• Journal of Inorganic Materials
  • Vol. 35, Issue 3, 373 (2020)
Jiaqi WANG1, Hongwei PANG2, Hao TANG2, Shujun YU2, Hongtao ZHU1, and Xiangxue WANG1、2、3、*
Author Affiliations
  • 1Hebei Key Lab of Power Plant Flue Gas Multi-Pollutants Control, Department of Environmental Science and Engineering, North China Electric Power University, Baoding 071003, China
  • 2MOE Key Laboratory of Resources and Environmental Systems Optimization, College of Environmental Science and Engineering, North China Electric Power University, Beijing 102206, China
  • 3Fundamental Science on Nuclear Wastes and Environmental Safety Laboratory, Southwest University of Science and Technology, Mianyang 621010, China
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    DOI: 10.15541/jim20190378 Cite this Article
    Jiaqi WANG, Hongwei PANG, Hao TANG, Shujun YU, Hongtao ZHU, Xiangxue WANG. Carbothermic Synthesis of Carbon-supported Zero-valent Iron Material for Removal of U(Ⅵ) from Aqueous Solution[J]. Journal of Inorganic Materials, 2020, 35(3): 373 Copy Citation Text show less

    Abstract

    With the development of nuclear power, radioactive pollutants discharge into the environment and then contaminate soil and water resources. Nanoscale zero-valent iron (nZVI) materials are widely used in water remediation due to their strong reducibility and high removal efficiency. A carbon-based zero-valent iron material (Fe-CB) was prepared in this work. Fe-CB was fabricated using sodium alginate (SA) as a carbon source via one-step carbothermic method and then applied to eliminate U(Ⅵ) from aqueous solution. Its mechanism and adsorption properties of Fe-CB and U(VI) were studied by spectroscopic analyses and macroscopic experiments. The results illustrated that Fe-CB possessed of ample functional groups (such as -OH and -COOH) and high BET surface area, which made up for the dispersibility and low removal efficiency of nanoscale zero-valent iron (nZVI). The removal of U(VI) by Fe-CB achieved equilibrium in 3 h and the maximum sorption capacity was 77.3 mg·g -1 at 298 K. XPS analyses indicated that the U(Ⅵ) removal by Fe-CB was a synergistic effect of reductive adsorptive processes. Adsorption process resulted from surface complexation and the reduction process was dominated by U(VI) reduction to U(IV) by nZVI. The results show that Fe-CB can be used as an inexpensive and highly efficient pollutant scavenger, which has great potential for environment pollution management.
    $Sorption=\frac{C_{0}-C_{e}}{C_{0}}\times100\%$

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    $q_{e}=\frac{(C_{0}-C_{e})\times V}{m}$

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    $ln(Q_{e}-Q{t})=lnQ_{e}-k_{1}t$

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    $\frac{t}{Q_{t}}=\frac{1}{k_{2}\times Q^{2}_{e}}+\frac{t}{Q_{e}}$

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    $\frac{C_{e}}{q_{e}}=\frac{1}{q_{m}K_{L}}+\frac{C_{e}}{q_{m}}$

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    $lnq_{e}=lnK_{F}+\frac{1}{n}lnC_{e}$

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    $lnk^{\theta}=\frac{\Delta S^{\theta}}{R}-\frac{\Delta H^{\theta}}{RT}$

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    $\Delta G^{\theta}=-RTlnk^{\theta}$

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    Jiaqi WANG, Hongwei PANG, Hao TANG, Shujun YU, Hongtao ZHU, Xiangxue WANG. Carbothermic Synthesis of Carbon-supported Zero-valent Iron Material for Removal of U(Ⅵ) from Aqueous Solution[J]. Journal of Inorganic Materials, 2020, 35(3): 373
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