• Journal of Inorganic Materials
  • Vol. 37, Issue 7, 741 (2022)
Jiahui HONG, Ran MA, Yunchao WU, Tao WEN, and Yuejie AI*
Author Affiliations
  • MOE Key Laboratory of Resources and Environmental Systems Optimization, College of Environmental Science and Engineering, North China Electric Power University, Beijing 102206, China
  • show less
    DOI: 10.15541/jim20210576 Cite this Article
    Jiahui HONG, Ran MA, Yunchao WU, Tao WEN, Yuejie AI. CoNx/g-C3N4 Nanomaterials Preparation by MOFs Self-sacrificing Template Method for Efficient Photocatalytic Reduction of U(VI) [J]. Journal of Inorganic Materials, 2022, 37(7): 741 Copy Citation Text show less
    References

    [1] H WAKAMATSU, T MIYATA. Effects of radioactive safety information on consumer fears of radioactive contamination from oyster products in Japan. Marine Policy(2021).

    [2] A HASEGAWA, K TANIGAWA, A OHTSURU et al. Health effects of radiation and other health problems in the aftermath of nuclear accidents, with an emphasis on Fukushima. Lancet, 479-488(2015).

    [3] Y LI, J SU, E MITCHELL et al. Photocatalysis with visible-light- active uranyl complexes. Science China Chemistry, 1671-1681(2013).

    [4] C LU, P ZHANG, S JIANG et al. Photocatalytic reduction elimination of UO22+ pollutant under visible light with metal-free sulfur doped g-C3N4photocatalyst. Applied Catalysis B: Environmental, 378-385(2017).

    [5] G GAO, Y JIAO, F MA et al. Metal-free graphitic carbon nitride as mechano-catalyst for hydrogen evolution reaction. Journal of Catalysis, 149-155(2015).

    [7] J GAO, Y WANG, S ZHOU et al. A facile one-step synthesis of Fe-doped g-C3N4 nanosheets and their improved visible-light photocatalytic performance. ChemCatChem, 1708-1715(2017).

    [8] L KE, P LI, X WU et al. Graphene-like sulfur-doped g-C3N4 for photocatalytic reduction elimination of UO22+ under visible Light. Applied Catalysis B: Environmental, 319-326(2017).

    [9] Z ZHAO, Y SUN, F DONG. Graphitic carbon nitride based nanocomposites: a review. Nanoscale, 15-37(2015).

    [10] J HONG, C CHEN, F E BEDOYA et al. Carbon nitride nanosheet/ metal-organic framework nanocomposites with synergistic photocatalytic activities. Catalysis Science & Technology, 5042-5051(2016).

    [11] C C WANG, X H YI, P WANG. Powerful combination of MOFs and C3N4for enhanced photocatalytic performance. Applied Catalysis B: Environmental, 24-48(2019).

    [12] C BAI, J BI, J WU et al. Fabrication of noble-metal-free g-C3N4- MIL-53(Fe) composite for enhanced photocatalytic H2-generation performance. Applied Organometallic Chemistry, e4597-7(2018).

    [13] M MARSZEWSKI, S CAO, J YU et al. Semiconductor-based photocatalytic CO2 conversion. Materials Horizons, 261-278(2015).

    [14] K C DEVARAYAPALLI, S V P VATTIKUTI, T V M SREEKANTH et al. Hydrogen production and photocatalytic activity of g-C3N4/ Co-MOF (ZIF-67) nanocomposite under visible light irradiation. Applied Organometallic Chemistry, e5376(2020).

    [15] W HUANG, N LIU, X ZHANG et al. Metal organic framework g-C3N4/MIL-53(Fe) heterojunctions with enhanced photocatalytic activity for Cr(VI) reduction under visible light. Applied Surface Science, 107-116(2017).

    [16] Y XIE, C CHEN, X REN et al. Coupling g-C3N4nanosheets with metal-organic frameworks as 2D/3D composite for the synergetic removal of uranyl ions from aqueous solution. Journal of Colloid and Interface Science, 117-127(2019).

    [17] C AO, B FENG, S QIAN et al. Theoretical study of transition metals supported on g-C3N4 as electrochemical catalysts for CO2 reduction to CH3OH and CH4. Journal of CO2 Utilization, 116-123(2020).

    [18] J MU, J LI, X ZHAO et al. Cobalt-doped graphitic carbon nitride with enhanced peroxidase-like activity for wastewater treatment. RSC Advances, 35568-35576(2016).

    [19] N ZHAO, L KONG, Y DONG et al. Insight into the crucial factors for photochemical deposition of cobalt cocatalysts on g-C3N4 photocatalysts. ACS Applied Materials & Interfaces, 9522-9531(2018).

    [21] H L JIANG, B LIU, Y Q LAN et al. From metal-organic framework to nanoporous carbon: toward a very high surface area and hydrogen uptake. Journal of the American Chemical Society, 11854-11857(2011).

    [22] D YUAN, J CHEN, S TAN et al. Worm-like mesoporous carbon synthesized from metal-organic coordination polymers for supercapacitors. Electrochemistry Communications, 1191-1194(2009).

    [23] J HU, H WANG, Q GAO et al. Porous carbons prepared by using metal-organic framework as the precursor for supercapacitors. Carbon, 3599-3606(2010).

    [24] J WANG, Y WANG, W WANG et al. Tunable mesoporous g-C3N4 nanosheets as a metal-free catalyst for enhanced visible-light- driven photocatalytic reduction of U(VI). Chemical Engineering Journal(2020).

    [25] H LI, F ZHAI, D GUI et al. Powerful uranium extraction strategy with combined ligand complexation and photocatalytic reduction by postsynthetically modified photoactive metal-organic frameworks. Applied Catalysis B: Environmental, 47-54(2019).

    [26] Y WU, H PANG, W YAO et al. Synthesis of rod-like metal- organic framework (MOF-5) nanomaterial for efficient removal of U(VI): batch experiments and spectroscopy study. Science Bulletin, 831-839(2018).

    [27] X HAO, R CHEN, Q LIU et al. A novel U(VI)-imprinted graphitic carbon nitride composite for the selective and efficient removal of U(VI) from simulated seawater. Inorganic Chemistry Frontiers, 2218-2226(2018).

    Jiahui HONG, Ran MA, Yunchao WU, Tao WEN, Yuejie AI. CoNx/g-C3N4 Nanomaterials Preparation by MOFs Self-sacrificing Template Method for Efficient Photocatalytic Reduction of U(VI) [J]. Journal of Inorganic Materials, 2022, 37(7): 741
    Download Citation