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A.; Souabi, S.; Yaacoubi, A., (2008). Pollution reduction and biodegradability index improvement of tannery effluents. Int. J. Environ. Sci. Tech., 5(1), 11–16 (6 pages).\nAdikane, H. V.; Dange, M. N.; Selvakumari, K., (2006). Optimization of anaerobically digested distillery molasses spent wash decolorization using soil as inoculum in the absence of additional carbon and nitrogen source. Bioresour. Tech., 97(16), 2131–2135 (5 pages).\nAgarwal, C. S.; Pandey, G. S., (1994). Soil pollution by spent wash discharge: Depletion of manganese (II) and impairment of its oxidation. J. Environ. Biol., 15(1), 49–53 (5 pages).\nAnnadurai, G.; Ling, L. Y.; Lee J. F., (2008). Statistical optimization of medium components and growth conditions by response surface methodology to enhance phenol degradation by Pseudomonas putida. J. Hazard. Mater., 151(1), 171–178 (8 pages).\nAnastasi, A.; Prigione, V.; Casieri, L.; Varese. G. C., ( 2009). Decolourisation of model and industrial dyes by mitosporic fungi in different culture condition. World. J. Microbiol. Biotech., 25(8), 1363–1374 (12 pages).\nAoshima, I.; Tozawa,Y.; Ohmomo, S.; Udea K., (1985). Production of Decolorizing activity for molasses pigment by Coriolus versicolor Ps4a. Agri. Niol. Chem., 49(7), 2041–2045 (8 pages).\nAPHA, (1995). Standard methods for the examination of water and waste water. 19th ed. Washington, DC (8 pages).\nChavan, M. N.; Kulkarani, M. V.; Zope, V. P.; Mahulikar, P. P., (2006). Microbial degradation of melanoidins in distillery spent wash by indigeneous isolate. Indian J. Biotech., 5(1), 416–421 (6 pages).\nCuthbertson, A. G. S.; Blackburn, L. F.; Northing, P.; Luo, W.; Cannon, R. J. C.; Walters, K. F. A., (2010). Chemical compatibility testing of the entomopathogenic fungus Lecanicillium muscarium to control Bemisia tabaci in glasshouse environment. Int. J. Environ. Sci. Tech., 7(2) 405–409 (5pages).\nDahiya, J.; Sing, D.; Nigam, P.,(2001a). Decolorization of molasses waste water by cells of Pseudomonas fluorescens on porous cellulose carrier. Biores. Tech., 13(78), 110–114 (8 pages).\nDahiya J.; Sing, D.; Nigam, P.,(2001b). Decolourisation of synthetic and spent wash melanoidins using the white-rot fungus Phanerochaete chrysosporium JAG-40. Bioresour Tech., (78) 95–98 (4 pages).\nFitzGibbon, F. J.; Nigam, P.; Sing, D,; Marchant, R., (1995). Biological treatment of distillery waste for pollution remediation. J. Basic. Microbiol., 35(5), 293–301 (9 pages).\nFujita, M.; Ike, M.; Kavagoshi, Y.; Miyata, N., (2000). Biotreatment persistent substances using effective microorganisms. Wat. Sci. Tech., 42(12), 86–93 (7 pages).\nGopinath, K.; MeeraShib, H. A.; Muthukumar, K.; Velan, M., (2009). Improved biodegradation of congored by using Bacillus sp. Bioresourse Tech., 100(2), 670–675 (6 pages).\nJimenez, A. M.; Borja, R.; Martin. A.; Raposo F., (2004). Mathematical modelling of aerobically degradation of vinasses with Penicillium decumbens. Process Biochem., 40(8), 2805–2811 (7 pages).\nKaushik, G.; Thakur, I. Sh., (2009). Isolation of fungi and optimization of process parameters for decolorization of distillery mill effluent. World. J. Microbiol. Biotech., 25(6), 157–163 (7 pages).\nKrishna Prasad, R.; Srivastava, S. N., (2009). Sorption of distillery spent wash only onto fly ash: Kinetics, mechanism, process design and factorial design. J. Hazard. Mater., 161(2), 1313–1322 (10 pages).\nKumar, V.; Wati, L.; Nigam, P.; Banat, I. M.; Yadav, B. S.; Singh, D.; Marchant, R., (1998). Decolorization and biodegradation of anerobically digested sugarcane molasses spentwash effluent from biomethanated plant by white-rot fungi. Process biochemestry. 33(1), 83–88 (6 pages).\nLata, K.; Kansal, A.; Balakrishnan, M.; Rajeswari, K. V.; Kishore V. N.,(2002). Assessment of biomethanation potential of selected industrial organic effluents. Resour. Conserc. Recycl., 35(3), 147–161 (14 pages).\nLing, T.; Guanghua, Z.; Jun, R., (2009). Effects of chromium on seed germination, root elongation and coleoptile growth in six pulses. Int. J. Environ. Sci. Tech., 6(4), 571–578 (8 pages).\nMadukasi, E. I.; Dai, X.; H, C.; Zhou, J., (2010). Potentials of phototrophic bacteria in treating pharmaceutical wastewater. Int. J. Environ. Sci. Tech., 7(1) 165–174 (10 pages).\nMalakootian, M.; Nouri, J.; Hossaini, H., (2009). Removal of heavy metals from paint industry’s wastewater using Leca as an available adsorbent. Int. J. Environ. Sci. Tech., 6(2) 183–190 (8 pages).\nManishankar, P.; Rani, C.; Viswanathan, S., (2004). Effects of halides in the electrochemical treatment of distillery effluent. Chemosphere., 57(8), 961–966 (6 pages ).\nMullai, P.; Vishali, S., (2007). Biodegradation of penicillin-G wastewater using Phanerochate chysosporium-An equilibrium and kinetic modeling. Afr. J. Biotech., 6(12), 1450–1454 (5 pages).\nNandy, T.; Shastry, S.; Kaul S. N., (2002). Wastewater management in cane molasses distillery involving bioresource recovery. J. Environ. Manage., 65(1), 25–38 (13 pages).\nNwuche, C. O.; Ugoji, E. O., (2008). Effects of heavy metal pollution on the soil microbial activity. Int. J. Environ. Sci. Tech., 5(3), 409–414 (6 pages).\nNwuche, C. O.; Ugoji, E. O, (2010). Effect of co-existing plant specie on soil microbial activity under heavy metal stress. Int. J. Environ. Sci. Tech., 7(4), 697–704 (8 pages).\nPant, D.; Adholeya, A., (2007). Identification, ligninolytic enzyme activity and decolorization potential of two fungi isolated from a distillery effluent contaminated site. Water Air Soil Pollut., 183(1-4), 165–176 (8 pages).\nPant, D.; Adholeya, A., (2007). Biological approaches for treatment of distillery waste water. A review Bioresour. Tech., 98(12), 2321–2334 (13 pages).\nPazouki, M.; Shayegan, J.; Afshari, A.,(2008). Screening of microorganisms for decolorization of treated distillery wastewater. Iran. J. Sci. Techn., 32(B1 ), 53–60 (8 pages).\nPazouki, M.; Najafpour, G.; Hosein, M. R., (2008). Kinetic models of cell growth, substrate utilization and bio-decolorization of distillery wastewater by Aspergillus fumigatus. UB260. Afr. J. Biotech., 7(9), 1369–1376 (8 pages).\nRaghukumar, C.; Rivonkar, G., (2001) Decolorization of molasses spent wash by white-rot fungus Flavodon flavus, isolated from a marine habitat. Appl. Microbiol. Biotech., 55(4), 510–514 (5 pages).\nRamya.M.; Anusha, B.; Kalavathy, S.; Devilaksmi, S., (2007). Biodecolorization and biodegradation of reactive blue by Aspergillus sp. Afr. J. Biotech., 6(12), 1441–1445 (5 pages).\nRavikumar, R.; Monash, P.; Derek Chan, J. C.; Saravanan K., (2010). Microbial decolorization of biomethanate distillery spentwash using Aspergillus nidulans. Asian J. Microbiol. Biotech. Env. Sci., 12(2), 337–342 (6 pages).\nSaetang, J.; Babel, S., (2009). Effect of leachate loading rate and incubation period on the treatment efficiency by T. versicolor immobilized on foam cubes. Int. J. Environ. Sci. Tech., 6(3), 457–466 (10 pages).\nSamarghandi, M. R.; Nouri J.; Mesdaghinia, A. R.; Mahvi, A. H.; Nasseri, S.; Vaezi, F., (2007). Efficiency removal of phenol, lead and cadmium by means of UV\u002F TiO2\u002F H2O2 processes. Int. J. Environ. Sci. Tech. 4(1), 19–26 (8 pages).\nSatyawali, Y.; Balakrishnan, M., (2008). Wastewater treatment in molasses-based alcohol distilleries for COD and color removal: A review. J. Environ. Manage. 86(3), 481–497 (16 pages).\nSeyis, I.; Subasing, T., (2009). Screeming of different fungi for decolorization of molasses. Brazilian J. Microbiol., 40(1 ), 61–65 (5 pages).\nShah, B. A.; Shah, A. V.; Singh, R. R., (2009). Sorption isotherms and kinetics of chromium uptake from wastewater using natural sorbent material. Int. J. Environ. Sci. Tech., 6(1) 77–90 (14 pages).\nSingh, A.; Bajar, S.; Bishnoi, N. R.; Singh, N., (2010). Laccase production by Aspergillus heteromorphus using distillery spent wash and lignocellulosic biomass. J. Hazard. Mater., 15, 176(1-3), 79–82 (4 pages).\nThakkar, A. P.; Dhamanakar, V.; Kapadnis B., (2006). Biocatalytic decolourisation of molasses by phanerochaete chrysosporium. Biores. Tech., 97(12), 1387–1391 (44 pages).\nVijayakumar, M. H.; Veeranagouda, Y.; Neelakanteshwar, K.; Karegoudar, T. B., (2006). Decolorization of 1:2 metal complex dye Acid blue 193 by a newly isolated fungus, Cladosporium cladosporioides. World. J. Microbiol. Biotechnol., 22(2), 157–162 (5 pages).\nViswanath, B.; Subhosh Chandra, M.; Pallavi, H.; Rajasekhar Reddy B., (2008). Screening and assessment of laccase producing fungi isolated from different environmental samples. African J. Biotechnol., 8(1), 1129–1133 (8 pages).\nZhao, Y. C.; Yi, X. Y.; Zhang, M.; Liu, L.; Ma, W. J., (2010). Fundamental study of degradation of dichlorodiphenyl trichloroethane in soil by laccase from white rot fungi, Int. J. Environ. Sci. Tech., 7(2), 359–366 (8 pages).",{"EN":129},"This study presents the standardization of nutrient concentration, pH and temperature required to decolorize the anerobically treated distillery spent wash using the fungus Cladosporium cladosporioides. Experiments were carried out to measure the decolorization of distillery spent wash effluent and it was found to be effective in acidic environment. From the results it was observed that a maximum color reduction of 52.6 % and Chemichal Oxygen Demand. removal of 62.5 % were achieved. The optimum conditions required for the growth of the fungus was found to be 5 g\u002FL of fructose, 3 g\u002FL of peptone, 5 pH and 35 °C. It was also observed that during the process a maximum of 1.2 g of fungal growth was attained. Decolorizing ability of the fungus was confirmed using spectrophotometer and High Performance Liquid Chromatography analysis. Single factorial experimental design was used to optimize the parameters. Apart from decolorization it was observed that fungus also has the ability to degrade the spent wash efficiently. This investigation could be an approach towards control of environmental pollution and health hazards of people in and around the distillery unit.",{"EN":131},"Single factorial experimental design for decolorizing anaerobically treated distillery spent wash using cladosporium cladosporioides",{"VOID":133},"10.1007\u002FBF03326199","PUBLICATION","VERIFIED","Auto Verify","http:\u002F\u002Flink.springer.com\u002F10.1007\u002FBF03326199",[139,156,171],{"id":140,"sortIndex":141,"researcher":18,"roles":142,"affiliations":144,"properties":153},"d58b1a73-6210-407f-9434-e5386ceeb221",2,[143],"AUTHOR",[145],{"id":18,"sortIndex":19,"affiliation":146,"properties":18},{"id":147,"createTime":148,"updateTime":148,"relativeEntities":149,"slug":18,"properties":150,"entityType":54,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"8f75b40b-dc9a-43ec-b093-25d8b2ab8fb4","2024-02-08T07:59:45.434+00:00",[],{"title":151},{"VI":152},"Department of Chemical Engineering, Kongu Engineering College, TamilNadu, India",{"title":154},{"VI":155},"K. 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J Hazard Mater 418:126381\nAzizian S (2004) Kinetic models of sorption: a theoretical analysis. J Colloid Interface Sci 276:47–52\nBanaee M, Soltanian S, Sureda A, Gholamhosseini A, Haghi BN, Akhlaghi M, Derikvandy A (2019) Evaluation of single and combined effects of cadmium and micro-plastic particles on biochemical and immunological parameters of common carp (Cyprinus carpio). Chemosphere 236:124335\nBao ZZ, Chen ZF, Zhong Y, Wang G, Qi Z, Cai Z (2021) Adsorption of phenanthrene and its monohydroxy derivatives on polyvinyl chloride microplastics in aqueous solution: model fitting and mechanism analysis. Sci Total Environ 764:142889\nBrennecke D, Paiva DB, F, Caçador I Canning-Clode J, (2016) Microplastics as vector for heavy metal contamination from the marine environment. Estuar Coast Shelf Sci 178:189–195\nCampanale C, Massarelli C, Savino I, Locaputo V, Uricchio VF (2020) A detailed review study on potential effects of microplastics and additives of concern on human health. Int J Environ Res Public Health 17(4):1212\nChen X, Gu X, Bao L, Ma S, Mu Y (2021a) Comparison of adsorption and desorption of triclosan between microplastics and soil particles. Chemosphere 263:127947\nChen Y, Li J, Wang F, Yang H, Liu L (2021b) Adsorption of tetracyclines onto polyethylene microplastics: a combined study of experiment and molecular dynamics simulation. Chemosphere 265:129133\nCitterich F, Giudice AL, Azzaro M (2023) A plastic world: a review of microplastic pollution in the freshwaters of the Earth’s poles. Sci Total Environ 869:161847\nDas P, Halder G, Bal M (2023) A critical review on remediation of microplastics using microalgae from aqueous system. Sci Total Environ 898:166425\nDong Y, Gao M, Song Z, Qiu W (2020) As(III) adsorption onto different-sized polystyrene microplastic particles and its mechanism. Chemosphere 239:124792\nFreundlich H (1907) Ueber die adsorption in loesungen. Z Phys Chem 57:385–470\nFu L, Li J, Wang G, Luan Y, Dai W (2021) Adsorption behavior of organic pollutants on microplastics. Ecotoxicol Environ Safety 217:112207\nHo YS, McKay G (1999) Pseudo-second order model for sorption processes. Process Biochem 34:451–465\nIssac MN, Kandasubramanian B (2021) Effect of microplastics in water and aquatic systems. Environ Sci Pollut Res 28:19544–19562\nJoo SH, Liang Y, Kim M, Byun J, Choi H (2021) Microplastics with adsorbed contaminants: mechanisms and treatment. Environ Chall 3:100042\nKhalid N, Aqeel M, Noman A, Khan SM, Akhter N (2021) Interactions and effects of microplastics with heavy metals in aquatic and terrestrial environments. Environ Poll 290:118104\nKrasucka P, Bogusz A, Baranowska-Wójcik E, Czech B, Szwajgier D, Rek M, Ok YS, Oleszczuk P (2022) Digestion of plastics using in vitro human gastrointestinal tract and their potential to adsorb emerging organic pollutants. Sci Total Environ 843:157108\nKutralam-Muniasamy G, Pérez-Guevara F, Martínez IE, Shruti VC (2021) Overview of microplastics pollution with heavy metals: analytical methods, occurrence, transfer risks and call for standardization. J Hazard Mater 415:125755\nLangmuir I (1918) The adsorption of gases on plane surfaces of glass, mica and platinum. J Am Chem Soc 40:1361–1403\nLi J, Zhang K, Zhang H (2018) Adsorption of antibiotics on microplastics. Environ Poll 237:460–467\nLiu X, Shi H, Xie B, Dionysiou DD, Zhao Y (2019) Microplastics as both a sink and a source of bisphenol a in the marine environment. Environ Sci Technol 53(17):10188–10196\nLiu Q, Wu H, Chen J, Guo B, Zhao X, Lin H, Li W, Zhao X, Lv S, Huang C (2022a) Adsorption mechanism of trace heavy metals on microplastics and simulating their effect on microalgae in river. Environ Res 214:113777\nLiu S, Huang JH, Zhang W, Shi LX, Yi KX, Yu HB, Zhang CY, Li SZ, Li JN (2022b) Microplastics as a vehicle of heavy metals in aquatic environments: a review of adsorption factors, mechanisms, and biological effects. J Environ Manage 302:113995\nMcKay G, Ho YS, Ng JCP (1999) Biosorption of copper from waste waters: a review. Sep Purif Methods 28:87–125\nMoura DS, Pestana CJ, Moffat CF, Hui J, Irvine JTS, Lawton LA (2023) Characterisation of microplastics is key for reliable data interpretation. Chemosphere 331:138691\nNunes BZ, Huang Y, Ribeiro VV, Wu S, Holbech H, Moreira LB, Xu EG, Castro IB (2023) Microplastic contamination in seawater across global marine protected areas boundaries. Environ Poll 316(1):120692\nPrinz N, Korez Š (2020). Understanding how microplastics affect marine biota on the cellular level is important for assessing ecosystem function: a review. In: Jungblut, S., Liebich, V., Bode-Dalby, M. (eds) YOUMARES 9—The Oceans: Our Research, Our Future. Springer, Cham. https:\u002F\u002Fdoi.org\u002F10.1007\u002F978-3-030-20389-4_6\nSips R (1948) On the structure of a catalyst surface. J Chem Phys 16:490–495\nVerougstraete V, Lison D, Hotz P (2002) A systematic review of cytogenetic studies conducted in human populations exposed to cadmium compounds. Mutation Res 511:15–43\nVijayaraghavan K, Ashokkumar T (2019) Characterization and evaluation of reactive dye adsorption onto biochar derived from Turbinaria conoides biomass. Environ Prog Sustain Energy 38:13143\nVijayaraghavan K, Segovia E (2013) Development of bench-scale bio-packed column for wastewater treatment from optical emission spectrometry. Clean: Soil, Air, Water 41:1093–1099\nVijayaraghavan K, Yun YS (2008) Bacterial biosorbents and biosorption. Biotechnol Adv 26:266–291\nVijayaraghavan K, Joshi UM, Balasubramanian R (2010) Removal of metal ions from storm-water runoff by low-cost sorbents: batch and column studies. J Environ Eng 136:1113–1118\nVijayaraghavan K, Gupta S, Joshi UM (2012) Comparative assessment of Al(III) and Cd(II) biosorption onto Turbinaria conoides in single and binary systems. Water Air Soil Pollut 223:2923–2931\nWang X, Zhang R, Li Z, Yan B (2022) Adsorption properties and influencing factors of Cu(II) on polystyrene and polyethylene terephthalate microplastics in seawater. Sci Total Environ 812:152573\nWang Y, Wu Y, Pu Q, Sun P, Zhao W, Liu M, Li Y (2023) Aquatic toxicity of tire microplastics on marine and freshwater organisms: an in silico approach. Chemosphere 313:137523",{"EN":230},"",{"EN":232},"Microplastics and heavy metals are two different classes of pollutants that are often present in aquatic systems. However, the interaction between these two pollutants is poorly understood in freshwater systems. This research has examined the sorption of cadmium(II) ions onto polyethylene microplastic (PEMP) under freshwater conditions. The scanning electron microscope, X-ray diffraction, and Fourier transform infrared analyses confirmed the existence of different functional groups and the porous nature of the PEMP surface. The influences of physicochemical parameters such as the solution pH, contact time, and initial Cd(II) concentration have been examined. The Langmuir isotherm predicted the Cd(II) sorption capacity by PEMP at pH 5 as 1.37 mg\u002Fg. Several isotherm models were utilized, including the Freundlich, Langmuir, and Sips models. The results confirmed that the Sips model has been more appropriate for Cd(II)-PEMP isotherm based on percentage errors and correlation coefficient values. Furthermore, the pseudo-first kinetic model fitted Cd(II)-PEMP more accurately than the pseudo-second kinetic equation. Desorption experiments were conducted to release Cd(II) ions from Cd(II)-bearing PEMP using different chemical agents. The findings showed that using 0.01 M nitric acid resulted in a desorption efficiency exceeding 99.8%. This demonstrates that microplastics loaded with Cd(II) may release Cd(II) ions in highly acidic environments, potentially allowing for the uptake of Cd(II) ions by aquatic organisms in their digestive tracts.",{"EN":234},"Interactive behavior of cadmium ions onto polyethylene microplastics in aquatic system",{"VOID":236},"10.1007\u002Fs13762-024-05508-9","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs13762-024-05508-9",[239,255,272,284,300],{"id":240,"sortIndex":109,"researcher":18,"roles":241,"affiliations":242,"properties":252},"b2fa577c-6487-4807-9553-7f21c06b0885",[143],[243],{"id":18,"sortIndex":19,"affiliation":244,"properties":18},{"id":245,"createTime":246,"updateTime":246,"relativeEntities":247,"slug":248,"properties":249,"entityType":54,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"b6e8eb49-7c47-4762-8ea6-5e4730792583","2024-04-06T17:48:38.655+00:00",[],"Department-of-Engineering-University-of-Technology-and-Applied-Sciences-Suhar-Sultanate-of-Oman",{"title":250},{"VI":251},"Department of Engineering, University of Technology and Applied Sciences, Suhar, Sultanate of Oman",{"title":253},{"VI":254},"K. Saravana Kumar",{"id":256,"sortIndex":257,"researcher":18,"roles":258,"affiliations":259,"properties":269},"2d580e9a-e08c-4b4e-bb6a-ab6e4f360e5b",4,[143],[260],{"id":18,"sortIndex":19,"affiliation":261,"properties":18},{"id":262,"createTime":263,"updateTime":263,"relativeEntities":264,"slug":265,"properties":266,"entityType":54,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"da7804cf-7ced-44ce-b2af-559f53fd29c9","2024-04-06T17:48:38.756+00:00",[],"Department-of-Chemical-Engineering-Higher-Colleges-of-Technology-Ruwais-Women-s-College-Abu-Dhabi-United-Arab-Emirates",{"title":267},{"VI":268},"Department of Chemical Engineering, Higher Colleges of Technology, Ruwais Women’s College, Abu Dhabi, United Arab Emirates",{"title":270},{"VI":271},"S. Manickkam",{"id":273,"sortIndex":141,"researcher":18,"roles":274,"affiliations":275,"properties":281},"33a4788b-ab04-47a3-851a-1c2a1fa9c61f",[143],[276],{"id":18,"sortIndex":19,"affiliation":277,"properties":18},{"id":245,"createTime":246,"updateTime":246,"relativeEntities":278,"slug":248,"properties":279,"entityType":54,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":280},{"VI":251},{"title":282},{"VI":283},"R. Senthilkumar",{"id":285,"sortIndex":19,"researcher":18,"roles":286,"affiliations":287,"properties":297},"1afca457-8138-4a07-847c-effc2b92d6b0",[143],[288],{"id":18,"sortIndex":19,"affiliation":289,"properties":18},{"id":290,"createTime":291,"updateTime":291,"relativeEntities":292,"slug":293,"properties":294,"entityType":54,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"8ceeda3d-a641-4a04-b73e-246ea209866d","2024-04-06T17:48:38.142+00:00",[],"Petroleum-and-Chemical-Engineering-Programme-Area-Faculty-of-Engineering-Universiti-Teknologi-Brunei-Tungku-Highway-Gadong-Brunei-Darussalam",{"title":295},{"VI":296},"Petroleum and Chemical Engineering Programme Area, Faculty of Engineering, Universiti Teknologi Brunei, Tungku Highway, Gadong, Brunei Darussalam",{"title":298},{"VI":299},"D. M. Reddy Prasad",{"id":301,"sortIndex":111,"researcher":18,"roles":302,"affiliations":303,"properties":313},"15aff9c7-cc1c-461d-89ed-edd3a4843c03",[143],[304],{"id":18,"sortIndex":19,"affiliation":305,"properties":18},{"id":306,"createTime":307,"updateTime":307,"relativeEntities":308,"slug":309,"properties":310,"entityType":54,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"53858871-0988-43d6-86b0-bd1638caf15f","2024-04-06T17:48:38.280+00:00",[],"Department-of-Engineering-University-of-Technology-and-Applied-Sciences-Salalah-Sultanate-of-Oman",{"title":311},{"VI":312},"Department of Engineering, University of Technology and Applied Sciences, Salalah, Sultanate of Oman",{"title":314},{"VI":315},"B. S. Naveen Prasad",{"url":18,"publisher":317,"properties":18},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":318,"slug":10,"properties":319,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":322,"manageAffiliations":323,"indexDatabases":324,"url":18,"thumbnailPath":18,"statistic":339,"gsStatistic":18,"type":114,"analyzePriority":18},[],{"issn":320,"title":321},{"VOID":13},{"EN":15},[],[],[325,332],{"id":68,"indexDatabase":326,"url":83,"indexYears":18,"academicFieldIds":331,"indexDatabaseRanking":18},{"id":70,"createTime":71,"updateTime":72,"relativeEntities":327,"label":328,"description":329,"key":79,"publicationTags":330,"standard":18},[],{"EN":75,"VI":75},{"VI":77,"EN":78},[81,82],[85],{"id":87,"indexDatabase":333,"url":100,"indexYears":101,"academicFieldIds":338,"indexDatabaseRanking":106},{"id":89,"createTime":90,"updateTime":91,"relativeEntities":334,"label":335,"description":336,"key":97,"publicationTags":337,"standard":18},[],{"EN":94,"VI":94},{"EN":94,"VI":96},[99],[103,104,105],{"impactFactor":19,"impactFactorByYear":340,"i10Index":19,"i10IndexLast5Year":19,"totalPublication":109,"totalPublicationByYear":341,"totalCitation":19,"totalCitationByYear":342,"totalCitationPerPublication":19,"totalCitationPerPublicationByYear":343,"hindexLast5Year":19,"hindex":19},{},{"2015":111,"2020":111,"2023":111},{},{},"2024-03-19",2024,{"id":347,"createTime":348,"updateTime":349,"relativeEntities":350,"slug":351,"properties":352,"entityType":134,"verifyStatus":135,"verifyTime":349,"verifyNote":136,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":361,"fullTextUrl":18,"authors":362,"publicationType":183,"publisherRelationship":404,"citationCount":18,"citationInfo":18,"publishDate":437,"publishYear":438,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":18,"openAccess":18,"references":18,"isForceReanalyzing":219},"65930b55-53a4-4e5d-9633-fb0d7fb3a712","2023-12-23T12:37:55.189+00:00","2025-01-05T23:58:59.849+00:00",[],"Effect-of-soil-amendments-on-phytoextraction-potential-of-Brassica-juncea-growing-on-sewage-sludge",{"references":353,"abstract":355,"title":357,"doi":359},{"VOID":354},"Catherine S, Christophe S, Louis JM (2006) Response of Thlaspi caerulescens to nitrogen, phosphorus and sulfur fertilization. Int J Phytoremediation 8:146–161\nCui Y, Dong Y, Li H, Wang Q (2004a) Effect of elemental sulphur on solubility of soil heavy metals and their uptake by maize. Environ Int 30:323–328\nCui Y, Wang Q, Christie P (2004b) Effect of elemental sulphur on uptake of cadmium, zinc, and sulphur by oilseed rape growing in soil contaminated with zinc and cadmium. Commun Soil Sci Plant Anal 35(19–20):2905–2916\nGhosh M, Singh SP (2005) A comparative study of cadmium phytoextraction by accumulator and weed species. Environ Pollut 133:365–371\nGupta AK, Sinha S (2007a) Phytoextraction capacity of the plants growing on tannery sludge dumping sites. Bioresour Technol 98:1788–1794\nGupta AK, Sinha S (2007b) Phytoextraction capacity of the Chenopodium album L grown on soil amended with tannery sludge. Bioresour Technol 98:442–446\nJiang XJ, Luo YM, Zhao QG, Baker AJM, Christie P, Wong MH (2003) Soil Cd availability to Indian mustard and environmental risk following EDTA addition to Cd-contaminated soil. Chemosphere 50:813–818\nKabata-Pendias A (2001) Trace elements in soils and plants, Third Edition, CRC Press, Boca Raton\nKalra YP, Maynard DG (1991) Methods manual for forest soil and plant analysis. Forestry Canada, Northwest Region, Northern forest Centre, Edmonton, Alberta. Information Report NOR-X319\nKaplan M, Orman S, Kadar I, Koncz J (2005) Heavy metal accumulation in calcareous soil and sorghum plants after addition of sulphur-containing waste as a soil amendment in Turkey. Agric Ecosyst Environ 111:41–46\nKayser A, Wenger K, Keller A, Attinger W, Felix HR, Gupta SK, Schulin R (2000) Enhancement of phytoextraction of Zn, Cd, and Cu from calcareous soil: the use of NTA and sulfur amendments. Environ Sci Technol 34:1778–1783\nKayser A, Schröder TJ, Grünwald A, Schulin R (2001) Solubilization and plant uptake of zinc and cadmium from soils treated with elemental sulfur. Int J Phytoremediation 3(4):381–400\nMcFarland MJ (2000) Biosolids Engineering, McGraw-Hill\nPierzynski GM (2000) Methods of phosphorus analysis for soils, sediments, residuals, and waters. Southern Cooperative Series Bulletin No. # 396\nPogrzeba M, Kucharski R, Sas-Nowosielska A, Malkowski E, Krynski K, Kuperberg JM (2004) Heavy metal removal from municipal sewage sludges by phytoextraction. In: Symposium presentation\nRobinson BH, Brooks RR, Clothier BE (1999) Soil amendments affecting nickel and cobalt uptake by Berkheya coddii: potential use for phytomining and phytoremediation. Ann Bot 84:689–694\nRoss DS (2001) Recommended methods for determining soil cation exchange capacity. Chapter 9. University of Delaware Cooperative Extension, College of Agriculture & Natural Resources\nRyan J, Estefan G, Rashid A (2001) Soil and plant analysis laboratory manual, 2nd edn. Jointly published by the International Center for Agricultural Research in the Dry Areas (ICARDA) and the National Agricultural Research Center (NARC). Available from ICARDA, Aleppo, Syria. x + 172 pp\nSamake M, Wu QT, Mo CH, Morel JL (2003) Plants grown on sewage sludge in South China and its relevance to sludge stabilization and metal removal. J Environ Sci China 15 (5): 622–627\nSingh S, Sinha S (2005) Accumulation of metals and its effects in Brassica juncea (L.) Czern. (cv. Rohini) grown on various amendments of tannery waste. Ecotoxicol Environ Saf 62:118–127\nTorri SI, Lavado RS (2008) Dynamics of Cd, Cu and Pb added to soil through different kinds of sewage sludge. Waste Manag 28:821–832\nTurgut C, Pepe MK, Cutright TJ (2004) The effect of EDTA and citric acid on phytoremediation of Cd, Cr, and Ni from soil using Helianthus annuus. Environ Pollut 131:147–154\nWang AS, Angle JS, Chaney RL, Delorme TA, Reeves RD (2006) Soil pH effects on uptake of Cd and Zn by Thlaspi caerulescens. Plant Soil 281:325–337\nWenger K, Kayser A, Gupta SK, Furrer G, Schulin R (2002) Comparison of NTA and elemental sulfur as potential soil amendments in phytoremediation. Soil Sed Contam 11(5):655–672\nXiaomei L, Qitang W, Banks MK (2005) Effect of simultaneous establishment of Sedum alfredii and Zea mays on heavy metal accumulation in plants. Int J Phytoremediation 7(1):43–53\nXiaomel L, Qitang W, Banks MK, Ebbs SD (2005) Phytoextraction of Zn and Cu from sewage sludge and impact on agronomic characteristics. J Environ Sci Health Part A 40(4):823–838",{"EN":356},"A pot experiment was conducted to investigate the influence of elemental sulfur, gypsum and chelating agent (Ethylenediaminetetraacetic acid) on copper, zinc, nickel, cadmium, chromium and lead uptake by Brassica juncea from sewage sludge. Addition of sulphur acidified the sludge, which caused the pH decrease to 5.4 with an initial pH 6.7. The shoot and root biomass were increased with sulfur addition, while decreased with Ethylenediaminetetraacetic acid addition. Applications of Ethylenediaminetetraacetic acid and sulfur resulted in a considerable increase in copper and lead concentrations in the plant. The highest root concentration of copper obtained to be 110 mg\u002Fkg dw at Ethylenediaminetetraacetic acid treatment. For sulfur treatment, lead concentrations in shoots indicated almost high concentrations 77 mg\u002Fkg, about twofold increases relative to roots (34 mg\u002Fkg). The Transportation Index of all studied metals were quite low (TI \u003C 0.5), whereas the Bioaccumulation Factor values were much higher, varied from 0.01 to 9.67. Furthermore, the plant showed better Bioaccumulation Factor for copper and lead metals in both shoot and root. The efficiency to remove copper and lead from sludge is high in this plant. As a result, elemental sulfur will be effective amendment for phytoextraction of heavy metals from sewage sludge.",{"EN":358},"Effect of soil amendments on phytoextraction potential of Brassica juncea growing on sewage sludge",{"VOID":360},"10.1007\u002Fs13762-012-0058-2","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs13762-012-0058-2",[363,380,392],{"id":364,"sortIndex":19,"researcher":18,"roles":365,"affiliations":366,"properties":377},"d53f5c44-2ded-4736-83a3-69d81fee5bbd",[143],[367],{"id":18,"sortIndex":19,"affiliation":368,"properties":18},{"id":369,"createTime":370,"updateTime":371,"relativeEntities":372,"slug":373,"properties":374,"entityType":54,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"0838795c-37b5-442e-bbd3-94ec56ae0520","2023-12-23T12:37:55.204+00:00","2025-06-11T21:13:31.051+00:00",[],"Department-of-Environmental-Engineering-Engineering-Faculty-Sakarya-University-Adapazari-Turkey",{"title":375},{"VI":376},"Department of Environmental Engineering, Engineering Faculty, Sakarya University, Adapazari, Turkey",{"title":378},{"VI":379},"G. 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Appl Phys A 122:1–11",{"doi":553},"10.1007\u002Fs00339-016-0261-y",{"id":18,"text":555,"url":18,"identifiers":556},"Al Hattab MT, Ghaly AE (2012) Disposal and treatment methods for pesticide containing wastewaters: critical review and comparative analysis. J Environ Prot 3:431–453",{"doi":557},"10.4236\u002Fjep.2012.35054",{"id":18,"text":559,"url":18,"identifiers":560},"Aslani H, Nabizadeh R, Nasseri S, Mesdaghinia A, Alimohammadi M, Mahvi AH, Rastkari N, Nazmara S (2016) Application of response surface methodology for modeling and optimization of trichloroacetic acid and turbidity removal using potassium ferrate (VI). Desalin Water Treat 57:25317–25328",{"doi":561},"10.1080\u002F19443994.2016.1147380",{"id":18,"text":563,"url":18,"identifiers":564},"Azeez F, Al-Hetlani E, Arafa M, Abdelmonem Y, Nazeer AA, Amin MO, Madkour M (2018) The effect of surface charge on photocatalytic degradation of methylene blue dye using chargeable titania nanoparticles. 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Environ Technol 32:1515–1522",{"doi":588},"10.1080\u002F09593330.2010.543927",{"id":18,"text":590,"url":18,"identifiers":591},"Dehghan A, Zarei A, Jaafari J, Shams M, Khaneghah AM (2019) Tetracycline removal from aqueous solutions using zeolitic imidazolate frameworks with different morphologies: a mathematical modeling. Chemosphere 217:250–260",{"doi":592},"10.1016\u002Fj.chemosphere.2018.10.166",{"id":18,"text":594,"url":18,"identifiers":595},"Eskandarloo H, Badiei A, Behnajady MA, Afshar M (2015) Enhanced photocatalytic removal of phenazopyridine by using silver-impregnated SiO2–TiO2 nanoparticles: optimization of synthesis variables. Res Chem Intermed 41:9929–9949",{"doi":596},"10.1007\u002Fs11164-015-2000-y",{"id":18,"text":598,"url":18,"identifiers":599},"Farzadkia M, Bazrafshan E, Esrafili A, Yang J-K, Shirzad-Siboni M (2015) Photocatalytic degradation of Metronidazole with illuminated TiO2 nanoparticles. 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Desalin Water Treat 242:75–88",{"doi":635},"10.5004\u002Fdwt.2021.27814",{"id":18,"text":637,"url":18,"identifiers":638},"Molla MAI, Furukawa M, Tateishi I, Katsumata H, Kaneco S (2020) Mineralization of diazinon with nanosized-photocatalyst TiO2 in water under sunlight irradiation: optimization of degradation conditions and reaction pathway. Environ Technol 41:3524–3533",{"doi":639},"10.1080\u002F09593330.2019.1615129",{"id":18,"text":641,"url":18,"identifiers":642},"Okuno T, Kawamura G, Muto H, Matsuda A (2016) Photocatalytic properties of Au-deposited mesoporous SiO2–TiO2 photocatalyst under simultaneous irradiation of UV and visible light. 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Elsevier, pp 287–326",{"doi":655},"10.1016\u002FB978-0-12-409547-2.14756-0",{"id":18,"text":657,"url":18,"identifiers":658},"Subramanian S, Noh J, Schwarz J (1988) Determination of the point of zero charge of composite oxides. J Catal 114:433–439",{"doi":659},"10.1016\u002F0021-9517(88)90046-2",{"id":18,"text":661,"url":18,"identifiers":662},"Sun Y, Yue Q, Gao B, Wang B, Li Q, Huang L, Xu X (2012) Comparison of activated carbons from Arundo donax Linn with H4P2O7 activation by conventional and microwave heating methods. Chem Eng J 192:308–314",{"doi":663},"10.1016\u002Fj.cej.2012.04.007",{"id":18,"text":665,"url":18,"identifiers":666},"Syafiuddin A, Salmiati S, Hadibarata T, Salim MR, Kueh ABH, Suhartono S (2019) Removal of silver nanoparticles from water environment: experimental, mathematical formulation, and cost analysis. Water Air Soil Pollut 230:1–15",{"doi":667},"10.1007\u002Fs11270-019-4143-8",{"id":18,"text":669,"url":18,"identifiers":670},"Szczepanik B (2017) Photocatalytic degradation of organic contaminants over clay-TiO2 nanocomposites—a review. Appl Clay Sci 141:227–239",{"doi":671},"10.1016\u002Fj.clay.2017.02.029",{"id":18,"text":673,"url":18,"identifiers":674},"Tetteh EK, Obotey Ezugbe E, Rathilal S, Asante-Sackey D (2020) Removal of COD and SO42− from oil refinery wastewater using a photo-catalytic system—comparing TiO2 and zeolite efficiencies. Water 12:214",{"doi":675},"10.3390\u002Fw12010214",{"id":18,"text":677,"url":18,"identifiers":678},"Varma KS, Tayade RJ, Shah KJ, Joshi PA, Shukla AD, Gandhi VG (2020) Photocatalytic degradation of pharmaceutical and pesticide compounds (PPCs) using doped TiO2 nanomaterials: a review. Water-Energy Nexus 3:46–61",{"doi":679},"10.1016\u002Fj.wen.2020.03.008",{"id":18,"text":681,"url":18,"identifiers":682},"Wibowo A, Tajalla GU, Marsudi MA, Cooper G, Asri LA, Liu F, Ardy H, Bartolo PJ (2021) Green synthesis of silver nanoparticles using extract of cilembu sweet potatoes (Ipomoea batatas L var. Rancing) as potential filler for 3D printed electroactive and anti-infection scaffolds. Molecules 26:2042",{"doi":683},"10.3390\u002Fmolecules26072042",{"id":18,"text":685,"url":18,"identifiers":686},"Zhu L, Opulencia MJC, Bokov DO, Krasnyuk II, Su C-H, Nguyen HC, Mohamed A, Zare MH, Zwawi M, Algarni M (2022) Synthesis of Ag-coated on a wrinkled SiO2@ TiO2 architectural photocatalyst: new method of wrinkled shell for use of semiconductors in the visible light range and penicillin antibiotic degradation. Alex Eng J 61:9315–9334",{"doi":687},"10.1016\u002Fj.aej.2022.03.009",{"id":689,"createTime":690,"updateTime":691,"relativeEntities":692,"slug":693,"properties":694,"entityType":134,"verifyStatus":135,"verifyTime":707,"verifyNote":136,"syncStatus":17,"languages":18,"translateLanguages":708,"viewCount":19,"primaryUrl":710,"fullTextUrl":18,"authors":711,"publicationType":183,"publisherRelationship":790,"citationCount":18,"citationInfo":18,"publishDate":823,"publishYear":824,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":18,"openAccess":18,"references":18,"isForceReanalyzing":219},"2aabc2f1-5b6c-4cfd-a8a2-e21b1119a40f","2024-02-05T18:50:10.249+00:00","2025-02-22T23:58:43.482+00:00",[],"Control-of-disinfection-by-products-formation-potential-by-enhanced-coagulation",{"references":695,"abstract":697,"title":700,"doi":703,"keywords":705},{"VOID":696},"Anonymous (1998). Standard methods for the examination of water and wastewater, Washington, D.C., 20th. Ed., APHA, AWWA, WEF.\nAnonymous (1999). Enhanced coagulation and enhanced precipitative softening guidance manual, EPA815-R-99-012, office Of Water, Washington D.C., USEPA.\nBlack, B. D., Harrington, G. W. and Singer, P. C., (1996). Impact of organic carbon removal on cancer risks posed by drinking water chlorination, J. AWWA, 88(12), 40.\nCheng, R. C., Krasner, S. W., Green, J. F. and Wattier, K. L., (1995). Enhanced Coagulation: A preliminary evaluation, J. AWWA, 87(2), 91–193.\nChildress, A. E., Vrijenhoek, E. M., Elimelech, M., Tanaka, T. and Beuhler, M., (1999). Particulate and THM precursor removal with ferric chloride, J. Environ. Eng., 125(11), 1054–1061.\nCrozes, G., White, P., and Marshall M., (1995). Enhanced coagulation: its effect on NOM removal and chemical costs, J. AWWA, 87(1), 78–89\nEdzwald, J. K., (1994). Coagulation concepts for removal of TOC, A WWA, WQTC Conf., Nov. 6–10\nEdzwald, J. K., Becker, W. C. and Wittier, K. L., (1985). Surrogate parameters for monitoring organic matter and THMprecursors, J. AWWA, 77(4), 122–132.\nEdzwald, J. K. and Tobiason, J. E., (1999). Enhanced Coagulation: US requirements and a broader view, Wat. Sci. Tech., 40(9), 63–70.\nGao, B. Y. and Yue, Q. Y., (2005). Natural organic matter (NOM) removal from surface water by coagulation, J. Environmental Science, 17(1), 124–127.\nGreyor, J. E., Nokes, C. J. and Fenton, E., (1997). Optimising natural organic matter removal from low turbidity waters by controlled pH adjustment of aluminum coagulation, Wat. Res., 31(12), 2949–2958.\nKrasner, S. W. and Amy, G., (1995). Jar-test evaluations of enhanced coagulation, J. AWWA, 87(10), 93–107.\nLetterman, R. D., Amirtharajah, A. and O ’Melia, C. R., (1999)., Chapter 6. Coagulation and Flocculation in Water Quality and Treatment, 5th Ed., American Water Works Association, McGraw Hill Inc. New York.\nRandtke, S. J., (1988). Organic contaminant removal by coagulation and related process combinations, J. AWWA, 80(5), 40–56.\nSinger, P. C. and Bilky, K., (2002). Enhanced coagulation using a magnetic ion exchange resin, Water Research 36, 4009–4022.\nVolk, C., Bell, K., Ibrahim, E., Verges, D., Amy, G. and LeChevallier, M., (2000). Impact of enhanced and optimized coagulation on removal of organic matter and its biodegradable fraction in drinking water, Wat. Res., 34(12), 3247–3257.\nWhite, M. C., Thompson, J. D., Harrington, G. W. and Singer, P. C., (1997). Evaluating criteria for enhanced coagulation compliance, J. AWWA, 89(5), 64.",{"EN":698,"VI":699},"Jar-test experiments were conducted to study enhanced coagulation effectiveness in removal of disinfection by products (DBPs) from Zayandehrud River at Isfahan Province-the center part of Iran-in 2004. In this study, the removal of suspended and colloidal particles and natural organic matter (NOM) at various coagulant doses and coagulation pHs was assessed through raw and treated water measurements of turbidity, UV254 absorbance, TOC, and dissolved organic carbon (DOC). The trihalomethane formation potential (THMFP) was also determined by a mathematical relationship with TOC. Results indicated that NOM removal was a function of coagulant type, coagulant dose, and pH of coagulation. In general, TOC, DOC, and UV254 absorbance removal enhanced with increasing coagulant dose. However, further increases in coagulant dosage had little effect on disinfection by-products precursors removal. Ferric chloride was consistently more effective than alum in removing NOM. Coagulation pH was appeared to be a determining factor for maximum NOM removal and the removal of DBPs precursors by enhanced coagulation was significantly enhanced at pH 5.5 in comparison with initial pH of water. Furthermore, it is specified that preadjustment of pH with sulfuric acid reduced the coagulant dosage and thus, production of sludge. The reduction in THMFP was consistent with the trends observed for DBPs precursors removal data (i.e. UV254 and TOC data).","Các thí nghiệm jar-test đã được tiến hành để nghiên cứu hiệu quả của quá trình đông tụ nâng cao trong việc loại bỏ các sản phẩm phụ khử trùng (DBPs) từ sông Zayandehrud tại tỉnh Isfahan - khu vực trung tâm của Iran - vào năm 2004. Trong nghiên cứu này, việc loại bỏ các hạt lơ lửng và keo cũng như chất hữu cơ tự nhiên (NOM) với các liều lượng đông tụ và pH đông tụ khác nhau đã được đánh giá thông qua các phép đo nước thô và nước đã xử lý về độ đục, độ hấp thụ UV254, TOC và carbon hữu cơ hòa tan (DOC). Tiềm năng hình thành trihalomethane (THMFP) cũng đã được xác định thông qua một mối quan hệ toán học với TOC. Kết quả chỉ ra rằng việc loại bỏ NOM phụ thuộc vào loại chất đông tụ, liều lượng chất đông tụ và pH của quá trình đông tụ. Nhìn chung, việc loại bỏ TOC, DOC và độ hấp thụ UV254 tăng lên khi liều lượng chất đông tụ tăng. Tuy nhiên, việc tăng liều lượng chất đông tụ thêm nữa có ít ảnh hưởng đến việc loại bỏ các tiền chất sản phẩm phụ khử trùng. Ferric chloride luôn cho hiệu quả cao hơn so với nhôm trong việc loại bỏ NOM. pH của quá trình đông tụ được cho là yếu tố quyết định đối với việc loại bỏ tối đa NOM và việc loại bỏ các tiền chất sản phẩm phụ khử trùng bằng phương pháp đông tụ nâng cao đã được cải thiện đáng kể ở pH 5.5 so với pH ban đầu của nước. Hơn nữa, việc điều chỉnh pH trước bằng axit sulfuric đã làm giảm liều lượng chất đông tụ và do đó, giảm sản xuất bùn. Sự giảm THMFP phù hợp với các xu hướng quan sát được cho dữ liệu loại bỏ tiền chất DBPs (tức là dữ liệu UV254 và TOC).",{"EN":701,"VI":702},"Control of disinfection by products formation potential by enhanced coagulation","Kiểm soát tiềm năng hình thành sản phẩm phụ khử trùng bằng phương pháp đông tụ nâng cao",{"VOID":704},"10.1007\u002FBF03325894",{"VI":706},"đông tụ nâng cao, sản phẩm phụ khử trùng, chất hữu cơ tự nhiên, tiềm năng hình thành trihalomethane, xử lý nước","2025-02-06T03:09:57.072+00:00",[709],"VI","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002FBF03325894",[712,727,739,751,763,775],{"id":713,"sortIndex":141,"researcher":18,"roles":714,"affiliations":715,"properties":724},"d253aeae-7012-4eb5-b74b-755ec95515a7",[143],[716],{"id":18,"sortIndex":19,"affiliation":717,"properties":18},{"id":718,"createTime":719,"updateTime":719,"relativeEntities":720,"slug":18,"properties":721,"entityType":54,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"e4598b1f-91b2-4810-8e9b-2cc6458dcdd9","2024-02-05T18:50:10.265+00:00",[],{"title":722},{"VI":723},"Department of Environmental Health Engineering and Center for Environmental Research, School of Public Health, and Institute of Health Research Center, Tehran University of Medical Science, Tehran, Iran",{"title":725},{"VI":726},"F. Vaezi",{"id":728,"sortIndex":19,"researcher":18,"roles":729,"affiliations":730,"properties":736},"31070f8f-fd34-4986-9b37-00c2a84ddd9c",[143],[731],{"id":18,"sortIndex":19,"affiliation":732,"properties":18},{"id":718,"createTime":719,"updateTime":719,"relativeEntities":733,"slug":18,"properties":734,"entityType":54,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":735},{"VI":723},{"title":737},{"VI":738},"A. Mesdaghinia",{"id":740,"sortIndex":109,"researcher":18,"roles":741,"affiliations":742,"properties":748},"0cbd4920-2e62-484a-8ecf-588ecd4ee8d9",[143],[743],{"id":18,"sortIndex":19,"affiliation":744,"properties":18},{"id":718,"createTime":719,"updateTime":719,"relativeEntities":745,"slug":18,"properties":746,"entityType":54,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":747},{"VI":723},{"title":749},{"VI":750},"A. Mahvi",{"id":752,"sortIndex":111,"researcher":18,"roles":753,"affiliations":754,"properties":760},"a0d4244d-426b-4a29-a531-05aa9824ace6",[143],[755],{"id":18,"sortIndex":19,"affiliation":756,"properties":18},{"id":718,"createTime":719,"updateTime":719,"relativeEntities":757,"slug":18,"properties":758,"entityType":54,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":759},{"VI":723},{"title":761},{"VI":762},"M. T. Rafiee",{"id":764,"sortIndex":64,"researcher":18,"roles":765,"affiliations":766,"properties":772},"1adf78cd-69c8-4f31-8af7-3aaea56407c7",[143],[767],{"id":18,"sortIndex":19,"affiliation":768,"properties":18},{"id":718,"createTime":719,"updateTime":719,"relativeEntities":769,"slug":18,"properties":770,"entityType":54,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":771},{"VI":723},{"title":773},{"VI":774},"A. Ghasri",{"id":776,"sortIndex":257,"researcher":18,"roles":777,"affiliations":778,"properties":787},"9244406a-3fea-4344-b79c-539913362f93",[143],[779],{"id":18,"sortIndex":19,"affiliation":780,"properties":18},{"id":781,"createTime":782,"updateTime":782,"relativeEntities":783,"slug":18,"properties":784,"entityType":54,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"dabc1f84-53d5-40b0-8367-716d57124605","2024-02-05T18:50:10.313+00:00",[],{"title":785},{"VI":786},"Department of Environmental Engineering, Faculty of the Environment, University of Tehran, Tehran, Iran",{"title":788},{"VI":789},"A. Torabian",{"url":710,"publisher":791,"properties":818},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":792,"slug":10,"properties":793,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":796,"manageAffiliations":797,"indexDatabases":798,"url":18,"thumbnailPath":18,"statistic":813,"gsStatistic":18,"type":114,"analyzePriority":18},[],{"issn":794,"title":795},{"VOID":13},{"EN":15},[],[],[799,806],{"id":68,"indexDatabase":800,"url":83,"indexYears":18,"academicFieldIds":805,"indexDatabaseRanking":18},{"id":70,"createTime":71,"updateTime":72,"relativeEntities":801,"label":802,"description":803,"key":79,"publicationTags":804,"standard":18},[],{"EN":75,"VI":75},{"VI":77,"EN":78},[81,82],[85],{"id":87,"indexDatabase":807,"url":100,"indexYears":101,"academicFieldIds":812,"indexDatabaseRanking":106},{"id":89,"createTime":90,"updateTime":91,"relativeEntities":808,"label":809,"description":810,"key":97,"publicationTags":811,"standard":18},[],{"EN":94,"VI":94},{"EN":94,"VI":96},[99],[103,104,105],{"impactFactor":19,"impactFactorByYear":814,"i10Index":19,"i10IndexLast5Year":19,"totalPublication":109,"totalPublicationByYear":815,"totalCitation":19,"totalCitationByYear":816,"totalCitationPerPublication":19,"totalCitationPerPublicationByYear":817,"hindexLast5Year":19,"hindex":19},{},{"2015":111,"2020":111,"2023":111},{},{},{"volume":819,"pages":821},{"VOID":820},"2",{"VOID":822},"335-342","2005-12-22",2005,{"id":826,"createTime":827,"updateTime":828,"relativeEntities":829,"slug":830,"properties":831,"entityType":134,"verifyStatus":135,"verifyTime":828,"verifyNote":136,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":840,"fullTextUrl":18,"authors":841,"publicationType":183,"publisherRelationship":891,"citationCount":18,"citationInfo":18,"publishDate":924,"publishYear":925,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":18,"openAccess":18,"references":18,"isForceReanalyzing":219},"34c916d9-cde2-4138-9162-c2c3e4c80ff3","2023-12-02T15:54:30.677+00:00","2024-12-28T23:58:35.632+00:00",[],"Application-of-raw-Vigna-subterranean-husks-as-novel-sorbent-for-abstraction-of-petroleum-from-contaminated-waters",{"references":832,"abstract":834,"title":836,"doi":838},{"VOID":833},"Abdelwahab O, Nasr SM, Thabet WM (2017) Palm fibers and modified palm fibers adsorbents for different oils. Alex Eng J 56:749–755\nAbdul SG, Taleb HI, Mustafa IK, Yehya E (2015) Application of eggplant peels powder for the removal of oil from produced water. Desalin Water Treat 57(33):15724–15732. https:\u002F\u002Fdoi.org\u002F10.1080\u002F19443994.2015.1130661\nAkpomie KG, Dawodu FA, Adebowale KO (2015) Mechanism on the sorption of heavy metals from binary solution by a low cost montmorillonite and its desorption potential. Alex Eng J 54:757–767\nAkpomie KG, Ezeofor CC, Olikagu CS, Odewole OA, Ezeorah CJ (2018) Abstraction and regeneration potential of temperature enhanced rice husk montmorillonite combo for oil spill. Environ Sci Pollut Res 25(34):34711–34719\nAkpomie KG, Ezeofor CC, Ani JU, Eze SI, Odo CC, Onoabedje EA (2019) Equilibrium isotherms modeling of crude oil sorption from aqua mixture onto Codiaeum variegatum stem powder. Petrol Sci Technol 37(3):329–336\nAl-Khatib L, Fraige F, Al-Hwaiti M, Al-khashman O (2012) Adsorption from aqueous solution onto natural and acid activated bentonite. Amer J Environ Sci 8(5):510–522\nAnirudhan TS, Suchithra PS (2010) Equilibrium, kinetic and thermodynamic modeling for the adsorption of heavy metals onto chemically modified hydrotalcite. Ind J Chem Technol 17:247–259\nAnnunciado TR, Sydenstricker THD, Amico SC (2005) Experimental investigation of various vegetable fibres as sorbent materials for oil spills. Mar Pollut Bull 50(11):1340–1346\nAntony RS, Smart Robin Son DS, Pillai BC, Lindon LR, C. (2011) Parametric studies on pyrolysis of pungam oil cake in electrically heated fluidized bed research reactor. Res J Chem Sci 1:70–80\nAzubuike CP, Okhamafe AO (2012) Physicochemical, spectroscopic and thermal properties of microcrystalline cellulose derived from corn cobs. Inter J of Recyl Org Waste in Agric 1(2):67–77\nBarka N, Abdennouri M, Makhfouk ME, Qouezal S (2013) Biosorption characteristics of cadmium and lead onto eco-friendly dried cactus (opuntiaficusindica) cladodes. J Environ Chem Eng 1:144–149\nBehnood M, Nasernejad B, Nikazar M (2014) Application of experimental design in optimization of crude oil adsorption from saline waste water using raw bagasse. J Cent South Univ 21:684–693\nBeyer J, Trannum HC, Bakke T, Hodson PV, Collier TK (2016) Environmental effects of the deepwater horizon oil spill: a review. Mar Pollut Bull 110:28–51\nChiban M, Zerbet M, Carja G, Sinan F (2012) Application of low cost adsorbents for arsenic removal: a review. J Environ Chem Ecotoxi 4:91–102\nChukwuemeka-Okorie HO, Ekemezie PN, Akpomie KG, Olikagu CS (2018) Calcined concob-kaolinite combo as new sorbent for sequestration of toxic metal ions from polluted aqua media and desorption. Front Chem 6:1–13\nDawodu FA, Obioha UN, Akpomie KG (2018) Removal of crude oil from aqueous solution by zinc chloride modified dioscorearotundata peel carbon: equilibrium, kinetic and intraparticle diffusivity. Petrol and Coal 60(3):985–994\nDeschamps G, Caruel H, Borredon ME, Bonnin C, Vignoles C (2003) Oil removal from water by selective sorption on hydrophobic cotton fibres: study of sorption properties and comparison with other cotton fibre-based sorbents. Environ Sci Technol 37(5):1013–1015\nEl-Gendy NS, Nassar HN (2015) Study on the effectiveness of spent waste sugarcane bagasse for adsorption of different petroleum hydrocarbon water pollutants: kinetic and equilibrium isotherm. Desalin Water Treat 57:5514–5528. https:\u002F\u002Fdoi.org\u002F10.1080\u002F19443994.2015.1004598\nEze SI, Akpomie KG, Ezeofor CC, Mmadubuike NV, Ojo FK (2019) Remediation of oil spill polluted water from Niger Delta Nigeria by sorption onto ammonium sulfate modified Dialiumguineenseseed husk. Petrol Sci Technol. https:\u002F\u002Fdoi.org\u002F10.1080\u002F10916466.2019.1608240\nFarah JY, El-Gendy NS (2013) Performance kinetics and equilibrium in biosorption of anionic dye acid red 14 by the waste biomass of saccharomyces cerevisiae as a low cost biosorbent. Turk J Eng Environ Sci 37:146–161\nFathy M, El-Sayed M, Ramzi M, Abdelraheem OH (2017) Adsorption separation of condensate oil from produced water using ACTF prepared of oil palm leaves by batch and fixed bed techniques. Egypt J Petrol. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.ejpe.2017.05.005\nFoo KY, Hameed BH (2010) Insight into the modeling of adsorption isotherm systems. Chem Eng J 156:2–10\nGuler UA, Sarioglu M (2013) Single and binary biosorption of Cu(II), Ni(II) and methylene blue by raw and pretreated Spirogyrasp: equilibrium and kinetic modeling. J Environ Chem Eng 1(3):369–377\nGulistan AS, Ibrahim TH, Khamis MI, Elsayed Y (2015) Application of egg plants peels powder for the removal of oil from produced water. Desalin Water Treat 57:15724–15732. https:\u002F\u002Fdoi.org\u002F10.1080\u002F19443994.2015.1130661\nIfelebuegu AO, Nguyen TVA, Ukotije-Ikwut P, Momoh Z (2015) Liquid-phase sorption characteristics of human hair as a natural oil spill sorbent. J Environ Chem Eng 3(2):938–943\nIgberase E, Osifo P, Ofomaja A (2014) The adsorption of Cu (II) ions by polyaniline grafted chitosan beads from aqueous solution: equilibrium, kinetic and desorption studies. J Environ Chem Eng 2:362–369\nITOPF 2016. The international tanker owners’ pollution federation limited oil tanker spill statistics 2015. Retrieved March 16, 2016\nKaran CP, Rengasamy RS, Das D (2011) Indian clean up by structured fiber assembly. Ind J Fiber Texti Res 36:190–200\nLi Y, Xia B, Zhao Q, Liu F, Zhang P, Du Q, Wang D, Li D, Xia WZ, Y (2011) Removal of copper ions from aqueous solution by calcium alginate immobilized kaolin. J Environ Sci 23(3):404–411\nLiang S, Guo X, Feng N, Tian Q (2010) Isotherms, kinetics and thermodynamic studies of adsorption of Cu2+ from aqueous solution by Mg2+\u002FK+ orange peel adsorbents. J Hazard Mater 174:756–762\nMansour MT, Aqsha A, Mahinpey N (2016) Development of oil-spill sorbent from straw biomass waste: experiments and modeling studies. J Environ Managt 171:166–176\nMeitei MD, Prasad MNV (2013) Pb(II) and Cd(II) biosorption on spirodela polyhiza Scheleiden biomass. J Environ Chem Eng 1:200–207\nMoussavi G, Bagheri A (2012) Removal of petroleum hydrocarbon from contaminated groundwater by the combined techniques of adsorption onto perlite followed by the O3\u002FH2O2 process. Environ Technol 33(16):1905–1919. https:\u002F\u002Fdoi.org\u002F10.1080\u002F09593330.2011.650223\nNessim RB, Bassioung AR, Zaki HR, Moawad MN, Kandeel KM (2011) Biosorption of Pb and Cd using marine algae. Chem Ecolo 27(6):579–594\nNuhoglu Y, Malkoc E (2009) Thermodynamics and kinetic studies for environmentally friendly Ni(II) biosorption using waste pomace of olive oil factory. Bioresour Technol 100:2375–2380\nNwadiogbu JO, Ajuwe VIE, Okoye PAC (2016) Removal of crude oil from aqueous medium by sorption on hydrophobic concorbs. Equilibrium and kinetic studies. J Taibah Uni Sci 10:56–63\nOkiel K, El-sayed M, El-kady MY (2011) Treatment of oil water emulsions by adsorption onto activated carbon, bentonite and deposited carbon. Egypt J Pet 20:9–15\nSabir S (2015) Approach of cost-effective adsorbents for oil removal from oily water. Crit Rev Environ Sci Technol 45(17):1916–1945\nSaruchi KBS, Jindal R, Kumar V (2015) The adsorption of crude oil from an aqueous solution using a gum tragacanth polyacrylic acid based hydrogel. Petrol Sci Technol 33:278–286\nSokker HH, El-sawy NM, Hassan MA, El-Anadouli BE (2011) Adsorption of crude oil from aqueous solution by hydrogel of chitosan based polyacrylamide prepared by radiation induced graft polymerization. J Hazard Mater 190:359–365\nSun XF, Sun RC, Sun JX (2004) Acetylation of sugarcane bagasse using NBS as a catalyst under mild reaction conditions for the production of oil sorption-active materials. Bioresour Technol 95(3):343–350\nTeli MD, Valia SP (2013) Application of modified coir fiber as eco-friendly oil sorbent. J Fashion Technol Text Eng 1(1):1–5\nTeli MD, Valia SP, Mifta J (2016) Application of Functionalized Coir Fibre as Eco-Friendly Oil Sorbent. J Text Inst. https:\u002F\u002Fdoi.org\u002F10.1080\u002F00405000.2016.1220048\nZou J, Chai W, Liu X, Li B, Zhang X, Yin T (2015) Magnetic pomelo peel as a new absorption material for oil-polluted water. Desalin Water Treat 57(27):12536–12545",{"EN":835},"The potential of raw V. subterranean husks (RVSH) as a novel natural sorbent, and an environmentally friendly and low-cost product for the cleanup of petroleum from contaminated waters was investigated. Characterization of the sorbent was accomplished with scanning electron microscope (SEM), Fourier transform infrared (FTIR), Brunauer–Emmett–Teller (BET) surface area analysis and thermogravimetric analysis (TGA). Batch sorption approach was applied to assess the impact of sorbent dose, pH, initial concentration, temperature as well as time. Crude oil characterization disclosed light oil owing to the oAPI gravity of 36.5°. The Langmuir model offered a superlative fit to the experimental data with greater regression coefficient (R2) and lower chi-square (χ2) and sum of squares of the errors (SSE) contrary to Temkin, Freundlich, Scatchard models and also produced maximum monolayer sorption capacity of 3.79 g\u002Fg. The pseudo-second-order model was more appropriate for kinetic considerations than first-order, intraparticle diffusion and liquid film diffusion models, and equilibrium sorption time of 70 min was achieved. Thermodynamic considerations presented an endothermic, non-spontaneous and physicochemical sorption process and also an improvement in randomness of the petroleum-RVSH interface. Recovery was good as 60.58% of the sorbate was salvaged using n-hexane as stripping agent, and reusability of the sorbent was also achieved after each cycle of sorption–desorption analysis. Therefore, the sorbent is suitable in the management of oil-contaminated water bodies.",{"EN":837},"Application of raw Vigna subterranean husks as novel sorbent for abstraction of petroleum from contaminated waters",{"VOID":839},"10.1007\u002Fs13762-021-03447-3","https:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs13762-021-03447-3",[842,857,879],{"id":843,"sortIndex":141,"researcher":18,"roles":844,"affiliations":845,"properties":854},"38d881e9-43ca-49da-9ceb-d5b30fe9e798",[143],[846],{"id":18,"sortIndex":19,"affiliation":847,"properties":18},{"id":848,"createTime":849,"updateTime":849,"relativeEntities":850,"slug":18,"properties":851,"entityType":54,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"21cb3ed2-1ffa-44b7-88cd-f9650f5316b5","2023-12-02T15:54:30.708+00:00",[],{"title":852},{"VI":853},"Department of Pure and Industrial Chemistry, University of Nigeria Nsukka, Enugu State, Nigeria",{"title":855},{"VI":856},"C. O. B. Okoye",{"id":858,"sortIndex":19,"researcher":18,"roles":859,"affiliations":860,"properties":876},"04c79d15-9e03-46ef-9ae0-3bf4e8e6e1b9",[143],[861,866],{"id":18,"sortIndex":19,"affiliation":862,"properties":18},{"id":848,"createTime":849,"updateTime":849,"relativeEntities":863,"slug":18,"properties":864,"entityType":54,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":865},{"VI":853},{"id":867,"sortIndex":111,"affiliation":868,"properties":875},"73a769eb-cdb9-4035-8d5b-0edaf1b2845d",{"id":869,"createTime":870,"updateTime":870,"relativeEntities":871,"slug":18,"properties":872,"entityType":54,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"77696603-c1d4-4f5a-9ade-bbcd4ed3313e","2023-12-02T15:54:30.702+00:00",[],{"title":873},{"VI":874},"Materials and Energy Technology Department, Projects Development Institute (PRODA), Federal Ministry of Science and Technology, Enugu state, Nigeria",{},{"title":877},{"VI":878},"I. C. Ogbu",{"id":880,"sortIndex":111,"researcher":18,"roles":881,"affiliations":882,"properties":888},"a3b3c221-7654-4d00-94c8-b2ecaa007de1",[143],[883],{"id":18,"sortIndex":19,"affiliation":884,"properties":18},{"id":848,"createTime":849,"updateTime":849,"relativeEntities":885,"slug":18,"properties":886,"entityType":54,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":887},{"VI":853},{"title":889},{"VI":890},"C. N. 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Biodegradation 16(1):45–56\nChoi H, Lim HN, Kim J, Hwang TM, Kang JW (2002) Transport characteristics of gas phase ozone in unsaturated porous media for in situ chemical oxidation. J Contam Hydrol 57(1–2):81–98\nDerudi M, Venturini G, Lombardi G, Nano G, Rota R (2007) Biodegradation combined with ozone for the remediation of contaminated soils. Eur J Soil Biol 43(5–6):297–303\nEberius M, Berns A, Schuphan I (1997) Ozonation of pyrene and benzo[a]pyrene in silica and soil -14C-mass balances and chemical analysis of oxidation products as a first step to ecotoxicological evaluation. Fresenius J Anal Chem 359(3):274–279\nEl Diwani G, El Rafie S, Hawash S (2009) Degradation of 2, 4, 6-trinitotoluene in aqueous solution by ozonation and multi-stage ozonation biological treatment. Int J Environ Sci Technol 6(4):619–628\nGee GW, Bauder JW (1986) Particle-size analysis. In: Klute A (ed) Methods of soil analysis, Part I. Physical and mineralogical methods, 2nd edn. American Society of Agronomy, Madison, pp 383–411\nGharbani P, Khosravi M, Tabatabaii SM, Zare K, Dastmalchi S, Mehrizad A (2010) Degradation of trace aqueous 4-chloro-2-nitrophenol occurring in pharmaceutical industrial wastewater by ozone. Int J Environ Sci Technol 7(2):377–384\nGiri RR, Ozaki H, Taniguchi S, Takanami R (2008) Photocatalytic ozonation of 2, 4-dichlorophenoxyacetic acid in water with a new TiO2 fiber. Int J Environ Sci Technol 5(1):17–26\nGoi A, Trapido M (2004) Degradation of polycyclic aromatic hydrocarbons in soil: the Fenton reagent versus ozonation. Environ Technol 25(2):155–164\nGoi A, Kulik N, Trapido M (2006) Combined chemical and biological treatment of oil contaminated soil. Chemosphere 63(10):1754–1763\nHaapea P, Tuhkanen T (2006) Integrated treatment of PAH contaminated soil by soil washing, ozonation and biological treatment. J Hazard Mater 136(2):244–250\nHaritash AK, Kaushik CP (2009) Biodegradation aspects of polycyclic aromatic hydrocarbons (PAHs): a review. J Hazard Mater 169(1–3):1–15\nHong PKA, Nakra S, Kao JCM, Hayes DF (2008) Pressure-assisted ozonation of PCB and PAH contaminated sediments. Chemosphere 72(11):1757–1764\nHsu MI, Masten SJ (1997) The kinetics of the reaction of ozone with phenanthrene in unsaturated soils. Environ Eng Sci 14(4):207–218\nJekel M (2000) Full-scale applications. In: Gottschalk C, Libra JA, Saupe A (eds) Ozonation of water and waste water: a practical guide to understanding ozone and its application. Wiley-VCH, Weinheim, pp 21–36\nJung H, Choi H (2003) Effects of in situ ozonation on structural change of soil organic matter. Environ Eng Sci 20(4):289–299\nJung H, Ahn Y, Choi H, Kim IS (2005) Effects of in situ ozonation on indigenous microorganisms in diesel contaminated soil: survival and regrowth. Chemosphere 61(7):923–932\nLiang Y, Nostrand JD, Wang J, Zhang X, Zhou J, Li G (2009) Microarray-based functional gene analysis of soil microbial communities during ozonation and biodegradation of crude oil. Chemosphere 75(2):193–199\nLopez A, Ricco G, Mascolo G, Tiravanti G, Di Pinto AC, Passion R (1998) Biodegradability enhancement of refractory pollutants by ozonation: a laboratory investigation on an azo-dyes intermediate. Water Sci Technol 38(4–5):239–245\nLuster-Teasley S, Ubaka-Blackmoore N, Masten SJ (2009) Evaluation of soil pH and moisture content on in situ ozonation of pyrene in soils. J Hazard Mater 167(1–3):701–706\nMasten SJ, Davies SHR (1997) Efficacy of in situ ozonation for the remediation of PAH contaminated soils. J Contam Hydrol 28(4):327–335\nNam K, Kukor JJ (2000) Combined ozonation and biodegradation for remediation of mixtures of polycyclic aromatic hydrocarbons in soil. Biodegradation 11(1):1–9\nNimmer MA, Wayner BD, Morr AA (2000) In situ ozonation of contaminated groundwater. Environ Prog 19(3):183–196\nRakness K, Gordon G, Langlais B, Masschelein W, Matsumoto N, Richard Y, Robson CM, Somiya I (1996) Guideline for measurement of ozone concentration in the process gas from an ozone generator. Ozone Sci Eng 18(3):209–229\nRivas FJ, Beltrán FJ, Acedo B (2000) Chemical and photochemical degradation of acenaphthylene: intermediate identification. J Hazard Mater 75(1):89–98\nRivas J, Gimeno O, de la Calle RG, Beltrán FJ (2009) Ozone treatment of PAH contaminated soils: operating variables effect. J Hazard Mater 169(1–3):509–515\nRusso L, Rizzo L, Belgiorno V (2012) Ozone oxidation and aerobic biodegradation with spent mushroom compost for detoxification and benzo(a)pyrene removal from contaminated soil. Chemosphere 87(6):595–601\nSchnürer J, Rosswall T (1982) Fluorescein diacetate hydrolysis as a measure of total microbial activity in soil and litter. Appl Environ Microbiol 43(6):1256–1261\nSung M, Lee SZ, Huang CP (2008) Ozonation of pentachlorophenol in unsaturated soils. J Contam Hydrol 98(3–4):75–84\nWu J, Jiang Y, Zha L, Ye Z, Zhou Z, Ye J, Zhou H (2010) Tetracycline degradation by ozonation, and evaluation of biodegradability and toxicity of ozonation byproducts. Can J Civ Eng 37(11):1485–1491\nYao JJ, Huang ZH, Masten SJ (1998a) The ozonation of pyrene: pathway and product identification. Water Res 32(10):3001–3012\nYao JJ, Huang ZH, Masten SJ (1998b) The ozonation of benz(a)anthracene: pathway and product identification. Water Res 32(11):3235–3244\nYu D, Bae W, Kang N, Banks MK, Choi C (2005) Characterization of gaseous ozone decomposition in soil. Soil Sediment Contam 14(3):231–247\nZeng Y, Hong PKA, Wavrek DA (2000) Chemical–biological treatment of pyrene. Water Res 34(4):1157–1172",{"EN":936},"\nContinuous ozonation can inactivate indigenous microbes due to the disinfection capability of ozone, which may affect subsequent bioremediation of soils. This study investigated the efficiency of removing polycyclic aromatic hydrocarbons from soils using intermittent ozonation technique, where ozone was sparged through the soil column every alternate day, resulting in shorter ozonation time for each ozonation circulation than continuous ozonation. The results showed that 85 % Phe, 94 % Ant, 76 % Flu, 87 % Pyr, and 91 % BaP were removed on 32 days in continuous ozonation treatment, while 90 % Phe, 84 % Ant, 78 % Flu, 81 % Pyr, and 96 % BaP were removed on 32 days in intermittent ozonation treatment, indicating both intermittent ozonation and continuous ozonation can effectively remove polycyclic aromatic hydrocarbons from soils. Fluorescein diacetate hydrolysis results indicated that the total microbial activity of intermittent ozonation was significantly (p \u003C 0.05) higher than that of continuous ozonation treatment at 8, 16, 24, and 32 days. The toxicity bioassay of soil extracts showed that the relative luminescence increased from 5 to 30 % at 8 days, without significant (p > 0.05) increase at 32 days in continuous ozonation treatment, while it increased to 61 % at 32 days in intermittent ozonation treatment, indicating intermittent ozonation was more effective than continuous ozonation for the detoxification of soils contaminated with polycyclic aromatic hydrocarbons. It suggested that both treatments were equally effective at removing polycyclic aromatic hydrocarbons from soil, but intermittent ozonation was better than continuous ozonation for further detoxification and maintaining the total microbial activity of soil.",{"EN":938},"Comparison between continuous and intermittent ozonation for remediation of soils contaminated with polycyclic aromatic hydrocarbons",{"VOID":940},"10.1007\u002Fs13762-015-0763-8","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs13762-015-0763-8",[943,958,970,982,994,1006],{"id":944,"sortIndex":257,"researcher":18,"roles":945,"affiliations":946,"properties":955},"139b2e56-654d-45cb-9be6-c4102f2e2eda",[143],[947],{"id":18,"sortIndex":19,"affiliation":948,"properties":18},{"id":949,"createTime":950,"updateTime":950,"relativeEntities":951,"slug":18,"properties":952,"entityType":54,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"878dbb99-bc48-44af-b055-4902ea31032e","2023-12-03T11:53:23.549+00:00",[],{"title":953},{"VI":954},"Department of Environmental Health Science, School of Public Health and Tropical Medicine, Southern Medical University, Guangzhou, People’s Republic of China",{"title":956},{"VI":957},"R. 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Water Resour Manag 30(1):243–260\nAryafar A, Yousefi S, Ardejani FD (2013) The weight of interaction of mining activities: groundwater in environmental impact assessment using fuzzy analytical hierarchy process (FAHP) Environ. Earth Sci 68(8):2313–2324\nAslan V, Çelik R (2021) Integrated GIS-based multi-criteria analysis for groundwater potential mapping in the Euphrates’s Sub-Basin, Harran Basin, Turkey. Sustainability 13(13):7375. https:\u002F\u002Fdoi.org\u002F10.3390\u002Fsu13137375\nAvtar R, Singh CK, Shashtri S, Singh A, Mukherjee S (2010) Identification and analysis of groundwater potential zones in Ken-Betwa River linking area using remote sensing and geographic information system. Geocarto Int 25(5):379–396\nAyazi MH, Pirasteh S, Arvin AKP, Pradhan B, Nikouravan B, Mansor S (2010) Disasters and risk reduction in groundwater: Zagros Mountain Southwest Iran using geoinformatics techniques. Disaster Adv 3(1):51–57\nBackundukize C, Van Camp M, Walraevans K (2011) Estimation of groundwater recharge in Bugesera region (Burindi) Using soil moisture budget approach. Gel Bel 14:85–120\nBagyaraj M, Ramkumar T, Venkatramanan S, Gurugnanam B (2013) Application of remote sensing and GIS analysis for identifying groundwater potential zone in parts of Kodaikanal Taluk. South India Front Earth Sci 7(1):65–75\nBirkeland PW (1984) Soils and geomorphology. Oxford University Press, UK\nCelik R, Hamidi N (2018) Ergani İlçesi Ovasının yeraltısuyu potansiyelinin Coğrafi Bilgi Sistemi ile belirlenmesi. Dicle Üniver Mühendis Fakült Mühendis Dergisi 9(2):999–1007\nCheng CH (1997) Evaluating naval tactical missile systems by fuzzy AHP based on the grade value of membership function. Eur J Oper Res 96(2):343–350\nChowdhury A, Jha MK, Chowdhary VM, Mal BC (2009) Integrated remote sensing and GIS-based approach for accessing groundwater potential in west Medinipur district, West Bengal, India. Int J Remote Sens 30(1):231–250\nChowdhury A, Jha MK, Chowdary VM (2010) Delineation of groundwater recharge zones and identification of artificial recharge sites in West Medinipur district, West Bengal, using RS, GIS and MCDM techniques. Environ Earth Sci 59(6):1209\nChu HJ, Liu C, Wang C (2013) Identifying the Relationships between Water Quality and Land Cover Changes in the Tseng-Wen Reservoir Watershed of Taiwan. Int J Environ Res Public Health 10:478–489\nDabrowski JM, De Klerk LP (2013) An Assessment of the impact of different land use activities on water quality in the Upper Olifants river catchment. Water Sa 39:231–241\nDas S, Gupta A, Ghosh S (2017) Exploring groundwater potential zones using MIF technique in semi-arid region: a case study of Hingoli district, Maharashtra. Spat Inf Res 25(6):749–756\nDas B, Pal SC (2019) Assessment of groundwater recharge and its potential zone identification in groundwater-stressed Goghat-I block of Hugli District, West Bengal, India. Environ Dev Sustain. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs10668-019-00457-7\nDas S (2019) Comparison among influencing factor, frequency ratio, and analytical hierarchy process techniques for groundwater potential zonation in Vaitarna Basin, Maharashtra, India. Groundw Sustain Dev 8:617–629\nDasho OA, Ariyibi EA, Akinluyi FO, Awoyemi MO, Adebayo AS (2017) Application of satellite remote sensing to groundwater potential modeling in Ejigbo area, Southwestern. Nigeria Model Earth Syst Environ 3(2):615–633\nDias LCP, Macedo MN, Costa MH, Coe MT, Neill C (2015) Effects of land cover change on evapotranspiration and streamflow of small catchments in the Upper Xingu River Basin, Central Brazil. J Hydrol Reg Stud 4:108–122\nDilekoglu MF, Aslan V (2021) Determination of groundwater potential distribution of Ceylanpinar Plain (Turkey) in Upper Mesopotamia by using geographical information techniques and Fuzzy-AHP with MCDM. Water Supply. https:\u002F\u002Fdoi.org\u002F10.2166\u002Fws.2021.268\nEl Mekki OA, Laftouhi NE (2016) Combination of a geographical information systemand remote sensing data to map groundwater recharge potential in arid to semi-arid areas: the Haouz Plain. Morocco Earth Sci Inf 9(4):465–479\nElmahdy SI, Mohamed MM (2016) Land use\u002Fland cover change impact on groundwater quantity and quality: A case study of Ajman Emirate, the United Arab Emirates, using remote sensing and GIS. Arab J Geosci 9:722\nFitts CR (2002) Groundwater science. Elsevier (Academic Press), UK\nGupta M, Srivastava PK (2010) Integrating GIS and remote sensing for identification of groundwater potential zones in the hilly terrain of Pavagarh, Gujarat. India Water Int 35(2):233–245\nHan D, Currell MJ, Cao G, Hall B (2017) Alterations to groundwater recharge due to anthropogenic landscape change. J Hydrol 554:545–557\nHorton RE (1932) Drainage-basin characteristics. EOS Trans Am Geophys Union 13(1):350–361\nhttp:\u002F\u002Fwww.gap.gov.tr\u002Fen\u002F (2006)\nIngebritsen S, Gleeson T (2017) Crustal permeability. Hydrogeol J 25(8):2221–2224\nJothibasu A, Anbazhagan S (2016) Modeling groundwater probability index in Ponnaiyar River basin of South India using analytic hierarchy process. Model Earth Syst Environ 2(3):109\nKaliraj S, Chandrasekar N, Magesh NS (2014) Identification of potential groundwater recharge zones in Vaigai upper basin, Tamil Nadu, using GIS-based analytical hierarchical process (AHP) technique. Arab J Geosci 7(4):1385–1401\nKavas E (2009) Geographical information systems based investigation of landslide sensitivity in İzmir Province with analytical hierarchical process method. In: TMMOB geographical information systems congress (CBS2009), 02–06 November, Izmir, Turkey\nKumar P, Herath S, Avtar R, Takeuchi K (2016) Mapping of groundwater potential zones in Killinochi area, Sri Lanka, using GIS and remote sensing techniques. Sustain Water Resour Manag 2:419–430\nMalczewski J (1999) GIS and multicriteria decision analysis. Wiley, New York\nMalczewski J, Rinner C (2015) Multicriteria decision analysis in geographic information science. Springer, New York\nMallick J, Al-Wadi H, Rahman A, Ahmed M (2014) Landscape dynamic characteristics using satellite data for a mountainous watershed of Abha, Kingdom of Saudi Arabia. Environ Earth Sci 72(12):4973–4984\nMallick J, Singh CK, Al-Wadi H, Ahmed M, Rahman A, Shashtri S, Mukherjee S (2015) Geospatial and geostatistical approach for groundwater potential zone delineation. Hydrol Process 29(3):395–418\nMelton MA (1957) An analysis of the relations among elements of climate, surface properties, and geomorphology. Columbia University, New York\nOuma YO, Tateishi R (2014) Urban flood vulnerability and risk mapping using integrated multi-parametric AHP and GIS: methodological overview and case study assessment. Water 6:1515–1545\nOzbek A (2014) Determination of managers with multi-criteria decision making method. J Manag Econ Stud 12(24):209–225\nOzturk D, Batuk F (2010) Using analytic hierarchy method in spatial decision problems. Yildiz Tech Univer Sigma J Eng Sci 28:124–137\nPelling M (2003) Natural disaster and development in a globalizing world. Routledge, Abingdon\nPlyusnin AM, Zamana LV, Shvartsev SL, Tokarenko OG, Chernyavskii MK (2013) Hydrogeochemical peculiarities of the nitric thermal water composition in the Baikal Rift Zone. Russ Geol Geophys 5:495–508. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.rgg.2013.04.002\nRahmati O, Samani AN, Mahdavi M, Pourghasemi HR, Zeinivand H (2015) Groundwater potential mapping at Kurdistan region of Iran using analytic hierarchy process and GIS. Arab J Geosci 8(9):7059–7071\nRajaveni SP, Brindha K, Elango L (2017) Geological and geomorphological controls on groundwater occurrence in a hard rock region. Appl Water Sci 7(3):1377–1389\nSaaty TL (1990) How to make a decision: the analytic hierarchy process? Eur J Oper Res 48:9–26\nSaaty TL (2008) Decision making with the analytic hierarchy process. Int J Serv Sci 1(1):83\nSar N, Khan A, Chatterjee S, Das A (2015) Hydrologic delineation of ground water potential zones using geospatial technique for Keleghai River Basin, India. Model Earth Syst Environ 1(3):25\nSchrick B, Hydutsky BW, Blough JL, Mallouk TE (2004) Delivery vehicles for zerovalent metal nanoparticles in soil and groundwater. Chem Mater 16(11):2187–2193\nSHW (State Hydraulic Works) (1972) Hydrogeological study of the Harran plain. DSI Printing Office, Ankara, p 49\nSilwal CB, Pathak D (2018) Review on practices and state of the art methods on delineation of ground water potential using GIS and remote sensing. Bull Dep Geol. https:\u002F\u002Fdoi.org\u002F10.3126\u002Fbdg.v20i0.20717\nSingh PK, Kumar S, Singh U (2011) Groundwater resource evaluation in the Gwalior area, India, using satellite data: an integrated geomorphological and geophysical approach. Hydrogeol J. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs10040-10011-10758-10046\nTepoule N, Kenfack JV, Ndoh EN, Koumetio F, Tabod CT (2021) Delineation of groundwater potential zones in Logbadjeck, Cameroun: an integrated geophysical and geospatial study approach. Int J Environ Sci Technol. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs13762-021-03259-5\nThakur JK (2011) Arsenic contamination of groundwater in Nepal—an overview. Water 3(1):1–20\nVan Roosmalen L, Christensen BSB, Sonnenborg TO (2007) Regional differences in climate change impacts on groundwater and stream discharge in Denmark. Vadose Zone J 6(3):554–571. https:\u002F\u002Fdoi.org\u002F10.2136\u002Fvzj2006.0093\nWardana A (2018) Perencanaan dinding penahan tanah pada ruas jalan tol samarinda-balikpapan segmen 2 STA 06+ 525. STA 6:650\nWest LJ, Odling NE (2014) Groundwater. In: Water resources–an integrated approach by Joseph Holden. Routledge, New York\nZionts S, Wallenius J (1976) An interactive programming method for solving the multiple criteria problem. Manage Sci 22(6):652–663",{"EN":1063},"In order to develop and manage groundwater resources sustainably, it is necessary to make precise quantitative assessments based on scientific principles as well as modern techniques. Groundwater feeding is an important process for the management of surface water resources as well as underground water resources. In this study, the application of analytical hierarchy process on geographical–spatial analysis was used to investigate potential regions for groundwater feeding in Turkey, Sanliurfa, Haliliye basin. Morphology of the ground surface features such as land use, land cover, geology, geomorphology, soil, slope, drainage, linearity, and aquifers is the parameter that directly or indirectly affects groundwater supply. These layers are weighted according to the size of the groundwater feeding potential using the ArcGIS 10.2 software and other auxiliary data sources. As a result of the study, five regions were created by obtaining the groundwater potential index (GWPI) values of the basin: GWPI: very bad 0.06% (2.04 km2), bad: 18.30% (1001.16 km2), medium: 43.10% (2863.86 km2), good: 32.50% (2128.63 km2), very good: 6.04% (23.12 km2). The study's data were validated using wells drilled on the land, and the results of determining the groundwater potential of the Sanliurfa Haliliye district using the multi-criteria decision-making method were realized.",{"EN":1065},"Groundwater potential mapping with geographical information techniques for a sustainable environment in Haliliye Basin, Turkey",{"VOID":1067},"10.1007\u002Fs13762-021-03829-7","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs13762-021-03829-7",[1070,1085],{"id":1071,"sortIndex":111,"researcher":18,"roles":1072,"affiliations":1073,"properties":1082},"481104fb-c020-4d05-a374-907f04344122",[143],[1074],{"id":18,"sortIndex":19,"affiliation":1075,"properties":18},{"id":1076,"createTime":1077,"updateTime":1077,"relativeEntities":1078,"slug":18,"properties":1079,"entityType":54,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"5aa8941f-8208-4513-bf7f-c4135fda72d4","2024-02-07T18:59:02.795+00:00",[],{"title":1080},{"VI":1081},"Engineering Faculty, Environmental Engineering Department, Harran University, Sanliurfa, Turkey",{"title":1083},{"VI":1084},"M. 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Environ Monit Assess 184:1879–1889. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs10661-011-2086-7",{"doi":1338},"10.1007\u002Fs10661-011-2086-7",{"id":18,"text":1340,"url":18,"identifiers":1341},"An XQ, Zhou LX, Yao B, Xu L, Ma L (2012b) Analysis on source features of halogenated gases at Shangdianzi regional atmospheric background station. Atmos Environ 57:91–100. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.atmosenv.2012.04.042",{"doi":1342},"10.1016\u002Fj.atmosenv.2012.04.042",{"id":18,"text":1344,"url":18,"identifiers":1345},"An JL, Wang JX, Zhang YX, Zhu B (2017) Source apportionment of volatile organic compounds in an urban environment at the Yangtze River Delta, China. Arch Environ Contam Toxicol 72:335–348. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs00244-017-0371-3",{"doi":1346},"10.1007\u002Fs00244-017-0371-3",{"id":18,"text":1348,"url":18,"identifiers":1349},"Cong X, Zhu SQ, Xue ND, Li FS (2009) Vertical distribution of pollutants in soils of a former organochlorine pesticide manufacturing field. Res Environ Sci 22:351–355. https:\u002F\u002Fdoi.org\u002F10.13198\u002Fj.res.2009.03.93.congx.016(in Chinese)",{"doi":1350},"10.13198\u002Fj.res.2009.03.93.congx.016",{"id":18,"text":1352,"url":18,"identifiers":1353},"Critto A, Cantarella L, Carlon C, Giove S, Petruzzelli G, Marcomini A (2006) Decision support–oriented selection of remediation technologies to rehabilitate contaminated sites. Integr Environ Assess Manag 2:273–285. https:\u002F\u002Fdoi.org\u002F10.1002\u002Fieam.5630020307",{"doi":1354},"10.1002\u002Fieam.5630020307",{"id":18,"text":1356,"url":18,"identifiers":1357},"Gan P, Yang YW, Fang ZQ, Guo SQ, Jia JL (2013) Characteristics of gaseous pollutions distribution during remedial excavation at a volatile organic compound contaminated site. Environ Sci 34(12):4619–4626. https:\u002F\u002Fdoi.org\u002F10.13227\u002Fj.hjkx.2013.12.016(in Chinese)",{"doi":1358},"10.13227\u002Fj.hjkx.2013.12.016",{"id":18,"text":1360,"url":18,"identifiers":1361},"Gonzalez CRN, Bjorklund E, Forteza R et al (2013) Volatile organic compounds in landfill odorant emissions on the island of Mallorca. Int J Environ Anal Chem 93(4):434–449",{"doi":1362},"10.1080\u002F03067319.2011.637196",{"id":18,"text":1364,"url":18,"identifiers":1365},"Guo GL, Wang SJ, Shi LY, Li HY, Han CM, Cao YZ, Li FS (2010) Health risk analysis of VOC\u002FSVOC contaminated soil in an abandoned chemical plant. Environ Sci 31:397–402. https:\u002F\u002Fdoi.org\u002F10.13227\u002Fj.hjkx.2010.02.018(in Chinese)",{"doi":1366},"10.13227\u002Fj.hjkx.2010.02.018",{"id":18,"text":1368,"url":18,"identifiers":1369},"He XW, Fang ZQ, Cheng YX, Yu Y, Luo M, Jia JL (2015) Escape pattern and concentration distribution of volatile organic compounds in the remediation process of contaminated sites. Environ Chem 34(2):284–292. https:\u002F\u002Fdoi.org\u002F10.7524\u002Fj.issn.0254-6108.2015.02.2014091101(in Chinese)",{"doi":1370},"10.7524\u002Fj.issn.0254-6108.2015.02.2014091101",{"id":18,"text":1372,"url":18,"identifiers":1373},"Hu RY, Liu GJ, Zhang H, Xue HQ, Wang X (2018) Levels, characteristics and health risk assessment of VOCs in different functional zones of Hefei City. Ecotoxicol Environ Saf 106:301–307. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.ecoenv.2018.05.056",{"doi":1374},"10.1016\u002Fj.ecoenv.2018.05.056",{"id":18,"text":1376,"url":18,"identifiers":1377},"Klimont Z, Streets DG, Gupta S, Cofala J, Lixin F, Ichikawa Y (2002) Anthropogenic emissions of non-methane volatile organic compounds in China. Atmos Environ 36:1309–1322. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fs1352-2310(01)00529-5",{"doi":1378},"10.1016\u002Fs1352-2310(01)00529-5",{"id":18,"text":1380,"url":18,"identifiers":1381},"Lehtinen J, Tolvanen O, Nivukoski U, Veijanen A, Hänninen K (2013) Occupational hygiene in terms of volatile organic compounds (VOCs) and bioaerosols at two solid waste management plants in Finland. Waste Manag 33:964–973. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.wasman.2012.11.010",{"doi":1382},"10.1016\u002Fj.wasman.2012.11.010",{"id":18,"text":1384,"url":18,"identifiers":1385},"Li JL, Zhang MG, Wu FK, Sun YL, Tang GQ (2017) Assessment of the impacts of aromatic VOC emissions and yields of SOA on SOA concentrations with the air quality model RAMS-CMAQ. Atmos Environ 158:105–115. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.atmosenv.2017.03.035",{"doi":1386},"10.1016\u002Fj.atmosenv.2017.03.035",{"id":18,"text":1388,"url":18,"identifiers":1389},"Liu XF, Liu Y, Geng YC (2018) Study on the pollution status of volatile organic compounds in the atmosphere of Zhenjiang City. J Green Sci Technol 18(33):93–94. https:\u002F\u002Fdoi.org\u002F10.16663\u002Fj.cnki.lskj.2018.18.033(in Chinese)",{"doi":1390},"10.16663\u002Fj.cnki.lskj.2018.18.033",{"id":18,"text":1392,"url":18,"identifiers":1393},"Lu SH, Shao M, Wang M (2012) Measurement technology of volatile organic compiounds in urban atmospphere. Beijing, China, pp 11–19 (in Chinese)",{},{"id":18,"text":1395,"url":18,"identifiers":1396},"Ma Y, Dong BB, Du XM, Zhang DD, Men ZM, Huang JL, Jiang CJ, Li FS (2017) Secondary pollution and its prevention of VOC\u002FSVOC-contaminated sites with ex situ remediation technologies. Environ Eng 35(04):174–178. https:\u002F\u002Fdoi.org\u002F10.13205\u002Fj.hjgc.201704036(in Chinese)",{"doi":1397},"10.13205\u002Fj.hjgc.201704036",{"id":18,"text":1399,"url":18,"identifiers":1400},"Sharma S, Goel A, Gupta D, Kumar A, Mishra A, Kundu S, Chatani S, Klimont Z (2015) Emission inventory of non-methane volatile organic compounds from anthropogenic sources in India. Atmos Environ 102:209–219. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.atmosenv.2014.11.070",{"doi":1401},"10.1016\u002Fj.atmosenv.2014.11.070",{"id":18,"text":1403,"url":18,"identifiers":1404},"Song X, Lin N, Yin PH (2015) Contaminated site remediation industry in China: current state and future trends. Soils 47(01):1–7. https:\u002F\u002Fdoi.org\u002F10.13758\u002Fj.cnki.tr.2015.01.001(in Chinese)",{"doi":1405},"10.13758\u002Fj.cnki.tr.2015.01.001",{"id":18,"text":1407,"url":18,"identifiers":1408},"Sun YJ, Lu JG, Zhao X, Zhou XJ, Shan YH, Ying RR, Feng YH, Lin YS (2015) Atmospheric VOCs pollution level and its diurnal variation in typical urban traffic area and background area of Nanjing of China in Spring. J Ecol Rural Environ 31(2):151–157 (in Chinese)",{},{"id":18,"text":1410,"url":18,"identifiers":1411},"Tan B, Wang TY, Pang B, Zhu ZY, Wang DH, Lv YL (2013) Pollution characteristics and health risk assessment of atmospheric volatile organic compounds(VOCS) in pesticide factory. Environ Sci 34(12):4577–4584. https:\u002F\u002Fdoi.org\u002F10.13227\u002Fj.hjkx.2013.12.011(in Chinese)",{"doi":1412},"10.13227\u002Fj.hjkx.2013.12.011",{"id":18,"text":1414,"url":18,"identifiers":1415},"Thurston GD, Spengler JD (1985) A quantitative assessment of source contributions to inhalable particulate matter pollution in metropolitan Boston. Atmos Environ 19:9–25. https:\u002F\u002Fdoi.org\u002F10.1016\u002F0004-6981(85)90132-5",{"doi":1416},"10.1016\u002F0004-6981(85)90132-5",{"id":18,"text":1418,"url":18,"identifiers":1419},"Wang M, Shao M, Chen W, Lu S, Li Y (2014) Trends of non-methane hydrocarbons (NMHC) emissions in Beijing during 2002–2013. Atmos Chem Phys 14:85–94. https:\u002F\u002Fdoi.org\u002F10.5194\u002Facpd-14-18997-2014",{"doi":1420},"10.5194\u002Facpd-14-18997-2014",{"id":18,"text":1422,"url":18,"identifiers":1423},"Wei W, Wang S, Chatani S, Klimont Z, Cofala J, Hao J (2008) Emission and speciation of non-methane volatile organic compounds from anthropogenic sources in China. Atmos Environ 42:4976–4988. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.atmosenv.2008.02.044(in Chinese)",{"doi":1424},"10.1016\u002Fj.atmosenv.2008.02.044",{"id":18,"text":1426,"url":18,"identifiers":1427},"Wei W, Wang SX, Hao JM, Cheng SY (2011a) Projection of anthropogenic volatile organic compounds (VOCs) emissions in China for the period 2010-2020. Atmos Environ 45(38):6863–6871. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.atmosenv.2011.01.013",{"doi":1428},"10.1016\u002Fj.atmosenv.2011.01.013",{"id":18,"text":1430,"url":18,"identifiers":1431},"Wei W, Wang SX, Hao JM (2011b) Uncertainty analysis of emission inventory for volatile organic compounds from anthropogenic sources in China. Environ Sci 32(2):305–312. https:\u002F\u002Fdoi.org\u002F10.3724\u002FSP.J.1011.2011.00197",{"doi":1432},"10.3724\u002FSP.J.1011.2011.00197",{"id":18,"text":1434,"url":18,"identifiers":1435},"Wu RR, Li J, Hao YF, Li YQ, Zeng LM, Xie SD (2016) Evolution process and sources of ambient volatile organic compounds during a severe haze event in Beijing, China. Sci Total Environ 560–561:62–72. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.scitotenv.2016.04.030",{"doi":1436},"10.1016\u002Fj.scitotenv.2016.04.030",{"id":18,"text":1438,"url":18,"identifiers":1439},"Xiang LY, Han DM (2016) The characteristics and source analysis of atmospheric volatile organic compounds in the farmland surrounding by industrial zone in Shanghai, China. Time Agric Mach 43(1):151–152. https:\u002F\u002Fdoi.org\u002F10.11934\u002Fj.issn.1673-4831.2015.06.006(in Chinese)",{"doi":1440},"10.11934\u002Fj.issn.1673-4831.2015.06.006",{"id":18,"text":1442,"url":18,"identifiers":1443},"Yan YZ, Xue ND, Zhou LL, Cong X, Li FS, Yang B, Liu B (2014) Distribution characteristics of HCHs and DDTs during excavation of a contaminated site. Res Environ Sci 27(6):642–648. https:\u002F\u002Fdoi.org\u002F10.13198\u002Fj.issn.1001-6929.2014.06.12",{"doi":1444},"10.13198\u002Fj.issn.1001-6929.2014.06.12",{"id":18,"text":1446,"url":18,"identifiers":1447},"Yang B, L HY, Wu B, Du P, Li FS (2013) Engineering remediation techniques and its application for volatile organic compounds-contaminated sites. J Environ Eng Technol",{},{"id":18,"text":1449,"url":18,"identifiers":1450},"Zhang XF, Chen Q, Deng SP, Long T, Huang Y, Lin YS (2015) Advances in the study on secondary pollution of volatile organic compounds in remediation of contaminated site. Ecol Rural Environ 31(6):831–834. https:\u002F\u002Fdoi.org\u002F10.11934\u002Fj.issn.1673-4831.2015.06.006(in Chinese)",{"doi":1440},{"id":18,"text":1452,"url":18,"identifiers":1453},"Zhang XF, Deng SP, Long T, Huang Y (2017) Variation characteristics and influence factors of near ground atmospheric gaseous pollutants during the remediation process of typical pesticide site. J Nanjing Agric Univ 40(3):481–487. https:\u002F\u002Fdoi.org\u002F10.7685\u002Fjnau.201611020(in Chinese)",{"doi":1454},"10.7685\u002Fjnau.201611020",{"id":18,"text":1456,"url":18,"identifiers":1457},"Zhen J (2017) Study on VOCs in atmosphere and their sources of a typical industrial park in Shanghai, China. J Shanghai Normal Univ 46(2):298–303. https:\u002F\u002Fdoi.org\u002F10.3969\u002Fj.issn.100-5137.2017.02.020(in Chinese)",{"doi":1458},"10.3969\u002Fj.issn.100-5137.2017.02.020",{"id":18,"text":1460,"url":18,"identifiers":1461},"Zhou J, You Y, Bai ZP, Hu Y, Zhang J, Zhang N (2011) Health risk assessment of personal inhalation exposure to volatile organic compounds in Tianjin, China. Sci Total Environ 409:452–459. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.scitotenv.2010.10.022(in Chinese)",{"doi":1462},"10.1016\u002Fj.scitotenv.2010.10.022",{"id":1464,"createTime":1465,"updateTime":1466,"relativeEntities":1467,"slug":1468,"properties":1469,"entityType":134,"verifyStatus":135,"verifyTime":1466,"verifyNote":136,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":1478,"fullTextUrl":18,"authors":1479,"publicationType":183,"publisherRelationship":1613,"citationCount":18,"citationInfo":18,"publishDate":1646,"publishYear":1647,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":18,"openAccess":18,"references":18,"isForceReanalyzing":219},"7a67d674-2eda-47ed-acc7-8e9d55532801","2023-11-24T14:35:55.190+00:00","2025-02-12T23:58:15.250+00:00",[],"Anaerobic-production-of-valeric-acid-from-crude-glycerol-via-chain-elongation",{"references":1470,"abstract":1472,"title":1474,"doi":1476},{"VOID":1471},"Agler MT, Wrenn BA, Zinder SH, Angenent LT (2011) Waste to bioproduct conversion with undefined mixed cultures: the carboxylate platform. Trends Biotechnol 29:70–78. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.tibtech.2010.11.006\nAgler MT, Spirito CM, Usack JG, Werner JJ, Angenent LT (2012) Chain elongation with reactor microbiomes: upgrading dilute ethanol to medium-chain carboxylates. Energy Environ Sci 5:8189. https:\u002F\u002Fdoi.org\u002F10.1039\u002Fc2ee22101b\nAngenent LT, Richter H, Buckel W, Spirito CM, Steinbusch KJJ, Plugge C, Strik DPBTB, Grootscholten TIM, Buisman CJ, Hamelers HVM (2016) Chain elongation with reactor microbiomes: open-culture biotechnology to produce biochemicals. Environ Sci Technol 50:2796–2810. https:\u002F\u002Fdoi.org\u002F10.1021\u002Facs.est.5b04847\nANP - National Agency of Oil, Natural Gas and Biofuels (Brazil) (2018) Brazilian statistical yearbook of oil, natural gas and biofuels, 1st edn. National Agency of Oil, Natural gas and biofuels, Rio de Janeiro (in Portuguese)\nAPROBIO - Associação dos Produtores de Biodiesel do Brasil (2018). https:\u002F\u002Faprobio.com.br\u002F2018\u002F04\u002F19\u002Fproducao-de-biodiesel-deve-ser-de-5-bilhoes-de-litros-em-2018\u002F. Accessed 17 Aug 2018 (in Portuguese)\nArslan D, Steinbusch KJJ, Diels L, Hamelers HVM, Strik DPBTB, Buisman CJN, Wever H (2016) Selective short-chain carboxylates production: a review of control mechanisms to direct mixed culture fermentations. Crit Rev Environ Sci Technol 46:592–634. https:\u002F\u002Fdoi.org\u002F10.1080\u002F10643389.2016.1145959\nBiebl H, Menzel K, Zeng AP, Deckwer WD (1999) Microbial production of 1,3-propanediol. Appl Microbiol Biotechnol 52:289–297. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs002530051523\nBornstein BT, Barker HAA (1948) The energy metabolism of Clostridium kluyveri and the synthesis of fatty acids. J Biol Chem 172:659–669\nBotton V, Souza RT, Wiggers VR, Scharf DR, Simionatto EL, Ender L, Meier HF (2016) Thermal cracking of methyl esters in castor oil and production of heptaldehyde and methyl undecenoate. J Anal Appl Pyrolysis 121:387–393. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jaap.2016.09.002\nBurniol-Figols A, Varrone C, Le SB, Daugaard AE, Skiadas IV, Gavala HN (2018) Combined polyhydroxyalkanoates (PHA) and 1,3-propanediol production from crude glycerol: selective conversion of volatile fatty acids into PHA by mixed microbial consortia. Water Res 136:180–191. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.watres.2018.02.029\nCavalcante WA, Leitão RC, Gehring TA, Angenent LT, Santaella ST (2017) Anaerobic fermentation for n-caproic acid production: a review. Process Biochem 54:106–119. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.procbio.2016.12.024\nChen WS, Ye Y, Steinbusch KJJ, Strik DPBTB, Buisman CJN (2016) Methanol as an alternative electron donor in chain elongation for butyrate and caproate formation. Biomass Bioenergy 93:201–208. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biombioe.2016.07.008\nCorma A, Oliver-Tomas B, Renz M, Simakova IL (2014) Conversion of levulinic acid derived valeric acid into a liquid transportation fuel of the kerosene type. J Mol Catal A Chem 388–389:116–122. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.molcata.2013.11.015\nEBB - European Biodiesel Board Statistics (2019). http:\u002F\u002Fwww.ebb-eu.org\u002Fstats.php. Accessed 29 July 2019\nGanigué R, Naert P, Candry P, Smedt J, Stevens CV, Rabaey K (2019) Fruity flavors from waste: a novel process to upgrade crude glycerol to ethyl valerate. Bioresour Technol 289:121574. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biortech.2019.121574\nGe S, Usack J, Spirito CM, Angenent LT (2015) Long-term n-caproic acid production from yeast-fermentation beer in an anaerobic bioreactor with continuous product extraction. Environ Sci Technol 49:8012–8021. https:\u002F\u002Fdoi.org\u002F10.1021\u002Facs.est.5b00238\nGrootscholten TIM, Steinbusch KJJ, Hamelers HVM, Buisman CJN (2013a) Chain elongation of acetate and ethanol in an upflow anaerobic filter for high rate MCFA production. Bioresour Technol 135:440–445. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biortech.2012.10.165\nGrootscholten TIM, Steinbusch KJJ, Hamelers HVM, Buisman CJN (2013b) High rate heptanoate production from propionate and ethanol using chain elongation. Bioresour Technol 136:715–718. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biortech.2013.02.085\nJankowska E, Duber A, Chwialkowska J, Stodolny M, Oleskowicz-Popiel P (2018) Conversion of organic waste into volatile fatty acids: the influence of process operating parameters. Chem Eng J 345:395–403. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.cej.2018.03.180\nKim H, Jeon BS, Sang B (2019) An efficient new process for the selective production of odd-chain carboxylic acids by simple carbon elongation using Megasphaera hexanoica. Sci Rep 9:11999. https:\u002F\u002Fdoi.org\u002F10.1038\u002Fs41598-019-48591-6\nKucek LA, Nguyen M, Angenent LT (2016a) Conversion of L-lactate into n-caproate by a continuously fed reactor microbiome. Water Res 93:163–171. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.watres.2016.02.018\nKucek LA, Spirito CM, Angenent LT (2016b) High n-caprylate productivities and specificities from dilute ethanol and acetate: chain elongation with microbiomes to upgrade products from syngas fermentation. Energy Environ Sci 9:3482–3494. https:\u002F\u002Fdoi.org\u002F10.1039\u002FC6EE01487A\nKucek LA, Xu J, Nguyen M, Angenent LT (2016c) Waste conversion into n-caprylate and n-caproate: resource recovery from wine lees using anaerobic reactor microbiomes and in-line extraction. Front Microbiol 7:1–14. https:\u002F\u002Fdoi.org\u002F10.3389\u002Ffmicb.2016.01892\nLeitão RC, Gehring TA, Cavalcante WA, Freitas IBF, Souza AC, van Haandel AC, Angenent LT, Santaella ST (2017) Biological production of caproic acid in a lab-scale reactor. Embrapa Agroind Trop (Tech Rep) 229:1–6 (ISSN 1679-6535 [in Portuguese])\nLeng L, Yang P, Mao Y, Wu Z, Zhang T, Lee PH (2017) Thermodynamic and physiological study of caproate and 1,3-propanediol co-production through glycerol fermentation and fatty acids chain elongation. Water Res 114:200–209. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.watres.2017.02.023\nLeng L, Nobu MK, Narihiro T, Yang P, Tan GA, Lee P (2019) Shaping microbial consortia in coupling glycerol fermentation and carboxylate chain elongation for co-production of 1,3-propanediol and caproate: pathways and mechanisms. Water Res 148:281–291. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.watres.2018.10.063\nMarchandin H, Juvonen R, Haikara A (2009) Megasphaera. In: de Vos P, Garrity GM, Jones D, Krieg NR, Krieg NR et al (eds) Bergey’s manual of systematic bacteriology, vol Three: The Firmicutes, 2nd edn. Springer, Berlin\nMarounek M, Fliegrova K, Bartos S (1989) Metabolism and some characteristics of ruminal strains of Megasphaera elsdenii. Appl Environ Microbiol 55:1570–1573\nMonteiro MR, Kugelmeier CL, Pinheiro RS, Batalha MO, César AS (2018) Glycerol from biodiesel production: technological paths for sustainability. Renew Sustain Energy Rev 88:109–122. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.rser.2018.02.019\nOECD\u002FFAO (2017) Agricultural outlook 2017–2026. OECD Publishing, Paris. https:\u002F\u002Fdoi.org\u002F10.1787\u002Fagr_outlook-2017-en\nPrabhu R, Altman E, Eitemana MA (2012) Lactate and acrylate metabolism by Megasphaera elsdenii under batch and steady-state conditions. Appl Environ Microbiol 78:8564–8570. https:\u002F\u002Fdoi.org\u002F10.1128\u002FAEM.02443-12\nSilva GP, Mack M, Contiero J (2009) Glycerol: a promising and abundant carbon source for industrial microbiology. Biotechnol Adv 27:30–39. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biotechadv.2008.07.006\nSun YQ, Shen JT, Yan L, Zhou JJ, Jiang LL, Chen Y, Yuan JL, Feng EM, Xiu ZL (2018) Advances in bioconversion of glycerol to 1,3-propanediol: prospects and challenges. Process Biochem 2018(71):134–146. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.procbio.2018.05.009\nVeras STS, Rojas P, Florencio L, Kato MT, Sanz JL (2019) Production of 1,3-propanediol from pure and crude glycerol using a UASB reactor with attached biomass in silicone support. Bioresour Technol 279:140–148. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biortech.2019.01.125\nViana QM, Viana MB, Vasconcelos EAF, Santaella ST, Leitão RC (2014) Fermentative H2 production from residual glycerol: a review. Biotechnol Lett 36:1381–1390. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs10529-014-1507-4\nWeimer PJ, Moen GN (2013) Quantitative analysis of growth and volatile fatty acid production by the anaerobic ruminal bacterium Megasphaera elsdenii T81. Appl Microbiol Biotechnol 97:4075–4081. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs00253-012-4645-4\nWeimer PJ, Nerdahl M, Brandl DJ (2015) Production of medium-chain volatile fatty acids by mixed ruminal microorganisms is enhanced by ethanol in co-culture with Clostridium kluyveri. Bioresour Technol 175:97–101. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biortech.2014.10.054\nWu Q, Bao X, Guo W, Wang B, Li Y, Luo H, Wang H, Ren N (2019) Medium chain carboxylic acids production from waste biomass: current advances and perspectives. Biotechnol Adv 37:599–615. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biotechadv.2019.03.003",{"EN":1473},"Glycerol from biodiesel production was used as a substrate for valerate production in a 13.1-L anaerobic filter with an open microbiome. Ethanol at 15% of the influent chemical oxygen demand was supplemented as an additional electron donor source. The 114-day experimental period was divided in three phases which included initial adaptation phase, external sludge addition from a caproic acid producing reactor and valerate extraction using a pertraction system. Propionate (0.63–1.75 g COD L−1 day−1) and valerate (0.86–1.81 g COD L−1 day−1) were the main carboxylates formed throughout all operational phases. An increase in production rates of butyrate (0.26–0.31 g COD L−1 day−1), caproate (0.01–0.08 g COD L−1 day−1), and 1,3-propanediol (0.43–0.52 g COD L−1 day−1) was observed with addition of external caproic acid producing sludge rich in Clostridium members. In the operational phase with pertraction, a sudden decrease in 1,3-propanediol and concomitant increase in acid production were verified. Propionate and valerate reached higher production rates compared with the other two phases, suggesting that the pertraction system favored the oxidative pathway of glycerol fermentation. Valerate extraction reached a maximum of 30 g COD m−2 day−1. The filter microbiome was highly diverse with Simpson index values close to 0.1 for the four sludge samples collected, and a concomitant increase in Megasphaera elsdenii and an increase in valerate production rates were observed. Hence, high valerate production and extraction rates through the carboxylate platform are a feasible alternative for crude glycerol valorization with a great potential for improvement in future research.",{"EN":1475},"Anaerobic production of valeric acid from crude glycerol via chain elongation",{"VOID":1477},"10.1007\u002Fs13762-019-02562-6","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs13762-019-02562-6",[1480,1495,1511,1526,1542,1558,1574,1589,1601],{"id":1481,"sortIndex":1156,"researcher":18,"roles":1482,"affiliations":1483,"properties":1492},"4b336159-b875-43d5-a7ff-d9d5e7c51d61",[143],[1484],{"id":18,"sortIndex":19,"affiliation":1485,"properties":18},{"id":1486,"createTime":1487,"updateTime":1487,"relativeEntities":1488,"slug":18,"properties":1489,"entityType":54,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"6e4745fc-618c-45cd-9709-6f50d00c0635","2024-02-07T08:58:59.904+00:00",[],{"title":1490},{"VI":1491},"Department of Molecular Biology, Autonomous University of Madrid, Madrid, Spain",{"title":1493},{"VI":1494},"P. 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