Journal of Inorganic Materials, Volume. 35, Issue 3, 352(2020)

Adsorption of U(VI)-CO3/Ca-U(VI)-CO3 by Amidoxime-functionalized Hydrothermal Carbon

Zhibin ZHANG, Runze ZHOU, Zhimin DONG, Xiaohong CAO, and Yunhai LIU*
Author Affiliations
  • State Key Laboratory of Nuclear Resources and Environment, East China Institute of Technology, Nanchang 330013, China
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    References(38)

    [1] ZHANG Z B, DONG Z M, WANG X X et al. Ordered mesoporous polymer-carbon composites containing amidoxime groups for uranium removal from aqueous solutions[J]. Chemical Engineering Journal, 341, 208-217(2018).

    [2] ZENG J Y, ZHANG H, SUI Y et al. New amidoxime-based material TMP-g-AO for uranium adsorption under seawater conditions[J]. Industrial & Engineering Chemistry Research, 56, 5021-5032(2017).

    [3] LIU Y, CAO X, HUA R et al. Selective adsorption of uranyl ion on ion-imprinted chitosan/PVA cross-linked hydrogel[J]. Hydrometallurgy, 104, 150-155(2010).

    [4] ZHANG Z, ZHANG H, QIU Y et al. Study on adsorption of uranium by phosphorylated graphene oxide[J]. Sci. Sin. Chim., 48, 1-12(2018).

    [5] MAYES R T, GORKA J, DAI S. Impact of pore size on the sorption of uranyl under seawater conditions[J]. Industrial & Engineering Chemistry Research, 55, 4339-4343(2016).

    [6] LI J, WANG X, ZHAO G et al. Metal-organic framework-based materials: superior adsorbents for the capture of toxic and radioactive metal ions[J]. Chem. Soc. Rev., 47, 2322-2356(2018).

    [7] EBBS. Role of uranium speciation in the uptake and translocation of uranium by plants[J]. Journal of Experimental Botany, 49, 1183-1190(1998).

    [8] YAO Z. Review on remediation technologies of soil contaminated by heavy metals[J]. Procedia Environmental Sciences, 16, 722-731(2012).

    [9] LANDSBERGER S, TAMALIS D. Leaching dynamics of uranium in a contaminated soil site[J]. Journal of Radioanalytical & Nuclear Chemistry, 296, 319-341(2013).

    [10] DING D X, LI S M, HU N et al. Bioreduction of U(VI) in groundwater under anoxic conditions from a decommissioned in situ leaching uranium mine[J]. Bioprocess & Biosystems Engineering, 38, 661-670(2015).

    [11] OBIRI-NYARKO F, GRAJALES-MESA S J, MALINA G. An overview of permeable reactive barriers for in situ sustainable groundwater remediation[J]. Chemosphere, 111, 243-259(2014).

    [12] RICHARDSON J P, NICKLOW J W. In situ permeable reactive barriers for groundwater contamination[J]. Soil & Sediment Contamination, 11, 241-268(2002).

    [13] KORNILOVYCH B, WIREMAN M, UBALDINI S et al. Uranium removal from groundwater by permeable reactive barrier with zero-valent iron and organic carbon mixtures: laboratory and field studies[J]. Metals, 8, 408-419(2018).

    [14] ZHANG W, GUO Y, PAN Z et al. Remediation of uranium- contaminated groundwater using the permeable reactive barrier thchnique coupled with hydroxyapatite-coated quartz sands[J]. Fresenius Environmental Bulletin, 27, 2703-2716(2018).

    [15] LI Z J, WANG L, YUAN L Y et al. Efficient removal of uranium from aqueous solution by zero-valent iron nanoparticle and its graphene composite[J]. Journal of Hazardous Materials, 290, 26-33(2015).

    [16] ZHANG Z, LIU J, CAO X et al. Comparison of U(VI) adsorption onto nanoscale zero-valent iron and red soil in the presence of U(VI)-CO3/Ca-U(VI)-CO3 complexes[J]. Journal of Hazardous Materials, 300, 633-642(2015).

    [17] WILTAFSKY M K, SCHMIDTLEIN B, ROTH F X. Estimates of the optimum dietary ratio of standardized ileal digestible valine to lysine for eight to twenty-five kilograms of body weight pigs[J]. Journal of Animal Science, 87, 2544-2553(2009).

    [18] LIU X, WU J, ZHANG S et al. Amidoxime-functionalized hollow carbon spheres for efficient removal of uranium from wastewater[J]. ACS Sustainable Chemistry & Engineering, 7, 10800-10807(2019).

    [19] LADSHAW A P, DAS S, LIAO W P et al. Experiments and modeling of uranium uptake by amidoxime-based adsorbent in the presence of other ions in simulated seawater[J]. Industrial & Engineering Chemistry Research, 55, 4241-4248(2016).

    [20] PANG H B, KUO L J, WAI C M et al. Elution of uranium and transition metals from amidoxime-based polymer adsorbents for sequestering uranium from seawater[J]. Industrial & Engineering Chemistry Research, 55, 4313-4320(2016).

    [21] HAN B, ZHANG E, CHENG G et al. Hydrothermal carbon superstructures enriched with carboxyl groups for highly efficient uranium removal[J]. Chemical Engineering Journal, 338, 734-744(2018).

    [22] ZHANG Z B, DONG Z M, DAI Y et al. Amidoxime-functionalized hydrothermal carbon materials for uranium removal from aqueous solution[J]. RSC Advances, 6, 102462-102471(2016).

    [23] YABUSAKI S B, FANG Y, LONG P E et al. Uranium removal from groundwater via in situ biostimulation: field-scale modeling of transport and biological processes[J]. J. Contam. Hydrol., 93, 216-235(2007).

    [24] OMIDI M H, AZAD F N, GHAEDI M et al. Synthesis and characterization of Au-NPs supported on carbon nanotubes: application for the ultrasound assisted removal of radioactive UO22+ ions following complexation with Arsenazo III: spectrophotometric detection, optimization, isotherm and kinetic study[J]. J. Colloid. Interface Sci., 504, 68-77(2017).

    [25] ZHANG Z B, LIU Y H, CAO X H et al. Sorption study of uranium on carbon spheres hydrothermal synthesized with glucose from aqueous solution[J]. Journal of Radioanalytical and Nuclear Chemistry, 295, 1775-1782(2013).

    [26] HUANG F, XU Y, LIAO S et al. Preparation of amidoxime polyacrylonitrile chelating nanofibers and their application for adsorption of metal ions[J]. Materials, 6, 969-980(2013).

    [27] ZHAO Y, LI J, ZHAO L et al. Synthesis of amidoxime-functionalized Fe3O4@SiO2 core-shell magnetic microspheres for highly efficient sorption of U(VI)[J]. Chemical Engineering Journal, 235, 275-283(2014).

    [28] ZHANG Z B, LIU J, CAO X H et al. Comparison of U(VI) adsorption onto nanoscale zero-valent iron and red soil in the presence of U(VI)-CO3/Ca-U(VI)-CO3 complexes[J]. Journal of Hazardous Materials, 300, 633-642(2015).

    [29] LIU J, ZHAO C, YUAN G et al. Adsorption of U(VI) on a chitosan/ polyaniline composite in the presence of Ca/Mg-U(VI)-CO3 complexes[J]. Hydrometallurgy, 175, 300-311(2018).

    [30] LI X, ZHANG M, LIU Y et al. Removal of U(VI) in aqueous solution by nanoscale zero-valent iron(nZVI)[J]. Water Quality Exposure & Health, 5, 31-40(2013).

    [31] CERRATO J M, BARROWS C J, BLUE L Y et al. Effect of Ca2+ and Zn2+ on UO2 dissolution rates[J]. Environ. Sci. Technol., 46, 2731-2737(2012).

    [32] KENNEDY D W, FREDRICKSON J K, BROOKS S C et al. Inhibition of bacterial U(VI) reduction by calcium[J]. Abstracts of the General Meeting of the American Society for Microbiology, 37, 1850-1858(2003).

    [33] EL HAYEK E, TORRES C, RODRIGUEZ-FREIRE L et al. Effect of calcium on the bioavailability of dissolved uranium(VI) in plant roots under circumneutral pH[J]. Environ. Sci. Technol., 52, 13089-13098(2018).

    [34] CHEN L F, YIN X B, YU Q et al. Rapid and selective capture of perrhenate anion from simulated groundwater by a mesoporous silica-supported anion exchanger[J]. Microporous Mesoporous Mat., 274, 155-162(2019).

    [35] WANG X X, CHEN L, WANG L et al. Synthesis of novel nanomaterials and their application in efficient removal of radionuclides[J]. Sci. China-Chem., 62, 933-967(2019).

    [36] MAHMOUD M A. Adsorption of U(VI) ions from aqueous solution using silicon dioxide nanopowder[J]. Journal of Saudi Chemical Society, 22, 229-238(2018).

    [37] YAKOUT S M, METWALLY S S, EL-ZAKLA T. Uranium sorption onto activated carbon prepared from rice straw: competition with humic acids[J]. Applied Surface Science, 280, 745-750(2013).

    [38] ZHANG Z B, DONG Z M, WANG X X et al. Synthesis of ultralight phosphorylated carbon aerogel for efficient removal of U(VI): batch and fixed-bed column studies[J]. Chemical Engineering Journal, 370, 1376-1387(2019).

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    Zhibin ZHANG, Runze ZHOU, Zhimin DONG, Xiaohong CAO, Yunhai LIU. Adsorption of U(VI)-CO3/Ca-U(VI)-CO3 by Amidoxime-functionalized Hydrothermal Carbon[J]. Journal of Inorganic Materials, 2020, 35(3): 352

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    Paper Information

    Category: RESEARCH PAPER

    Received: Aug. 3, 2019

    Accepted: --

    Published Online: Jan. 27, 2021

    The Author Email: Yunhai LIU (yhliu@ecit.edu.cn)

    DOI:10.15541/jim20190397

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