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Int., 2018, vol. 44, no. 15, pp. 18344–18351.\nHelvacı, C. and Palmer, M.R., Origin and distribution of evaporite borates: The primary economic sources of boron, Elements, 2017, vol. 13, no. 4, pp. 249–254.\nGarrett, D.E., Borates: Handbook of Deposits, Processing, Properties, and Use, London, UK: Academic, 1998.\nAkbay, E. and Altiokka, M.R., Kinetics of borax dehydration by thermal analysis, Anadolu Univ. J. Sci. Technol. A, 2017, vol. 18, no. 18, pp. 713–719.\nBalcı, S., Sezgi, N.A., and Eren, E., Boron oxide production kinetics using boric acid as raw material, Ind. Eng. Chem. Res., 2012, vol. 51, no. 34, pp. 11091–11096.\nUrgnani, J., Torres, F.J., Palumbo, M., and Baricco, M., Hydrogen release from solid state NaBH4, Int. J. Hydrogen Energy, 2008, vol. 33, no. 12, pp. 3111–3115.\nGençaslan, A. and Karaduman, A., Comparing of using dehydrated borax and sodium metaborate as borate source for sodium borohydride production in vibrating ball mill, J. Boron, 2016, vol. 1, no. 2, pp. 96–103.\nEkmekyapar, A., Baysar, A., and Kunkul, A., Dehydration kinetics of tincal and borax by thermal analysis, Ind. Eng. Chem. Res., 1997, vol. 36, no. 9, pp. 3487–3490.\nGabriel, C., Gabriel, S., Grant, E., Halstead, B., and Mingos, D., Dielectric parameters relevant to microwave dielectric heating, Chem. Soc. Rev., 1998, vol. 27, no. 3, pp. 213–224.\nLoupy, A., Microwave in Organic Synthesis, Weinheim: Wiley-VCH, 2002.\nKipcak, A.S., Moroydor Derun, E., and Piskin, S., Magnesium borate synthesis by microwave energy: A new method, J. Chem., 2013, vol. 2013, pp. 1–5.\nBogdal, D. and Prociak, A., Microwave-Enhanced of Polymer Chemistry and Technology, Oxford, UK: Blackwell, 2007.\nPerelaer, J., Gans de, B., and Schubert, U., Ink-jet printing and microwave sintering of conductive silver tracks, Adv. Mater., 2006, vol. 18, no. 16, pp. 2101–2104.\nTsuji, M., Hashimoto, Y., Nishizawa, Y., Kubokawa, M., and Tsuji, T., Microwave-assisted synthesis of metallic nanostructures in solution, Chem. Eur. J., 2005, vol. 11, no. 7, pp. 440–452.\nLi, J., Jin, Y.L., Zhang, X.G., and Yang, H., Microwave solid-state synthesis of spinel Li4Ti5O12 nanocrystallites as anode material for lithium-ion batteries, Solid State Ionics, 2007, vol. 178, no. 29, pp. 1590–1594.\nElander, N., Jones, J., Lu, S., and Stone-Elander, S., Microwave-enhanced radiochemistry, Chem. Soc. Rev., 2000, vol. 29, no. 4, pp. 239–250.\nShipe, W., Wolkenberg, S., and Linfsley, C., Accelerating lead development by microwave-enhanced medicinal chemistry, Drug Discov. Today Technol., 2005, vol. 2, no. 2, pp. 155–161.\nCollins, J. and Leadbeater, N., Microwave energy: A versatile tool for the biosciences, Org. Biomol. Chem., 2007, vol. 5, p. 1141.\nNüchten, M., Ondruschka, B., Bonrath, W., and Gum, A., Microwave assisted synthesis—A critical technology overview, Green Chem., 2004, vol. 6, no. 3, pp. 128–141.\nVanderah, T., Talking ceramics, Science, 2002, vol. 298, no. 5596, pp. 1182–1184.\nLi, Y., Lei, Y., Zhang, L., Peng, J., and Li, C., Microwave drying characteristics and kinetics of ilmenite, T. Nonfer. Met. Soc. China, 2011, vol. 21, pp. 202–207.\nRoussy, G., Zoulalian, A., Charreyre, M., and Thiebaut, J.M., How microwaves dehydrate zeolites, J. Chem. Phys., 1984, vol. 88, no. 23, pp. 5702–5708.\nSaito, Y., Kawahira, K., Yoshikawa, N., Todoroki, H., and Taniguchi, S., Dehydration behavior of goethite blended with graphite by microwave heating, ISIJ Int., 2011, vol. 51, no. 6, pp. 878–883.\nEymir, C. and Okur, H., Dehydration of ulexite by microwave heating, Thermochim. Acta, 2005, vol. 428, no. 1, pp. 125–129.\nKocakusak, S., Koroglu, H.J., and Tolun, R., Drying of wet boric acid by microwave heating, Chem. Eng. Process., 1998, vol. 37, no. 2, pp. 197–201.\nKocakusak, S., Koroglu, H.J., Gozmen, T., Savascı, O.T., and Tolun, R., Drying of wet borax pentahydrate by microwave heating, Ind. Eng. Chem. Res., 1996, vol. 35, no. 1, pp. 159–163.\nSenberber, F.T., Yildirim, M., Ozdogan, I.N., Kipcak, A.S., and Moroydor Derun, E., Dehydration behavior and kinetics of kurnakovite under microwave radiation, Turk. J. Chem., 2017, vol. 41, pp. 399–409.\nBircan, H. and Battal, O., Microwave drying of surface moisture of boric acid, AKU J. Sci. Eng., 2018, vol. 18, pp. 53–61.\nLewis, W.K., The rate of drying of solid materials, J. Ind. Eng. Chem., 1921, vol. 13, no. 5, pp. 427–432.\nAghlasho, M., Kianmehr, M.H., Khani, S., and Ghasemi, M., Mathematical modeling of carrot thin-layer drying using new model, Int. Agrophys., 2009, vol. 23, no. 4, pp. 313–317.\nWang, C.Y. and Singh, R.P., A Single Layer Drying Equation for Rough Rice, St. Joseph, MI: Am. Soc. Agric. Eng., 1978.\nPage, G.E., Factors influencing the maximum rates of air drying of shelled corn in thin layer, Master’s Thesis, Lafayette, IN: Purdue Univ., 1949.\nSharaf-Elden, Y.I., Blaisdell, J.L., and Hamdy, M.Y., A model for ear corn drying, Trans. ASAE, 1980, vol. 23, no. 5, pp. 1261–1265.\nWesterman, P.W., White, G.M., and Ross, I.J., Relative humidity effect on the high temperature drying of shelled corn, Trans. ASAE, 1973, vol. 16, no. 6, pp. 1136–1139.\nCorzo, O., Bracho, N., Pereira, A., and Vasquez, A., Weibull distribution for modeling air drying of coroba slices, LWT – Food Sci. Technol., 2008, vol. 41, no. 10, pp. 2023–2328.\nTogrul, I.T. and Pehlivan, D., Modelling of drying kinetics of single apricot, J. Food Eng., 2003, vol. 58, no. 1, pp. 23–32.\nMidilli, A., Kucuk, H., and Yapar, Z., A new model for single-layer drying, Dry Technol., 2007, vol. 20, no. 7, pp. 1503–1513.\nJena, S. and Das, H., Modeling for vacuum drying characteristics of coconut presscake, J. Food Eng., 2007, vol. 79, no. 1, pp. 92–99.\nAlibas, I., Microwave drying of grapevine (Vitis vinifera L.) leaves and determination of some quality parameters, J. Agric. Sci., 2012, vol. 18, no. 1, pp. 43–53.\nDoymaz, I., Kipcak, A.S., and Piskin, S., Microwave drying of green bean slices: Drying kinetics and physical quality, Czech J. Food Sci., 2015, vol. 33, pp. 367–375.",{"EN":202},"In the present study, borax (Na2B4O7·10H2O) was dehydrated using microwave radiation and the dehydration rate curves were calculated. The kinetic parameters and mathematical constants of several drying models were calculated from the dehydration curve data. The best model was selected using the statistical analyses of R2, χ2, and root mean square error. From the best model, the kinetic parameters of the activation energy of dehydration were obtained. The powder X-ray diffraction (XRD) technique was applied to characterize the dehydrated compounds. From the results, borax was dehydrated in 18, 11, 6, and 5 min at 180, 360, 600, and 800 W, respectively. XRD analyses showed that borax was in an amorphous phase after microwave dehydration. The models of Midilli et al., and Page best fitted to dehydration curve data and from these models the activation energy was estimated as 7.6108 and 7.3294 kW g–1.",{"EN":204},"Microwave Dehydration of Borax: Characterization, Dehydration Kinetics, and Modelling",{"VOID":206},"10.1134\u002FS1087659622030087","PUBLICATION","VERIFIED","Auto Verify","https:\u002F\u002Flink.springer.com\u002F10.1134\u002FS1087659622030087",[212,228,243],{"id":213,"sortIndex":184,"researcher":20,"roles":214,"affiliations":216,"properties":225},"fc28dc72-86a9-4f3a-a283-d4592290d423",[215],"AUTHOR",[217],{"id":20,"sortIndex":21,"affiliation":218,"properties":20},{"id":219,"createTime":220,"updateTime":220,"relativeEntities":221,"slug":20,"properties":222,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"21e51dcf-9668-4db7-8608-7e301c5689e0","2023-12-14T05:48:25.436+00:00",[],{"title":223},{"VI":224},"Chemical Engineering 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G.T., Semenov, A.D., Smirnov, A.N., Shashkin, V.S., and Chmel', A.E., A Study on the Fractal Structure of Cracks in Vitreous SiO2 by Vibrational Spectroscopic Technique, Fiz. Khim. Stekla, 1999, vol. 25, no. 4, pp. 484-494 [Glass Phys. Chem. (Engl. transl.), 1999, vol. 25, no. 4, pp. 367-374].\nAlexander, S. and Orbach, R., Density of States on Fractals: “Fracton, ” J. Phys. Lett., 1982, vol. 43, no. 17, pp. L625-L631.\nRammal, R. and Toulouse, G., Random Walks on Fractal Structures and Percolation Clusters, J. Phys. Lett., 1983, vol. 44, no. 1, pp. L13-L17.\nBoukenter, A., Champagnon, B., Duval, E., and Rousset, J.L., Low-Frequency Raman Scattering from Disordered or Heterogeneous Materials, Philos. Mag. B, 1989, vol. 59, no. 1, pp. 125-131.\nAlexander, S., Vibrations of Fractals and Scattering of Light from Aerogels, Phys. Rev. B: Condens. Matter, 1989, vol. 40, no. 11, pp. 7953-7965.\nIvanova, O.A., Petrovskii, G.T., Semenov, A.D., Smirnov, A.N., Ter-Nersesyants, V.E., Shashkin, V.S., and Chmel', A.E., The Structure of Sol-Gel Silica Subjected to Vitrification under Pressure, Steklo Keram., 1998, no. 4, pp. 3-6.\nDahmouche, K., Boukenter, A., Bovier, C., Dumas, J., Duval, E., and Serughetti, J., Raman Study of Gel-Glass Transformation in Base-Catalyzed Silica, J. Non-Cryst. Solids, 1992, vols. 147-148, no. 2, pp. 251-260.\nRousset, J.L., Duval, E., Boukenter, A., Champagnon, B., Monteil, A., and Serughetti, J., Gel-to-Glass Transformation of Silica, J. Non-Cryst. Solids, 1988, vol. 107, no. 1, pp. 27-34.\nMariotto, G., Montagna, M., Viliani, G., Campostrini, R., and Carturan, G., Low-Frequency Raman Scattering in Thermally Treated Silica Gels, J. Phys. C: Solid State Phys., 1988, vol. 21, pp. L797-L801.",{"EN":304},"",{"EN":306},"The vibrational properties of fractal nanocracks in vitreous SiO2samples prepared by vacuum pressure-assisted sintering are investigated by low-frequency Raman scattering spectroscopy. In the Raman spectrum, nanosized discontinuities with a fractal geometry manifest themselves in a specific frequency dependence of the scattering intensity: a monotonic decrease in the intensity according to the law of light scattering by acoustic vibrations localized on fractals is observed instead of the boson peak. The frequency dependence of the low-frequency Raman scattering intensity is analyzed for samples of different origins. A “smoothing” of the nanocrack profile with a decrease in the amount of bound water in the material is revealed.",{"EN":308},"Effect of Bound Water on the Fractal Geometry of Nanosized Cracks in Glasses Prepared by Vacuum Pressure-Assisted Sintering",{"VOID":310},"10.1023\u002FA:1012408317613","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1023\u002FA:1012408317613",[313,329,346,358,370],{"id":314,"sortIndex":184,"researcher":20,"roles":315,"affiliations":316,"properties":326},"2d0c5217-a00e-4ef4-8350-ed0ecea62117",[215],[317],{"id":20,"sortIndex":21,"affiliation":318,"properties":20},{"id":319,"createTime":320,"updateTime":320,"relativeEntities":321,"slug":322,"properties":323,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"754656ca-3615-4aec-a8b2-4f76654d3256","2023-11-29T09:36:59.531+00:00",[],"Vavilov-State-Optical-Institute-All-Russian-Research-Center-St-Petersburg-Russia",{"title":324},{"VI":325},"Vavilov State Optical Institute, All-Russian Research Center, St. Petersburg, Russia",{"title":327},{"VI":328},"G. T. Petrovskii",{"id":330,"sortIndex":21,"researcher":20,"roles":331,"affiliations":332,"properties":343},"206b74d7-5559-4628-8124-2f6210f3f562",[215],[333],{"id":20,"sortIndex":21,"affiliation":334,"properties":20},{"id":335,"createTime":336,"updateTime":337,"relativeEntities":338,"slug":339,"properties":340,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"161b60e0-f3be-4593-a59f-59664cb59e82","2024-01-15T15:42:33.692+00:00","2024-10-11T05:49:19.060+00:00",[],"Ioffe-Physicotechnical-Institute-Russian-Academy-of-Sciences-St-Petersburg-Russia",{"title":341},{"VI":342},"Ioffe Physicotechnical Institute, Russian Academy of Sciences, St. Petersburg, Russia",{"title":344},{"VI":345},"A. E. Chmel'",{"id":347,"sortIndex":245,"researcher":20,"roles":348,"affiliations":349,"properties":355},"0f0817be-5b5b-485d-8d65-593abbb1255d",[215],[350],{"id":20,"sortIndex":21,"affiliation":351,"properties":20},{"id":319,"createTime":320,"updateTime":320,"relativeEntities":352,"slug":322,"properties":353,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":354},{"VI":325},{"title":356},{"VI":357},"A. D. Semenov",{"id":359,"sortIndex":165,"researcher":20,"roles":360,"affiliations":361,"properties":367},"7c758782-cee2-48dc-9647-81ffc45bbb6a",[215],[362],{"id":20,"sortIndex":21,"affiliation":363,"properties":20},{"id":319,"createTime":320,"updateTime":320,"relativeEntities":364,"slug":322,"properties":365,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":366},{"VI":325},{"title":368},{"VI":369},"V. 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Phys.: Condens. Matter, 2006, vol. 18, pp. 7709–7716.\nMedvedev, A.V., Pevtsov, A.B., Grudinkin, S.A., Feoktistov, N.A., Sakharov, V.A., Serenkov, I.T., and Golubev, V.G., Emitting a-SiOx(Er) Films and a-SiOx(Er)\u002Fa-Si: H Microcavities Doped with Er by Remote Magnetron Sputtering Technique, Nanotecnology, 2008, vol. 19, no. 31, art. 315201.\nUndalov, Yu.K., Terukov, E.K., Gusev, O.B., Lebedev, V.M., and Trapeznikova, I.N., Effect of Electric Field in the Course of Obtaining a-SiOx: H(Er, O) Films by DC Magnetron Sputtering on Their Composition and Photoluminescence Intensity of Erbium Ions, Fiz. Tekh. Poluprovodn. (St. Petersburg), 2008, vol. 42, no. 11, pp. 1357–1362 [Semiconductors (Engl. transl.), 2008, vol. 42, no. 11, pp. 1327–1334].\nDyakov, S.A., Zhigunov, D.M., and Timoshenko, V.Yu., Specific Features of Erbium Ion Photoluminescence in Structures with Amorphous and Crystalline Silicon Nanoclusters in Silica Matrix, Fiz. Tekh. Poluprovodn. (St. Petersburg), 2010, vol. 44, no. 4, pp. 486–490 [Semiconductors (Engl. transl.), 2010, vol. 44, no. 4, pp. 467–471].",{"EN":423},"It has been shown that [Er-O] clusters play the role of photoluminescence centers in films of amorphous hydrogenated silicon a-Si(H) doped with oxygen and erbium. The local symmetry of Er3+ ions in clusters is the same as that in Er2O3. A decrease in the cluster size and an increase in the particle density result in the enhancement of the photoluminescence intensity of a-Si(H): Er at a wavelength of 1.54 μm.",{"EN":425},"Identification of photoluminescence centers in oxygen- and erbium-doped a-Si(H) films",{"VOID":427},"10.1134\u002FS1087659611040031","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS1087659611040031",[430,445,461,473,485,497],{"id":431,"sortIndex":21,"researcher":20,"roles":432,"affiliations":433,"properties":442},"cc3cc009-c25d-4e5c-9d1d-8de95918b720",[215],[434],{"id":20,"sortIndex":21,"affiliation":435,"properties":20},{"id":436,"createTime":437,"updateTime":437,"relativeEntities":438,"slug":20,"properties":439,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"b0f62cb9-92e5-47ca-9650-63b7deaee964","2023-12-29T10:26:32.663+00:00",[],{"title":440},{"VI":441},"Herzen Russian State Pedagogical University, St. Petersburg, Russia",{"title":443},{"VI":444},"G. A. Bordovskii",{"id":446,"sortIndex":447,"researcher":20,"roles":448,"affiliations":449,"properties":458},"a2f84d39-5f16-479f-9adc-d3a554845ff4",5,[215],[450],{"id":20,"sortIndex":21,"affiliation":451,"properties":20},{"id":452,"createTime":453,"updateTime":453,"relativeEntities":454,"slug":20,"properties":455,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"159ef83e-b65c-4aee-91f0-76f3835b9ee6","2024-01-05T11:14:40.982+00:00",[],{"title":456},{"VI":457},"Ioffe Physical-Technical Institute, Russian Academy of Sciences, St. Petersburg, Russia",{"title":459},{"VI":460},"E. I. Terukov",{"id":462,"sortIndex":165,"researcher":20,"roles":463,"affiliations":464,"properties":470},"a8c6f6b0-83cd-4cb4-bb4a-8aff8a5aadb2",[215],[465],{"id":20,"sortIndex":21,"affiliation":466,"properties":20},{"id":436,"createTime":437,"updateTime":437,"relativeEntities":467,"slug":20,"properties":468,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":469},{"VI":441},{"title":471},{"VI":472},"P. P. Seregin",{"id":474,"sortIndex":245,"researcher":20,"roles":475,"affiliations":476,"properties":482},"c03ead37-d4b2-49ff-aebd-e30bfc9f6eee",[215],[477],{"id":20,"sortIndex":21,"affiliation":478,"properties":20},{"id":436,"createTime":437,"updateTime":437,"relativeEntities":479,"slug":20,"properties":480,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":481},{"VI":441},{"title":483},{"VI":484},"A. 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Dashina",{"id":498,"sortIndex":126,"researcher":20,"roles":499,"affiliations":500,"properties":506},"19c51679-fb9c-4cc2-920f-0d1fd0e7edcb",[215],[501],{"id":20,"sortIndex":21,"affiliation":502,"properties":20},{"id":436,"createTime":437,"updateTime":437,"relativeEntities":503,"slug":20,"properties":504,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":505},{"VI":441},{"title":507},{"VI":508},"A. V. Marchenko",{"url":428,"publisher":510,"properties":538},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":511,"slug":10,"properties":512,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":516,"manageAffiliations":517,"indexDatabases":518,"url":20,"thumbnailPath":20,"statistic":533,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":513,"eissn":514,"title":515},{"VOID":13},{"VOID":15},{"EN":17},[],[],[519,526],{"id":92,"indexDatabase":520,"url":105,"indexYears":106,"academicFieldIds":525,"indexDatabaseRanking":111},{"id":94,"createTime":95,"updateTime":96,"relativeEntities":521,"label":522,"description":523,"key":102,"publicationTags":524,"standard":20},[],{"EN":99,"VI":99},{"EN":99,"VI":101},[104],[108,109,110],{"id":73,"indexDatabase":527,"url":88,"indexYears":20,"academicFieldIds":532,"indexDatabaseRanking":20},{"id":75,"createTime":76,"updateTime":77,"relativeEntities":528,"label":529,"description":530,"key":84,"publicationTags":531,"standard":20},[],{"EN":80,"VI":80},{"VI":82,"EN":83},[86,87],[90],{"impactFactor":21,"impactFactorByYear":534,"i10Index":125,"i10IndexLast5Year":126,"totalPublication":127,"totalPublicationByYear":535,"totalCitation":149,"totalCitationByYear":536,"totalCitationPerPublication":166,"totalCitationPerPublicationByYear":537,"hindexLast5Year":187,"hindex":187},{"2012":114,"2013":115,"2014":116,"2015":117,"2016":118,"2017":119,"2018":120,"2019":121,"2020":122,"2021":123,"2022":118,"2023":124},{"2000":129,"2001":130,"2002":131,"2003":129,"2004":132,"2005":133,"2006":134,"2007":135,"2008":136,"2009":137,"2010":138,"2011":139,"2012":130,"2013":140,"2014":138,"2015":141,"2016":142,"2017":143,"2018":142,"2019":144,"2020":145,"2021":133,"2022":146,"2023":147,"2024":148},{"2000":131,"2003":151,"2004":152,"2005":153,"2006":145,"2007":154,"2008":155,"2009":146,"2010":156,"2011":157,"2012":158,"2013":159,"2014":160,"2015":161,"2016":131,"2017":142,"2018":162,"2019":144,"2020":163,"2021":164,"2022":165,"2023":148},{"2000":168,"2003":169,"2004":170,"2005":171,"2006":172,"2007":173,"2008":173,"2009":174,"2010":175,"2011":176,"2012":177,"2013":178,"2014":179,"2015":180,"2016":181,"2017":182,"2018":183,"2019":184,"2020":185,"2021":186,"2022":114,"2023":119},{"volume":539,"pages":541},{"VOID":540},"37",{"VOID":542},"406-410","2011-08-24",2011,{"id":546,"createTime":547,"updateTime":548,"relativeEntities":549,"slug":550,"properties":551,"entityType":207,"verifyStatus":208,"verifyTime":548,"verifyNote":209,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":560,"fullTextUrl":20,"authors":561,"publicationType":256,"publisherRelationship":591,"citationCount":20,"citationInfo":20,"publishDate":625,"publishYear":626,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":20,"openAccess":20,"references":20,"isForceReanalyzing":293},"b2accf90-6271-4bf0-a104-0537108242d9","2024-01-29T15:59:23.381+00:00","2025-01-23T23:58:43.775+00:00",[],"Synthesis-and-Research-of-the-Properties-of-Lanthanum-and-Neodymium-Indates",{"references":552,"abstract":554,"title":556,"doi":558},{"VOID":553},"Arsen'ev, P.A., Kovba, L.M., and Bagdasarov, Kh.S., Soedineniya redkozemel’nykh elementov. Sistemy s oksidami I–III grupp (Compounds of Rare Earth Elements. Systems with Oxides of Groups I–III), Moscow: Nauka, 1983.\nBoulon, G., Fifty years of advance in solid-state laser materials, Opt. Mater., 2012, vol. 34, no. 3, pp. 499–512.\nBünzli, J.C.G., Comby, S., Chauvin, A.S., and Vandevyver, C.D.B., New opportunities for lanthanide luminescence, J. Rare Earths, 2007, vol. 25, no. 3, pp. 257–274.\nLiu, X. and Lin, J., Synthesis and luminescent properties of LaInO3: Re3+ (Re = Sm, Pr and Tb) nanocrystalline phosphors for field emission displays, Solid State Sci., 2009, vol. 11, no. 12, pp. 2030–2036.\nYukhno, E.K. and Bashkirov, L.A., Physical and chemical properties of solid solutions based on lanthanum indate doped by Pr3+, Cr3+, Mn3+ ions, Tr. BGTU, Khim. Tekhnol. Neorg. V-v., 2015, no. 3, pp. 102–107.\nKandidatova, I.N., Bashkirov, L.A., and Petrov, G.S., Thermal expansion, thermal analysis of solid solutions of indices Sm1-xLaxInO3, Fiz. Khim. Stekla, 2013, vol. 39, no. 1, pp. 147–152.\nGusev, A.I., Nanomaterialy, nanostruktury, nanotekhnologii (Nanomaterials, Nanostructures, Nanotechnologies), 2nd ed., Moscow: Nauka-Fizmatlit, 2007.\nFedorov, P.I., Mokhosoev, M.V., and Alekseev, F.P., Khimiya galliya, indiya i talliya (Chemistry of Gallium, Indium and Thallium), Novosibirsk: Nauka, 1977.\nMorozova, L.V., Tikhonov, P.A., and Glushkova, V.B., The processes of evaporation of indium oxide from ceramic compositions in the ZrO2–In2O3 system, Zh. Prikl. Khim., 1989, vol. 62, no. 4, pp. 941–942.\nMorozova, L.V., Kalinina, M.V., Arsent’ev, M.Yu., and Shilova, M.V., Influence of cryochemical and ultrasonic processing on the texture and thermal decomposition of xerogels and properties of nanoceramics in the ZrO2–Y2O3–Al2O3 system, Inorg. Mater., 2017, vol. 53, no. 6, pp. 640–647.\nAl’myasheva, O.V., Fedorov, B.A., Smirnov, A.V., and Gusarov, V.V., Size, morphology and particle structure of zirconia nanopowder obtained under hydrothermal conditions, Nanosist.: Fiz., Khim.,Mat., 2010, vol. 1, no. 1, pp. 26–36.\nGusev, A.I. and Kurlov, A.S., Certification of nanocrystalline materials by particle (grain) size, Metallofiz. Noveishie Tekhnol., 2008, vol. 30, no. 5, pp. 679–694.\nKhasanov, O.L., Dvilis, E.S., Polisadova, V.V., and Zykova, A.P., Effekty moshchnogo ul’trazvukovogo vozdeistviya na strukturu i svoistva nanomaterialov, Uchebnoe posobie (Effects of Powerful Ultrasonic Effects on the Structure and Properties of Nanomaterials, The School-Book), Tomsk: Tomsk. Politekh. Univ., 2008.\nOreshkin, P.T., Fizika poluprovodnikov i dielektrikov (Physics of Semiconductors and Insulators), Moscow: Vysshaya shkola, 1977.\nMorozova, L.V., Kalinina, M.V., Tikhonov, P.A., Drozdova, I.A., and Shilova, O.A., Electroconducting ceramics based on In2O3, CdO, and LaCrO3, Glass Phys. Chem., 2017, vol. 43, no. 3, p. 276.",{"EN":555},"Single-phase nanocrystalline (18–20 nm) lanthanum indate powder (LaInO3) and neodymium indate powder (NdInO3) with the structure of orthorhombic perovskite are synthesized by the coprecipitation of hydroxides with the simultaneous ultrasonic treatment of the precipitation and subsequent firing of the powder-precursors at a temperature of 700°C. Ceramic samples with an open porosity of 4 to 5% are obtained during the sintering of the LaInO3 and NdInO3 powders at 1300°C (2 h). The range of changes in the electrical resistance of the sintered ceramics in the temperature range 400–1000°C is established. It is revealed that the heat treatment (1000°C) of indates of lanthanum and neodymium in argon reduces the electrical resistance by 2–3 orders of magnitude compared to their heat treatment in air.",{"EN":557},"Synthesis and Research of the Properties of Lanthanum and Neodymium Indates",{"VOID":559},"10.1134\u002FS1087659620050053","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS1087659620050053",[562,579],{"id":563,"sortIndex":184,"researcher":20,"roles":564,"affiliations":565,"properties":576},"37530e96-11d1-41bc-93d3-216caf44f903",[215],[566],{"id":20,"sortIndex":21,"affiliation":567,"properties":20},{"id":568,"createTime":569,"updateTime":570,"relativeEntities":571,"slug":572,"properties":573,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"3837cbb1-9b41-4572-8083-f9df65084502","2024-01-26T05:13:13.414+00:00","2024-10-12T14:16:17.995+00:00",[],"Grebenshchikov-Institute-of-Silicate-Chemistry-Russian-Academy-of-Sciences-St-Petersburg-Russia",{"title":574},{"VI":575},"Grebenshchikov Institute of Silicate Chemistry, Russian Academy of Sciences, St. Petersburg, Russia",{"title":577},{"VI":578},"I. A. Drozdova",{"id":580,"sortIndex":21,"researcher":20,"roles":581,"affiliations":582,"properties":588},"4d2bc72a-f0bf-461e-9049-50f9589f4114",[215],[583],{"id":20,"sortIndex":21,"affiliation":584,"properties":20},{"id":568,"createTime":569,"updateTime":570,"relativeEntities":585,"slug":572,"properties":586,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":587},{"VI":575},{"title":589},{"VI":590},"L. V. Morozova",{"url":560,"publisher":592,"properties":620},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":593,"slug":10,"properties":594,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":598,"manageAffiliations":599,"indexDatabases":600,"url":20,"thumbnailPath":20,"statistic":615,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":595,"eissn":596,"title":597},{"VOID":13},{"VOID":15},{"EN":17},[],[],[601,608],{"id":92,"indexDatabase":602,"url":105,"indexYears":106,"academicFieldIds":607,"indexDatabaseRanking":111},{"id":94,"createTime":95,"updateTime":96,"relativeEntities":603,"label":604,"description":605,"key":102,"publicationTags":606,"standard":20},[],{"EN":99,"VI":99},{"EN":99,"VI":101},[104],[108,109,110],{"id":73,"indexDatabase":609,"url":88,"indexYears":20,"academicFieldIds":614,"indexDatabaseRanking":20},{"id":75,"createTime":76,"updateTime":77,"relativeEntities":610,"label":611,"description":612,"key":84,"publicationTags":613,"standard":20},[],{"EN":80,"VI":80},{"VI":82,"EN":83},[86,87],[90],{"impactFactor":21,"impactFactorByYear":616,"i10Index":125,"i10IndexLast5Year":126,"totalPublication":127,"totalPublicationByYear":617,"totalCitation":149,"totalCitationByYear":618,"totalCitationPerPublication":166,"totalCitationPerPublicationByYear":619,"hindexLast5Year":187,"hindex":187},{"2012":114,"2013":115,"2014":116,"2015":117,"2016":118,"2017":119,"2018":120,"2019":121,"2020":122,"2021":123,"2022":118,"2023":124},{"2000":129,"2001":130,"2002":131,"2003":129,"2004":132,"2005":133,"2006":134,"2007":135,"2008":136,"2009":137,"2010":138,"2011":139,"2012":130,"2013":140,"2014":138,"2015":141,"2016":142,"2017":143,"2018":142,"2019":144,"2020":145,"2021":133,"2022":146,"2023":147,"2024":148},{"2000":131,"2003":151,"2004":152,"2005":153,"2006":145,"2007":154,"2008":155,"2009":146,"2010":156,"2011":157,"2012":158,"2013":159,"2014":160,"2015":161,"2016":131,"2017":142,"2018":162,"2019":144,"2020":163,"2021":164,"2022":165,"2023":148},{"2000":168,"2003":169,"2004":170,"2005":171,"2006":172,"2007":173,"2008":173,"2009":174,"2010":175,"2011":176,"2012":177,"2013":178,"2014":179,"2015":180,"2016":181,"2017":182,"2018":183,"2019":184,"2020":185,"2021":186,"2022":114,"2023":119},{"volume":621,"pages":623},{"VOID":622},"46",{"VOID":624},"434-439","2020-10-17",2020,{"id":628,"createTime":629,"updateTime":630,"relativeEntities":631,"slug":632,"properties":633,"entityType":207,"verifyStatus":208,"verifyTime":630,"verifyNote":209,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":642,"fullTextUrl":20,"authors":643,"publicationType":256,"publisherRelationship":686,"citationCount":20,"citationInfo":20,"publishDate":720,"publishYear":721,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":20,"openAccess":20,"references":20,"isForceReanalyzing":293},"6587ab16-8478-4197-83ec-d809e9ed0ede","2024-01-11T09:50:39.696+00:00","2024-12-06T23:58:21.455+00:00",[],"Effects-of-Different-Quenching-Rate-on-the-Various-Properties-of-Fe-Si-B-Amorphous-Alloy-Prepared-by-Melt-Spinning-Method",{"references":634,"abstract":636,"title":638,"doi":640},{"VOID":635},"Nu, N.T.N. and Luong, T.V., Potential application of metallic glasses, Int. J. Sci. Environ. Technol., 2016, vol. 5, pp. 2209–2216.\nHuang, L., Wang, C.Z., Hao, S.G., Kramer, M.J., and Ho, K.M., Short-and medium-range order in amorphous Zr2Ni metallic alloy, Phys. Rev. B, 2010, vol. 81, no. 9, p. 094118.\nHsu, C.H., Chang, Y.H., Lee, C.Y., Yao, C.S., He, Y.L., Chu, H.L., Chang, C.W., and Chan, W.S., Effects of magnetomechanical vibrations and bending stresses on three-phasethree-leg transformers with amorphous cores, J. Appl. Phys., 2012, vol. 111, no. 7, p. 07E730.\nWu, C.Y., Lin, K.J., Cheng, Y.T., Huang, C.K., Pan, C.N., Li, W.C., Chiang, L.K., Yeh, C.N., and Fong, S.C., Development of amorphous ribbon manufacturing technology, China Steel Tech. Rep., 2014, vol. 27, pp. 28–42.\nYe, S., Li, X., Bian, X., Wang, W., Yin, L., and An, B., Remelting treatment and heredity phenomenon in the formation of Fe78Si9B13 amorphous alloy, Alloys Compd., 2013, vol. 562, pp. 143–149.\nCadogan, J.M., Campbell, S.J., Jing, J., Foley, C.P., Kater, P., and Mai, Y.W., Annealing embrittlement of Fe78Si9B13, Hyperfine Interact., 2014, vol. 226, pp. 7–14.\nZeeshan, M.A., Ojos, D.E., Hartmann, P. Guerrero, C., Nogués, M., Suriñach, J.S., Baró, M.D., Nelson, B.J., Pané, S., Pellicer, E., and Sort, J., Electrochemically synthesized amorphous and crystalline nanowires: Dissimilar nanomechanical behavior in comparison with homologous flat films, Nanoscale, 2016, vol. 8, no. 3, pp. 1344–1351.\nBhatnagar, A.K., Mössbauer studies of iron-rich metallic glasses, Hyperfine Interact., 1985, vol. 25, pp. 637–666.\nLi, F.C., Liu, T., Zhang, J.Y., Shuang, S., Wang, Q., Wang, A.D., Wang, J.G., and Yang, Y., Amorphouse-nanocrystalline alloys: Fabrication, properties, and applications, Mater. Today Adv., 2019, vol. 4, p. 100027.\nGavrila, H. and Ionita, V., Crystalline and amorphous soft magnetic materials and their applications—status of art and challenges, J. Optoelectron. Adv. Mater., 2002, vol. 4, no. 21, pp. 173–192.\nSoltani, M.L., Touares, A., Aboki, T.A.M., and Gasser, J., Thermal effect on structural and magnetic properties of Fe78B13Si9 annealed amorphous ribbons, EPJ Web Conf., 2017, vol. 151, p. 07002.\nMohammadiparsa, N., Habibi, S., and Dekan, J., Mössbauer study and magnetic properties of Fe–Si–B–Cu amorphous systems with minor substitution of carbon, J. Radioanal. Nucl. Chem., 2019, vol. 322, pp. 691–697.\nXu.J., Yang., Y., Li, W., Xie, Zh., and Chen, X., Effect of Si addition on crystallization behavior, thermal ability and magnetic properties in high Fe content Fe–Si–B–P–Cu–C alloy, Mater. Res. Bull., 2018, vol. 97, pp. 452–456.\nAzuma, D., Ito, N., and Ohta, M., Recent progress in Fe-based amorphous and nanocrystalline soft magnetic materials, J. Magn. Magn. Mater., 2020, vol. 501, p. 166373.\nHufnagel, T.C., Schuh, C.A., and Falk, M.L., Deformation of metallic glasses: Recent developments in theory, simulations, and experiments, Acta Mater., 2016, vol. 109, pp. 375–393.\nGu, X.J., Poon, S.J., Shiflet, G.J., and Widom, M., Ductility improvement of amorphous steels: Roles of shear modulus and electronic structure, Acta Mater., 2008, vol. 56, no. 1, pp. 88–94.\nWang, A., Zhao, C., He, A., Men, H., Chang, C., and Wang, X., Composition design of high B s Fe-based amorphous alloys with good amorphous-forming ability, J. Alloys Compd., 2016, vol. 656, pp. 729–734.\nMohanty, U.K. and Sarangi, H., Solidification of metals and alloys, in Casting Processes and Modelling of Metallic Materials, London, UK: IntechOpen, 2020.\nMeng, L.L., Li, X.Y., Pang, J., Wang, L., et al., Casting atmosphere effects on the precipitates, magnetism, and corrosion resistance of Fe78Si9B13 glassy alloys, Metal. Mater. Trans. A, 2013, vol. 44, pp. 5122–5133.\nSarafrazian, S., Ghasemi, A., and Tavoosi, M., Magnetic characterization of nanocrystalline Fe14Nd2B1 alloy during melt spinning and subsequent annealing, J. Magn. Magn. Mater., 2016, vol. 402, pp. 115–123.\nGui, H.M., Wei, G., Hui, W.Y., Min, L., and Hadimani, M.L., Electromagnetic wave absorbing properties and hyperfine interactions of Fe–Cu–Nb–Si–B nanocomposites, Chin. Phys. B, 2014, vol. 23, p. 083301.\nXu, M., Teng, X., and Geng, J., Effect of cooling rates on solidification and microstructure of rapidly solidified Mg57Zn37Y6 quasicrystal alloy, J. Mater. Res., 2015, vol. 30, no. 21, pp. 3324–3330.\nSohrabi, S., Arabi, H., Beitollahi, A., and Gholamipour, R., Planar flow casting of Fe71Si13.5B9Nb3Cu1Al1.5Ge1 ribbons, J. Mater. Eng. Perform., 2013, vol. 22, p. 2185.\nShahri, F. and Beitollahi, A., Effect of super-heat treatment and quenching wheel speed on the structure and magnetic properties of Fe–Si–Nb–Cu–B–Al–Ge melt spun ribbons, J. Non-Cryst. Solids, 2008, vol. 354, no. 14, pp. 1487–1493.\nMurugaiyan, P., Mitra, A., Bijalwan, P., Roy, R.K., Dutta, M., Banerjee, A., and Panda, A.K., Glass forming ability and soft-magnetic properties of Fe-based glassy alloys developed using high phosphorous pig iron, J. Alloys Compd., 2020, vol. 821, p. 153255.\nJiang, B., Wang, J., Xu, L., Qian, Ch., Liu, T., Dai, J., and Hou, X., Tunable mechanical properties of Ti–Zr–Ni–Cr–V amorphous ribbons via different melt spinning speeds during rapid solidification process, Materials, 2018, vol. 11, no. 6, p. 947.\nBabu, D.A., Majumdar, B., Sarkar, R., Akhtar, D., and Chandrasekaran, V., Effect of processing parameters on the microstructure and soft magnetic properties of Fe88Zr7B4Cu1 alloy ribbons, J. Phys. D, 2008, vol. 41, p. 195002.\nBabu, D.A., Srivastava, A.P., Majumdar, B., Srivastava, D., and Akhtar, D., Influence of melt-spinning parameters on the structure and soft magnetic properties of (Fe0.65Co0.35)88Zr7B4Cu1 alloy, Metall. Mater. Trans. A, 2010, vol. 41, pp. 1313–1320.\nAllia, P., Tiberto, P., Barico, M., Knobel, M., and Vinai, F., Nanostructured materials for soft magnetic applications produced by fast dc Joule heating, IEEE Trans. Magn., 1994, vol. 30, pp. 4797–4799.\nKnobel, M., Sinnecker, J.P., and Saenger, J.F., and Turtelli, R.S., Effect of as-cast topological disorder on the magnetic properties of nanocrystalline Fe73.5Cu1Nb3Si13.5B9, Philos. Mag. B, 1993, vol. 68, pp. 861–867.\nSrinivas, M., Majumdar, B., Akhtar, D., Srivastava, A.P., and Srivastava, D., Influence of wheel speed during planar flow melt spinning on the microstructure and soft magnetic properties of Fe68.5Si18.5B9Nb3Cu1 ribbons, J. Mater. Sci., 2011, vol. 46, pp. 616–622.\nBrand, R.A., User’s Guide of the Normos Mössbauer Fitting Program, Starnberg: Wissenschaftlich Elektronik, 1992.\nHosseini-Nasb, F., Beitollahi, A., and Moravvej-Farshi, M.K., The effect of quenching rate on structure and soft magnetic properties of high B s Fe-based nanocrystalline alloys, Adv. Mater. Res., 2014, vol. 829, pp. 78–81.\nDel Muro, M.G., Zquiak, R., and Batlle, X., The effect of quenching rate on the nanocrystallization of amorphous Fe–Cu–Nb–Si–B, J. Magn. Magn. Mater., 1997, vol. 171, no. 3, pp. 315–319.\nGonser, U., From a strange effect to Mössbauer spectroscopy, in Mössbauer Spectroscopy, Gonser, U., Ed., Berlin: Springer, 1975, pp. 1–51.\nPanda, A.K., Chattoraj, I., Basu, S., and Mitra, A., Influence of quench rates on the properties of rapidly solidified FeNbCuSiB alloy, Bull. Mater. Sci., 2002, vol. 25, pp. 573–575.\nGhannami, M.E., Kulik, T., Hernando, A., Barquin, L.F., Sal, J.C.G., Gorria, P., and Barandiaran, J.M., Influence of the preparation conditions on the magnetic properties and electrical resistivity of Fe73.5Nb3Cu1Si13.5B9 nanocrystalline alloys, J. Magn. Magn. Mater., 1994, vol. 133, pp. 314–316.\nSun, X., Cabral-Prieto, A., Jose Yacaman, M., Reyes-Gasga, J., Hernandez-Reyes, R., Morales, A., and Sun, W., Nanocrystallization behavior and magnetic properties of amorphous Fe78Si9B13 ribbons, Phys. B (Amsterdam), 2000, vol. 291, pp. 173–179.",{"EN":637},"In this work an attempt is made to study the impact of the quenching rate upon structure, hyperfine interactions, magnetic and mechanical properties of Fe78Si9B13 metallic glasses. Other involved parameters in melt spinning method were kept invariant. Analytical techniques comprising X-ray diffraction, transmission Mössbauer spectrometry, vibration sample magnetometer, Vickers microhardness and differential scanning calorimetry were employed. Minor effect of quenching rate upon the macroscopic magnetic properties was detected. It was shown that notable changes in the local atomic arrangement, structure, and mechanical properties were unveiled, dominantly by represent the crystallization at the lowest quenching rate.",{"EN":639},"Effects of Different Quenching Rate on the Various Properties of Fe–Si–B Amorphous Alloy Prepared by Melt Spinning Method",{"VOID":641},"10.1134\u002FS1087659622600752","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS1087659622600752",[644,659,674],{"id":645,"sortIndex":21,"researcher":20,"roles":646,"affiliations":647,"properties":656},"473314ff-2610-407d-81c9-4095da78508e",[215],[648],{"id":20,"sortIndex":21,"affiliation":649,"properties":20},{"id":650,"createTime":651,"updateTime":651,"relativeEntities":652,"slug":20,"properties":653,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"f5d9e48d-4fe8-4fe6-b458-49bb579dcafa","2023-12-11T12:34:22.960+00:00",[],{"title":654},{"VI":655},"Department of Chemistry, Aarhus University, Aarhus, Denmark",{"title":657},{"VI":658},"Narges Amini",{"id":660,"sortIndex":184,"researcher":20,"roles":661,"affiliations":662,"properties":671},"123cfa1b-e98c-48d1-ba3a-a3409b51ab06",[215],[663],{"id":20,"sortIndex":21,"affiliation":664,"properties":20},{"id":665,"createTime":666,"updateTime":666,"relativeEntities":667,"slug":20,"properties":668,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"725061ca-79f0-42a7-803e-6b70c248a08c","2024-01-11T09:50:39.732+00:00",[],{"title":669},{"VI":670},"Department of Physics, Bu-Ali Sine University, Hamadan, Iran",{"title":672},{"VI":673},"Safdar Habibi",{"id":675,"sortIndex":245,"researcher":20,"roles":676,"affiliations":677,"properties":683},"9ae65605-f0b8-460e-9f65-9b5e80299507",[215],[678],{"id":20,"sortIndex":21,"affiliation":679,"properties":20},{"id":665,"createTime":666,"updateTime":666,"relativeEntities":680,"slug":20,"properties":681,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":682},{"VI":670},{"title":684},{"VI":685},"Nahid 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M., Melnik, E., Stefan, R., Marasinghe, G.K., Ray, C.S., Kurkjian, C.R., and Day, D.E., Mechanical and structural properties of phosphate glasses, J. Non-Cryst. Solids, 2001, vol. 288, nos. 1–3, pp. 8–17.\nArbuzov, V.I., Andreeva, N.Z., Leko, N.A., Nikitina, S.I., Orlov, N.F., and Fedorov, Y.K., Optical, spectral, and radiation-shielding properties of high-lead phosphate glasses, Glass Phys. Chem., 2005, vol. 31, no. 5, pp. 583–590.\nBrow, R.K., Review: The structure of simple phosphate glasses, J. Non-Cryst. Solids, 2000, vols. 263–264, pp. 1–28.\nBitar, M., Knowles, J.C., Lewis, M.P., and Salih, V., Soluble phosphate glass fibres for repair of bone-ligament interface, J. Mater. Sci., 2005, vol. 16, no. 12, pp. 1131–1136.\nAlexander, S., Pittsburgh, P., Joseph Rothermel, J., Corning, N.Y., Kuan-Han Sun, and Wilkinsburg, P., Phosphate glass, US Patent no. 2518194, 1950.\nHood, H.P. and MacAvoy, T.C., High density, soft phosphate glass, method, and gamma radiation shielding window, US Patent no. 3149234, 1964.\nSales, B.C. and Boatner, L.A., Optical, structural and chemical characteristics of lead-indium phosphate and lead-scandium phosphate glasses, J. Am. Ceram. Soc., 1987, vol. 70, pp. 615–621.\nHine, G.J., The effective atomic numbers of materials for various gamma interactions, Phys. Rev., 1952, vol. 85, pp. 725–737.\nSingh, T., Kaur, P., and Singh, P.S., Variation of mass attenuation coefficient, effective atomic number and electron density with incident photon energy of some organic acids, Nucl. Sci. Eng., 2007, vol. 156, pp. 1–15.\nGerward, L., Guilbert, N., Jensen, K.B., and Levring, H., X-ray absorption in matter: reengineering XCOM, Rad. Phys. Chem., 2001, vol. 60, pp. 23–24.\nJackson, D.F. and Hawkes, D.J., X-ray attenuation coefficients of elements and mixtures, Phys. Rep., 1981, vol. 70, pp. 169–233.\nSingh, H., Singh, K., Gerward, L., Singh, K., Sahota, H.S., and Nathuram, R., ZnO–PbO–B2O3 glasses as gamma-ray shielding materials, Nucl. Instrum. Methods Phys. Res. B, 2003, vol. 207, pp. 257–262.\nSingh, K., Singh, H., Sharma, V., Nathuram, R., Khanna, A., Kumar, R., Bhatti, S.S., and Sahota, H.S., Gamma ray attenuation coefficients in bismuth borate glasses, Nucl. Instrum. Methods Phys. Res. B, 2002, vol. 194, pp. 1–6.\nSingh, T., Rajni Kaur, U., and Singh, P.S., Photon energy absorption parameters for some polymers, Ann. Nucl. Energy, 2010, vol. 37, pp. 422–427.\nSingh, K., Singh, H., Sharma, G., Gerward, L., Khanna, A., Kumar, R., Nathuram, R., and Sahota, H.S., Gamma-ray shielding properties of CaO–SrO–B2O3 glasses, Rad. Phys. Chem., 2005, vol. 72, pp. 225–228.\nManohara, S.R., Hanagodimath, S.M., and Gerward, L., Photon interaction and energy absorption in glass: A transparent gamma ray shield, J. Nucl. Mater., 2009, vol. 393, pp. 465–472.",{"EN":732},"Some photon interaction parameters such as mass attenuation coefficient, effective atomic number, half value layer, mean free path and electron density for 15ZnO–(17.5–x)Al2O3–xFe2O3–67.5P2O5 glass system (x = 0, 7.5, 12.5, 17.5) and 15ZnO–(25–x)Al2O3–xFe2O3–60P2O5 glass system (x = 0, 25) have been investigated in the photon energy range of 1 keV to 100 GeV. It has been observed that all the photon interaction parameters for the selected glass systems vary with the photon energy. 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Solid-State Lett., 2004, vol. 7, no. 10, pp. A299–A301.\nHassan, M.F., Zaiping, R.M.M., Guo., Chen., Z., and Liu., H., SnO2-NiO-C Nanocomposite As a High Capacity Anode Material for Lithium-Ion Batteries, J. Mater. Chem., 2010, vol. 20, no. 43, pp. 9707–9712.",{"EN":1281},"The SnO2-NiO nanocomposites with the specific surface area on the order of 100 m2\u002Fg and the particle size of both phases of less than 10 nm have been synthesized by the sol-gel method with the subsequent annealing in the temperature interval 200–1000°C. It has been shown that, with an increase in the annealing temperature to 900°C, the specific surface area of the nanocomposites increases. This effect has been explained by the increase in the porosity due to the destruction of the aggregates of primary amorphous particles. The electrical conductivity has been measured and the parameters of the surface defects have been determined.",{"EN":1283},"Synthesis of nanocomposite materials in the SnO2-NiO system",{"VOID":1285},"10.1134\u002FS1087659611060046","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS1087659611060046",[1288,1305,1317,1329],{"id":1289,"sortIndex":184,"researcher":20,"roles":1290,"affiliations":1291,"properties":1302},"268741f7-a59f-4a8a-9f38-5a8481f989aa",[215],[1292],{"id":20,"sortIndex":21,"affiliation":1293,"properties":20},{"id":1294,"createTime":1295,"updateTime":1296,"relativeEntities":1297,"slug":1298,"properties":1299,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"0afbd0a9-e36f-4b5b-8d77-605e1b511e77","2024-01-15T22:48:54.338+00:00","2025-06-11T23:52:33.605+00:00",[],"Novosibirsk-State-Technical-University-Novosibirsk-Russia",{"title":1300},{"VI":1301},"Novosibirsk State Technical University, Novosibirsk, Russia",{"title":1303},{"VI":1304},"A. 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Khim. Stekla, 2009, vol. 35, no. 1, pp. 1–12.\nShevchenko, V.Ya., Blatov, V.A., and Ilyushin, G.D., Structural chemistry of metal microclusters: Questions and answers, Glass Phys. Chem., 2009, vol. 35, pp. 1–12.\nPetrov, Yu.I., Klastery i malye chastitsy (Clusters and Small Particles), Moscow: Nauka, 1986.\nGolubeva, O.Yu., Ul’yanova, N.Yu., and Kurilenko, L.N., Synthesis and study of catalytic activity of zeolite Rho with varying content of silver nanoparticles, Fiz. Khim. Stekla, 2013, vol. 39, no. 6, pp. 913–919.\nGolubeva, O.Yu., Ul’yanova, N.Yu., and Kurilenko, L.N., Synthesis and study of catalytic activity of zeolite Rho with varying content of silver nanoparticles, Glass Phys. Chem., 2013, vol. 39, no. 6, pp. 649–653.\nSergeev, G.B., Nanokhimiya (Nanochemistry), Moscow: Moscow State University, 2003.\nGurin, V.S., Petranovskii, V.P., Hernandez, M.-A., Bogdanchikova, N.E., and Alexeenko, A.A., Silver and copper clusters and small particles stabilized within nanoporous silicate-based materials, Mater. Sci. Eng., A, 2005, vol. 391, pp. 71–76.\nShameli, K., Ahmad, M.B., Zargar, M., Yunus, W.M.Z.W., and Ibrahim, N.A., Fabrication of silver nanoparticles doped in the zeolite framework and antibacterial activity, Int. J. Nanomed., 2011, vol. 6, pp. 331–341.\nShimizu Ken-ichi, Sugino, K., Kato, K., Yokota, S., Okumura, K., and Satsuma, A., Reaction mechanism of H2-promoted selective catalytic reduction of no with C3H8 over Ag–MFI zeolite, J. Phys. Chem. C, 2007, vol. 111, no. 17, pp. 6481–6487.\nPatterson, H.H., Gomez, R.S., Lu, H., and Yson, R.L., Nanoclusters of silver doped in zeolites as photocatalysts, Catal. Today, 2007, vol. 120, no. 2, pp. 168–173.\nSun, T. and Seff, K., Silver clusters and chemistry in zeolites, Chem. Rev., 1994, vol. 94, no. 4, pp. 857–870.\nBogdanchikova, N., Petranovskii, V., Fuentes, S., Paukshtis, E., Sugi, Y., and Licea-Claverie, A., Role of mordenite acid properties in silver cluster stabilization, Mater. Sci. Eng., A, 2000, vol. 276, pp. 236–242.\nThe Zeolite Framework Database. http:\u002F\u002Fwww.izastructure.org\u002F database.\nZEOMICS: Zeolites and Microporous Structures Characterization. http:\u002F\u002Fhelios.princeton.edu\u002Fzeomics\u002F\nFirst, E.L., Gounaris, C.E., Wei, J., and Floudas, C.A., Computational characterization of zeolite porous networks: An automated approach, Phys. Chem. Chem. Phys., 2011, vol. 13, no. 38, pp. 17339–17358.\nRobson, H., Verified Synthesis of Zeolitic Materials, Amsterdam, The Netherlands: Elsevier, 2001.\nRusakov, V.V., Rentgenografiya metallov (X-ray Diffraction of Metals), Moscow: Atomizdat, 1977.\nInglezakis, V.J., Loizidou, M.M., and Grigoropoulou, H.P., Ion exchange studies on natural and modified zeolites and the concept of exchange site accessibility, J. Colloid Interface Sci., 2004, vol. 275, no. 2, pp. 570–576.\nBogdanchikova, N., Petranovskii, V., Machorro, R., Sugi, Y., Soto, V.M., and Fuentes, S., Stability of silver clusters in mordenites with different SiO2\u002FAl2O3 molar ratio, Appl. Surf. Sci., 1999, vol. 150, pp. 58–64.\nErshov, G., Janata, E., and Henglein, A., Growth of silver particles in aqueous solution: Long-lived “magic” clusters and ionic strength effects, J. Phys. Chem., 1993, vol. 97, pp. 339–343.\nRemita, S., Orts, J.M., Feliu, J.M., Mostafavi, M., and Delcourt, M.O., STM identification of silver oligomer clusters prepared by radiolysis in aqueous solution, Chem. Phys. Lett., 1994, vol. 218, p. 115.\nLawless, D., Kapoor, S., Kennepohl, P., Meisel, D., and Serpone, N., Reduction and aggregation of silver ions at the surface of colloidal silica, J. Phys. Chem., 1994, vol. 98, pp. 9619–9625.\nMostafavi, M., Keghouche, N., and Delcourt, M.O., Complexation of silver clusters of a few atoms by a polyanion in aqueous solution: pH effect correlated to structural changes, Chem. Phys. Lett., 1990, vol. 169, pp. 81–84.",{"EN":1387},"Silver nanoparticles and clusters (Ag\n                  2\n                  +\n                , Ag\n                  4\n                  +\n                 and Ag8) in zeolite matrices having the structures of paulingite, Rho, and Beta have been obtained using the method of chemical reduction of silver in the ionic form preliminarily introduced to the pores of the studied zeolites through ion exchange. The effect of the ion exchange conditions, surface properties, and porous-textural characteristics of zeolite matrices on the size, state, and stability of the obtained silver rnanoparticles over time has been investigated. The samples have been studied using the methods fo X-ray diffraction analysis, flame photometry, and UV spectroscopy with integrating spheres.",{"EN":1389},"Stabilization of silver nanoparticles and clusters in porous zeolite matrices with Rho, Beta, and paulingite structures",{"VOID":1391},"10.1134\u002FS1087659615050065","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS1087659615050065",[1394,1406],{"id":1395,"sortIndex":184,"researcher":20,"roles":1396,"affiliations":1397,"properties":1403},"487c94d3-67d4-4a05-9c85-ad15eadc867f",[215],[1398],{"id":20,"sortIndex":21,"affiliation":1399,"properties":20},{"id":568,"createTime":569,"updateTime":570,"relativeEntities":1400,"slug":572,"properties":1401,"entityType":57,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":1402},{"VI":575},{"title":1404},{"VI":1405},"N. Yu. 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