount of PAH carcinogens. The urinary metabolites of PAHs in such drivers (meeting selection criteria n = 48) and a control group (n = 49) were comparatively profiled. The higher urinary biomarkers among ninety-six percent HTV drivers were evident of PAHs exposure. We observed elevated concentrations of urinary benzo[a]pyrene metabolites (3-OH-BaP = 3.53 ± 0.62 ng g–1 creatinine and 9-OH-BaP = 3.69 ± 0.74 ng g–1 creatinine) in HTV driver’s samples compared to controls (0.85 ± 0.08 and 0.31 ± 0.03 ng g–1 creatinine, respectively). Interestingly, urinary benzo[a]pyrene metabolites were detected in almost similar amount among HTV drivers irrespective of their working hours. A distinct smoking effect was manifested with rising urinary levels of 1-hydroxypyrene, 2-hydroxyphenanthrene, and 3-hydroxybenzo[a]pyrene with corresponding increase in driving hours per day. These metabolites exhibited characteristic exposures to low molecular weight volatile PAHs that are commonly found in vehicular exhaust. The elevated PAH body burden was directly linked to the nature of their job and the route-long environmental pollution on Karakoram Highway. Additionally, the poor economic status and smoking also increased HTV driver’s health vulnerability and significantly declined their health capacity. There was conclusive evidence that HTV drivers were exposed to PAHs during a ride on Karakoram Highway, back and forth, an aspect not reported earlier.",{"EN":2227},"Urinary PAHs metabolites in Karakoram Highway’s heavy traffic vehicle (HTV) drivers: evidence of exposure and health risk",{"VOID":2229},"[]",{"VOID":2231},"Ali, M. U., Lin, S., Yousaf, B., Abbas, Q., Munir, M. 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Environmental Pollution, 246, 319–327.\nZhou, Y., Sun, H., Xie, J., Song, Y., Liu, Y., Huang, X., Zhou, T., Rong, Y., Wu, T., Yuan, J., & Chen, W. (2016). Urinary polycyclic aromatic hydrocarbon metabolites and altered lung function in Wuhan, China. American Journal of Respiratory and Critical Care Medicine, 193(8), 835–846.",{"VOID":2233},"10.1007\u002Fs10653-022-01301-0","2024-06-25T21:55:02.459+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10653-022-01301-0",[2237,2252,2274,2289,2304,2317,2332,2356,2371],{"id":2238,"sortIndex":19,"researcher":18,"roles":2239,"affiliations":2240,"properties":2249,"displayName":2251,"givenName":18,"familyName":18},"1f47ee49-ce39-4f00-a5bf-08a6b81b1c9b",[263],[2241],{"id":2242,"sortIndex":19,"affiliation":2243,"properties":18},"3ccdc78f-00e8-4143-a024-4d8bd43fdfa3",{"id":2242,"createTime":18,"updateTime":18,"relativeEntities":2244,"slug":18,"properties":2245,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":2248,"statistic":18},[],{"title":2246},{"VI":2247},"Eco-Health Research Group, Department of Environmental Sciences, PMAS Arid Agriculture University, Rawalpindi, Pakistan",[],{"title":2250},{"VI":2251},"Maria 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