• Journal of the Chinese Ceramic Society
  • Vol. 52, Issue 8, 2674 (2024)
DING Ling, ZHANG Shuai, ZHEN Bowen, DANG Zhenhua, and ZHANG Lin*
Author Affiliations
  • [in Chinese]
  • show less
    DOI: 10.14062/j.issn.0454-5648.20240049 Cite this Article
    DING Ling, ZHANG Shuai, ZHEN Bowen, DANG Zhenhua, ZHANG Lin. Uranium(VI) Adsorption Properties of Ti–Fe Composites prepared via Sol–Gel method[J]. Journal of the Chinese Ceramic Society, 2024, 52(8): 2674 Copy Citation Text show less
    References

    [9] SURESHKUMAR M K, DAS D, MALLIA M B, et al. Adsorption of uranium from aqueous solution using chitosan-tripolyphosphate (CTPP) beads[J]. J Hazard Mater, 2010, 184(1–3): 65–72.

    [10] SALEH T A, NAEEMULLAH, TUZEN M, et al. Polyethylenimine modified activated carbon as novel magnetic adsorbent for the removal of uranium from aqueous solution[J]. Chem Eng Res Des, 2017, 117:218–227.

    [11] TUZEN M, SAR? A, SALEH T A. Synthesis, characterization and evaluation of carbon nanofiber modified-polymer for ultra-removal of thorium ions from aquatic media[J]. Chem Eng Res Des, 2020, 163:76–84.

    [13] HU L, YAN X W, ZHANG X J, et al. Integration of adsorption and reduction for uranium uptake based on SrTiO3/TiO2 electrospun nanofibers[J]. Appl Surf Sci, 2018, 428: 819–824.

    [14] WEN J, LI Q Y, LI H, et al. Nano-TiO2 imparts amidoximated wool fibers with good antibacterial activity and adsorption capacity for uranium(VI) recovery[J]. Ind Eng Chem Res, 2018, 57(6): 1826–1833.

    [15] LIU J, ZHAO C S, WANG J, et al. Adsorption of U(VI) from eutrophic aquesous solutions in a U(VI)-P-CO3 system with hydrous titanium dioxide supported by polyacrylonitrile fiber[J]. Hydrometallurgy,2019, 183: 29–37.

    [16] YU S J, WEI D L, SHI L, et al. Three-dimensional graphene/titanium dioxide composite for enhanced U(VI) capture: Insights from batch experiments, XPS spectroscopy and DFT calculation[J]. Environ Pollut,2019, 251: 975–983.

    [17] CHEN X B, MAO S S. Titanium dioxide nanomaterials: Synthesis,properties, modifications, and applications[J]. Chem Rev, 2007, 107(7):2891–2959.

    [18] KHALED S M Z, MIRON R J, HAMILTON D W, et al.Reinforcement of resin based cement with titania nanotubes[J]. Dent Mater, 2010, 26(2): 169–178.

    [19] DONG Z M, ZHANG Z B, LI Z F, et al. Double-shelled hollow nanosphere assembled by TiO2@surface sulfate functionalized CdS for boosting photocatalysis reduction of U(VI) under seawater conditions[J]. Chem Eng J, 2022, 431: 133256.

    [20] LIAO J, ZHANG Y, ZHANG L. Improved catalytic activity on the thermal decomposition of ammonium perchlorate and efficient adsorption of uranium using a novel ultra-low density Al2O3-based aerogels[J]. J Hazard Mater, 2020, 387: 122015.

    [25] WANG J L, GUO X. Adsorption isotherm models: Classification,physical meaning, application and solving method[J]. Chemosphere,2020, 258: 127279.

    [26] SHARMA P R, CHATTOPADHYAY A, SHARMA S K, et al.Efficient removal of UO2 2+ from water using carboxycellulose nanofibers prepared by the nitro-oxidation method[J]. Ind Eng Chem Res, 2017, 56(46): 13885–13893.

    [27] WANG J J, WANG Y, WANG W, et al. Visible light driven Ti3+ self-doped TiO2 for adsorption-photocatalysis of aqueous U(VI)[J].Environ Pollut, 2020, 262: 114373.

    [28] ANIRUDHAN T S, SREEKUMARI S S. Synthesis and characterization of a functionalized graft copolymer of densified cellulose for the extraction of uranium(VI) from aqueous solutions[J].Colloids Surf A Physicochem Eng Aspects, 2010, 361(1–3): 180–186.

    [29] YANG P P, LIU Q, LIU J Y, et al. Highly efficient immobilization of uranium(VI) from aqueous solution by phosphonate-functionalized dendritic fibrous nanosilica (DFNS)[J]. J Hazard Mater, 2019, 363:248–257.

    [30] DING L, CHEN B W, WANG Y, et al. High efficiency adsorption of uranium in solution using nano-TiO2 loaded with g-C3N4[J]. Process Saf Environ Prot, 2022, 168: 1049–1057.

    [31] ZHANG Y, LIAO J, ZHU W K. Uranium uptake from wastewater by the novel MnxTi1?xOy composite materials: Performance and mechanism[J]. Environ Pollut, 2021, 284: 117392.

    [32] LIU H, YIN H, TANG S Y, et al. Simultaneous adsorption of Cd2+ and photocatalytic degradation of tris-(2-chloroisopropyl) phosphate(TCPP) by mesoporous TiO2[J]. Chemosphere, 2021, 267: 129238.

    [33] SONG S, HUANG S Y, ZHANG R, et al. Simultaneous removal of U(VI) and humic acid on defective TiO2–x investigated by batch and spectroscopy techniques[J]. Chem Eng J, 2017, 325: 576–587.

    [34] CHEN K, CHEN C L, REN X M, et al. Interaction mechanism between different facet TiO2 and U(VI): Experimental and density-functional theory investigation[J]. Chem Eng J, 2019, 359:944–954.

    [35] ZHANG T H, LIU Y J, RAO Y D, et al. Enhanced photocatalytic activity of TiO2 with acetylene black and persulfate for degradation of tetracycline hydrochloride under visible light[J]. Chem Eng J, 2020,384: 123350.

    [36] XU Y C, ZHANG H S, LIU Q, et al. Surface hybridization of π-conjugate structure cyclized polyacrylonitrile and radial microsphere shaped TiO2 for reducing U(VI) to U(IV)[J]. J Hazard Mater, 2021,416: 125812.

    [37] ZHENG A L T, SABIDI S, OHNO T, et al. Cu2O/TiO2 decorated on cellulose nanofiber/reduced graphene hydrogel for enhanced photocatalytic activity and its antibacterial applications[J]. Chemosphere, 2022, 286(Pt2): 131731.

    DING Ling, ZHANG Shuai, ZHEN Bowen, DANG Zhenhua, ZHANG Lin. Uranium(VI) Adsorption Properties of Ti–Fe Composites prepared via Sol–Gel method[J]. Journal of the Chinese Ceramic Society, 2024, 52(8): 2674
    Download Citation