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      CTABr로 표면처리된 Anthracite에 의한 비소(As) 이온의 흡착에 대한 동력학 및 열역학에 관한 연구 = Study on Kinetic and Thermodynamic for Adsorption of As Ion by CTABr-Impregnated Anthracite

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      https://www.riss.kr/link?id=A103105878

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      다국어 초록 (Multilingual Abstract)

      The removal characteristics of As ion from aqueous solution by CTABr impregnated anthracite(CTAB-AT) was investigated under various conditions of contact time, pH and temperature. When the pH is 6, the zeta potential value of anthracite(AT) is -30 ㎷...

      The removal characteristics of As ion from aqueous solution by CTABr impregnated anthracite(CTAB-AT) was investigated under various conditions of contact time, pH and temperature. When the pH is 6, the zeta potential value of anthracite(AT) is -30 ㎷ and on the other hand, the zeta potential value of the CTAB-AT is +40 ㎷. It can be seen that the overall increase of about 70 ㎷. The kinetic study shows that As ion was adsorbed onto the CTAB-AT within the first 80 min, while equilibrium was arrived within 2 h for As ion. The experimental data was analyzed using equilibrium isotherm, kinetic and thermodynamic models. The isotherm data was well described by Langmuir isotherm model and Temkin model. The maximum adsorption capacity was found to be 7.81 mg/g for As ion from the Langmuir isotherm model at 298 <sup>o</sup>K. The kinetic data was tested using pseudo first and second order models. The results indicated that adsorption fitted well with the pseudo-second order kinetic model. The mechanism of the adsorption process showed that adsorption was dependent on intra particle diffusion model according to two step diffusion. The thermodynamic parameters(△G<sup>o</sup>, △H<sup>o</sup>, and △S<sup>o</sup>) were also determined using the equilibrium constant value obtained at different temperatures. The thermodynamic parameters indicated that the adsorption process was physisorption, and also an endothermic and spontaneous process.

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      참고문헌 (Reference)

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      1 Boyd, G. E., "The exchange adsorption of ions from aqueous solutions by organiv zeolites. Ⅱ. Kinetics 1" 69 : 2836-2848, 1947

      2 David, A. S., "Surfactant enhanced susurface remedation" 594 : 1982

      3 Nayyar, S. P., "Surfactant adsolubilization and modified admicellar sorption of nonpolor and polar ionizable organic contaminants" 28 : 1874-1881, 1994

      4 Lee, J. J., "Study on adsorption kinetics of Amaranth dye on activated carbon" 17 (17): 97-102, 2011

      5 Donald, L. S., "Sorption and desorption of quaternary amine cation on clays" 27 : 1625-1631, 1993

      6 Haggerty, G. M., "Sorption and desorption of quarternary amine cations on clays" 28 : 452-458, 1994

      7 Chegrouche, S, "Removal of strontium from aqueous solutions by adsorption onto activated carbon: kinetic and thermodynamic studies" 235 : 306-318, 2009

      8 Thomas, M. H., "Removal of sparingly soluble organic chemicals from aqueous solutions with surfactant-coated ferrihydrite" 25 : 1585-1589, 1991

      9 Sulak, M. T., "Removal of astrazon yellow 7GL from aqueous solutions by adsorption onto wheat bran" 98 : 2590-2598, 2007

      10 Lee, C. H., "Removal of Sr and Cs ions by SAN-Zeolite Beads prepared by immobilization of zeolite with SAN" 24 (24): 1331-1341, 2015

      11 Nollet, H., "Removal of PCBs from wastewater using fly ash" 53 : 655-665, 2003

      12 Basar, C. A., "Removal of CrO4anions from water using surfactant enhanced hybrid PAC/MF process" 48 : 270-283, 2006

      13 Yusof, A. M., "Removal of Cr(VI) and As(V) from aqoeous solutions by HDTMA-modified zeolite-Y" 162 : 1019-1024, 2009

      14 Sang-Kyu Kam, "Removal Characteristics of Sr and Cu Ions using PS-FZ Beads fabricated by Immobilization of Zeolite prepared from Coal Fly Ash from an Ulsan Industrial Complex with Polysulfone" The Korean Environmental Sciences Society 25 (25): 1623-1632, 2016

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      16 이창한, "Polysulfone으로 carbon nanotubes (CNT)와 di-(2-ethylhexyl) -phosphoric acid (D2EHPA)를 고정화한 PSf/D2EHPA/CNT 비드에 의한 Cu(II)의 제거특성" 한국환경과학회 25 (25): 1485-1491, 2016

      17 Noroozifar, M., "Modified nano crystalline nature zeolite for adsorption of arsenate from wastewater : Isotherm and kinetic studies" 197 : 101-108, 2014

      18 Barkat, M., "Kinetics and thermodynamics studies of Chromium(Ⅵ)ions adsorption onto activated carbon from aqueous solutions" 48 : 38-47, 2009

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      20 Kana, N., "Kinetics and mechanism of removal of methylene blue by adsorption on various carbons : a comparative study" 51 : 25-40, 2001

      21 Hameed, B., "Kinetics and equilibrium studies of malachite green adsorption on rice straw-derived char" 153 : 701-708, 2008

      22 Zuo, L., "Enhanced removal of sulfonamide antibiotics by KOH-activated anthracite coal: Batch and fixed-bed studies" 211 : 425-434, 2016

      23 Zhang, X., "Effects of varying particle sizes and different types of LDH-modified anthracite in simulated test columns for phosphorous removal" 12 : 6788-6800, 2015

      24 Ronald, D. H., "Effects of parental arsenite exposure in the hamster" 29 : 671-671, 1982

      25 Mortland, M. M., "Clay-organic complexes as adsorbents for phenol and chlorophenols" 34 : 581-585, 1986

      26 Jaycock, M. J., "Chemistry of interfaces" Ellis Horwood Ltd 69-84, 1981

      27 Rhoades, J. D., "Chemical and microbiological properties agronomy monograph, No.9" 149-157, 1982

      28 Sewards, T., "Characterization of fracture surfaces in dolomite rock, culebra dolomite member, rustler formation" Sandia National Laboratories 1990

      29 Shihe, X., "Cationic surfactant sorption to a vermiculitic subsoil via hydrophobic bonding" 29 : 918-926, 1995

      30 Boffetta, P., "Carcinogenicity of trace elements with reference to evaluations made by the international agency for research on cancer" 19 : 67-70, 1993

      31 Islam. A. B., "Arsenic mineral dissolution and possible mobilization in mineral microbe groundwater environment" 262 : 989-996, 2013

      32 Jarup, L., "Arsenic exposure, smoking, and lung cancer in smelter workers – a case control study" 134 : 545-551, 1991

      33 Shihe, X., "Alternative model for cationic surfactant adsorption by layer silicates" 29 : 3022-3028, 1995

      34 Sivakumar, P., "Adsorption studies of basic Red-29by a non conventional activated carbon prepared from Euphorbia Antiquorum" 1 : 502-510, 2009

      35 Srivastava, S. K,., "Adsorption of heavy metal ions on carbonaceous material developed from the waste slurry generated in local fertilizer plants" 23 : 1161-1165, 1989

      36 Min-Gyu Lee, "Adsorption of Non-degradable Eosin Y by Activated Carbon" The Korean Environmental Sciences Society 21 (21): 623-631, 2012

      37 Tokudome, S., "A cohort study on mortality from cancer and other causes among workers at a metal refinery" 17 : 310-317, 1976

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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
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