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      KCI등재 SCOPUS

      Enhanced Arsenic(V) Removal from Aqueous Solution by a Novel Magnetic Biochar Derived from Dairy Cattle Manure

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      https://www.riss.kr/link?id=A108203737

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      다국어 초록 (Multilingual Abstract)

      Magnetic biochar produced from pyrolysis of dairy cattle manure was used to develop an effective sorbent for arsenic purification from aqueous solution. Biomass and magnetized biomass were pyrolyzed in a tube furnace with 10℃/min heating rate at 450...

      Magnetic biochar produced from pyrolysis of dairy cattle manure was used to develop an effective sorbent for arsenic purification from aqueous solution. Biomass and magnetized biomass were pyrolyzed in a tube furnace with 10℃/min heating rate at 450℃ under nitrogen flow of 100 cm3/min for 2 h. Biochars were characterized by SEM-EDX, BET, XDR, FTIR, TGA, zeta potential analysis. The resultant biochar and magnetic biochar were opposed to 50-100- 500 ppm As(V) laden aqueous solution. Adsorption experiments were performed by using ASTM 4646-03 batch method.
      The effects of concentration, pH, temperature and stirring rate on adsorption were evaluated. As(V) was successfully removed from aqueous solution by magnetic biochar due to its highly porous structure, high aromaticity and polarity.
      The results suggest dairy cattle manure pyrolysis is a promising route for managing animal manure and producing a cost effective biosorbent for efficient immobilization of arsenic in aqueous solutions.

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      참고문헌 (Reference)

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      2 Aredes, S, "The Removal of Arsenic from Water Using Natural Iron Oxide Minerals" 29-30 : 208-213, 2012

      3 Inyang, M., "Synthesis, Characterization, and Dye Sorption Ability of Carbon Nanotube–Biochar Nanocomposites" 236 : 39-46, 2014

      4 Thines, K. R., "Synthesis of Magnetic Biochar from Agricultural Waste Biomass to Enhancing Route for Waste Water and Polymer Application:A Review" 67 : 257-276, 2017

      5 He, R., "Synthesis and Characterization of An Iron-Impregnated Biochar for Aqueous Arsenic Removal" 612 : 1177-1186, 2018

      6 He, R., "Synthesis and Characterization of An Iron-Impregnated Biochar for Aqueous Arsenic Removal" 612 : 1177-1186, 2018

      7 Akyürek, Z., "Sustainable Valorization of Animal Manure and Recycled Polyester: Co-pyrolysis Synergy" 11 (11): 2280-, 2019

      8 Mukherjee, A., "Surface Chemistry Variations among A Series of Laboratory-Produced Biochars" 163 : 247-255, 2011

      9 Indu Kaushal ; Sanjeev Maken ; Ashok Kumar Sharma, "SnO2 Mixed Banana Peel Derived Biochar Composite for Supercapacitor Application" 한국화학공학회 56 (56): 694-704, 2018

      10 Regmi, P., "Removal of Copper and Cadmium from Aqueous Solution using Switchgrass Biochar Produced via Hydrothermal Carbonization Process" 109 : 61-69, 2012

      1 Duan, X., "Waste Walnut Shell Valorization to Iron Loaded Biochar and Its Application to Arsenic Removal" 3 : 29-36, 2017

      2 Aredes, S, "The Removal of Arsenic from Water Using Natural Iron Oxide Minerals" 29-30 : 208-213, 2012

      3 Inyang, M., "Synthesis, Characterization, and Dye Sorption Ability of Carbon Nanotube–Biochar Nanocomposites" 236 : 39-46, 2014

      4 Thines, K. R., "Synthesis of Magnetic Biochar from Agricultural Waste Biomass to Enhancing Route for Waste Water and Polymer Application:A Review" 67 : 257-276, 2017

      5 He, R., "Synthesis and Characterization of An Iron-Impregnated Biochar for Aqueous Arsenic Removal" 612 : 1177-1186, 2018

      6 He, R., "Synthesis and Characterization of An Iron-Impregnated Biochar for Aqueous Arsenic Removal" 612 : 1177-1186, 2018

      7 Akyürek, Z., "Sustainable Valorization of Animal Manure and Recycled Polyester: Co-pyrolysis Synergy" 11 (11): 2280-, 2019

      8 Mukherjee, A., "Surface Chemistry Variations among A Series of Laboratory-Produced Biochars" 163 : 247-255, 2011

      9 Indu Kaushal ; Sanjeev Maken ; Ashok Kumar Sharma, "SnO2 Mixed Banana Peel Derived Biochar Composite for Supercapacitor Application" 한국화학공학회 56 (56): 694-704, 2018

      10 Regmi, P., "Removal of Copper and Cadmium from Aqueous Solution using Switchgrass Biochar Produced via Hydrothermal Carbonization Process" 109 : 61-69, 2012

      11 Pehlivan, E., "Removal of As (V) from Aqueous Solutions by Iron Coated Rice Husk" 106 : 511-517, 2013

      12 Zhang, M., "Removal of Arsenic, Methylene Blue, and Phosphate by Biochar/AlOOH Nanocomposite" 226 : 286-292, 2013

      13 Lata, S., "Removal of Arsenic from Water Using Nano Adsorbents and Challenges: A Review" 166 : 387-406, 2016

      14 Wang, S., "Removal of Arsenic by Magnetic Biochar Prepared from Pinewood and Natural Hematite" 175 : 391-395, 2015

      15 Wang, S, "Regeneration of Magnetic Biochar Derived from Eucalyptus Leaf Residue for Lead(II) Removal" 186 : 360-364, 2015

      16 Lata, S., "Regeneration of Adsorbents and Recovery of Heavy Metals: A Review" 12 : 1461-1478, 2015

      17 Namduri, H., "Quantitative Analysis of Iron Oxides Using Fourier Transform Infrared Spectrophotometry" 50 : 2493-2497, 2008

      18 Tang, J., "Preparation of a Novel Graphen Oxide/Fe-Mn Composite and Its Application for Aqueous Hg(II) Removal" 316 : 151-158, 2016

      19 Chang, Q., "Preparation of Iron-Impregnated Granular Activated Carbon for Arsenic Removal from Drinking Water" 184 : 515-522, 2010

      20 Marques Neto, J. D. O., "Preparation and Evaluation of Chitosan Beads Immobilized with Iron (III) for the Removal of As (III) and As (V) from Water" 24 (24): 121-132, 2013

      21 Zhang, M., "Preparation and Characterization of a Novel Magnetic Biochar for Arsenic Removal" 130 : 457-462, 2013

      22 Wang, S., "Physicochemical and Sorptive Properties of Biochars Derived from Woody and Herbaceous Biomass" 134 : 257-262, 2015

      23 Leupin, O. X., "Oxidation and Removal of Arsenic (III) from Aerated Groundwater by Filtration through Sand and Zero-valent Iron" 39 (39): 1729-1740, 2005

      24 Jia, Y., "Observation of Surface Precipitation of Arsenate on Ferrihydrite" 40 (40): 3248-3253, 2006

      25 Kim, J., "Modeling a Novel Ion Exchange Process for Arsenic and Nitrate Removal" 38 (38): 2053-2062, 2004

      26 Yijun Zhao ; Dongdong Feng ; Yu Zhang ; Wenbo Tang ; Shun Meng ; Yangzhou Guo ; Shaozeng Sun, "Migration of Alkali and Alkaline Earth Metallic Species and Structure Analysis of Sawdust Pyrolysis Biochar" 한국화학공학회 54 (54): 659-664, 2016

      27 Li, H., "Mechanisms of Metal Sorption by Biochars" 178 : 466-478, 2017

      28 Li, Y., "Manganese Oxide-Modified Biochars:Preparation, Characterization, and Sorption of Arsenate and Lead" 181 : 13-17, 2015

      29 Banerjee, K., "Kinetic and Thermodynamic Aspects of Adsorption of Arsenic onto Granular Ferric Hydroxide (GFH)" 42 (42): 3371-3378, 2008

      30 Jin, J. W., "Influence of Pyrolysis Temperature on Properties and Environmental Safety of Heavy Metals in Biochars Derived from Municipal Sewage Sludge" 320 : 417-426, 2016

      31 Yang, Y., "Evaluation of Adsorption Potential of Bamboo Biochar for Metal-Complex Dye: Equilibrium, Kinetics and Artificial Neural Network Modeling" 11 : 1093-1100, 2014

      32 Shi, J., "Enhanced Adsorption of As(III) on Chemically Modified Activated Carbon Fibers" 9 : 41-, 2019

      33 Ahmad, M., "Effects of Pyrolysis Temperature on Soybean Stover and Peanut Shell-Derived Biochar Properties and TCE Adsorption in Water" 118 : 536-544, 2012

      34 Baig, S. A., "Effect of Synthesis Methods on Magnetic Kans Grass Biochar for Enhanced As (III,V) Adsorption from Aqueous Solutions" 71 : 299-310, 2014

      35 Smith, E., "Chemistry of Inorganic Arsenic in Soils" 31 : 557-563, 2002

      36 Triolo, J. M, "Characteristics of Animal Slurry as a Key Biomass for Biogas Production in Denmark, Biomass Now-Sustainable Growth and Use" IntechOpen 2013

      37 Agrafioti, E., "Ca and Fe Modified Biochars as Adsorbents of Arsenic and Chromium in Aqueous Solutions" 146 : 444-450, 2014

      38 Kaygusuz, K., "Biomass for Efficiency and Sustainability Energy Utilization in Turkey" 5 : 332-341, 2016

      39 Joseph, S. D, "Biochar for Carbon Sequestration, Reduction of Greenhouse Gas Emissions and Enhancement of Soil Fertility; A Review of the Materials Science" 2007

      40 Velazquez-Pena, C, "As(V) Sorption by Different Natural Zeolite Frameworks Modified with Fe, Zr and FeZr" 273 : 133-141, 2019

      41 Xue, Q., "Arsenite and Arsenate Binding to Ferrihydrite Organo-mineral Coprecipitate:Implications for Arsenic Mobility and Fate in Natural Environments" 224 : 103-110, 2019

      42 Matschullat, J., "Arsenic in the Geosphere - A Review" 249 : 297-312, 2000

      43 Viraraghavan, T., "Arsenic in Drinking Water Problems and Solutions" 40 : 69-76, 1999

      44 Agrafioti, E., "Arsenic and Chromium Removal from Water using Biochars Derived from Rice Husk" 133 : 309-314, 2014

      45 Lin, L, "Arsenic Removal in Aqueous Solution by a Novel Fe-Mn Modified Biochar Composite: Characterization and Mechanism" 144 : 514-521, 2017

      46 Vitela-Rodriguez, A. V., "Arsenic Removal by Modified Activated Carbons with Iron Hydro(oxide) Nanoparticles" 114 : 225-231, 2013

      47 Garelick, H., "Arsenic Pollution Sources" 197 : 17-60, 2008

      48 Singh, R., "Arsenic Contamination, Consequences and Remediation Techniques:A Review" 112 : 247-270, 2015

      49 Mandal, B. K., "Arsenic Around The World:A Review" 58 : 201-235, 2002

      50 Qiu, W., "Arsenate Removal from Water by An Alumina-Modified Zeolite Recovered from Fly Ash" 148 (148): 721-726, 2007

      51 Liu, Z., "Arsenate Removal from Water Using Fe3O4-Loaded Activated Carbon Prepared from Waste Biomass" 160 : 57-62, 2010

      52 Gholami, M. M., "Application of Reverse Osmosis Technology for Arsenic Removal from Drinking Water" 200 : 725-727, 2006

      53 Tan, X. F., "Application of Biochar for The Removal of Pollutants from Aqueous Solutions" 125 : 70-85, 2015

      54 Pellera, F. M., "Adsorption of Cu(II)Ions from Aqueous Solutions on Biochars Prepared from Agricultural By-products" 96 : 35-42, 2012

      55 Tong, X. J., "Adsorption of Cu(II) by Biochars Generated from Three Crop Straws" 172 : 828-834, 2011

      56 Samsuri, A. W., "Adsorption of As(III) and As(V) by Fe Coated Biochars and Biochars Produced from Empty Fruit Bunch and Rice Husk" 1 : 981-988, 2013

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      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2013-01-01 평가 등재 1차 FAIL (등재유지) KCI등재
      2010-12-02 학술지명변경 한글명 : 화학공학 -> Korean Chemical Engineering Research(HWAHAK KONGHAK) KCI등재
      2010-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2009-08-25 학술지명변경 외국어명 : Korean Chem. Eng. Res. -> Korean Chemical Engineering Research KCI등재
      2008-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2007-09-27 학회명변경 영문명 : The Korean Institute Of Chemical Engineers -> The Korean Institute of Chemical Engineers KCI등재
      2006-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2004-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2001-07-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      1999-01-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 0.43 0.43 0.4
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.37 0.35 0.496 0.11
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