Journal of Inorganic Materials, Volume. 34, Issue 1, 17(2019)

Removal of Radionuclides by Metal-organic Framework-based Materials

Xiang-Xue WANG, Shu-Jun YU, Xiang-Ke WANG, [in Chinese], [in Chinese], and [in Chinese]
Author Affiliations
  • College of Environmental Science and Engineering, North China Electric Power University, Beijing 102206, China
  • show less
    References(64)

    [1] AI Y J, LAN W Y, LIU Y et al. The effect of pH on the U(VI) sorption on graphene oxide (GO): a theoretical study[D]. Chemical Engineering Journal, 343, 460-466(2018).

    [2] PANG H W, WANG X X, YAO W et al. Removal of radionuclides by metal oxide materials and mechanism research[D]. Scientia Sinica Chimica, 48, 58-73(2018).

    [3] CHEN Z S, WANG X X, YANG S Y et al. Synthesis of Fe3O4-based nanomaterials and their application in the removal of radionuclides and heavy metal ions[D]. Progress in Chemistry, 30, 225-242(2018).

    [4] PANG H W, WANG X X, YU S J et al. Boron nitride-based materials for the removal of pollutants from aqueous solutions: a review[D]. Chemical Engineering Journal, 333, 343-360(2018).

    [5] WANG X X, YANG S T, YU S J et al. Interaction of radionuclides with natural and manmade materials using XAFS technique[D]. Science China Chemistry, 60, 170-187(2016).

    [6] LI X, LIU Y, ZHANG C L et al. Porous Fe2O3 microcubes derived from metal organic frameworks for efficient elimination of organic pollutants and heavy metal ions[D]. Chemical Engineering Journal, 336, 241-252(2018).

    [7] GU P C, LIANG Y, YAO W et al. Adsorption of radionuclide uranium onto carbon-based nanomaterials from aqueous systems[D]. Process in Chemistry, 29, 1062-1071(2017).

    [8] DU Y C, HOU R Q, WANG X K et al. In-situ growth of Nb2O5 nanorods on diatomite and highly effective removal of Cr(VI)[D]. Journal of Inorganic Materials, 33, 557-564(2018).

    [9] CHEN H J, HUANG S Y, ZHANG Z B et al. Synthesis of functional nanoscale zero-valent iron composites for the application of radioactive uranium enrichment from environment: a review[D]. Acta Chimica Sinica, 75, 560-574(2017).

    [10] DU Y, WANG J, WANG H Q et al. Research on sorption mechanism of radionuclides by manufactured nanomaterials. Journal of[D]. Agro-Environment Science, 35, 1837-1847(2016).

    [11] MA F Y, MENG H, WANG X N et al. Influence of preparation method on oxidation degree of graphene oxide and adsorption for Th(IV) and U(VI)[D]. Journal of Inorganic Materials, 31, 454-460(2016).

    [12] GU P C, WEN T, XING J L et al. Experimental and theoretical calculation investigation on efficient Pb(II) adsorption on etched Ti3AlC2 nanofibers and nanosheets[D]. Environmental Science: Nano, 5, 946-955(2018).

    [13] PANG H W, WU Y H, YAO W et al. In-situ reduction synthesis of manganese dioxide@polypyrrole core/shell nanomaterial for highly efficient enrichment of U(VI) and Eu(III)[D]. Science China Chemistry, 2018, 1-12.

    [14] SONG S, WANG X X, YIN L et al. Interaction of U(VI) with ternary layered double hydroxides by combined batch experiments and spectroscopy study[D]. Chemical Engineering Journal, 338, 579-590(2018).

    [15] WANG P Y, WANG X X, YIN L et al. L-cysteine intercalated layered double hydroxide for highly efficient capture of U(VI) from aqueous solutions[D]. Journal of Environmental Management, 217, 468-477(2018).

    [16] BAI Z L, DAI X, LIU W et al. Highly sensitive and selective uranium detection in natural water systems using a luminescent mesoporous metal-organic framework equipped with abundant lewis basic sites: a combined batch, X-ray absorption spectroscopy, and first principles simulation investigation[D]. Environmental Science & Technology, 51, 3911-3921(2017).

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

    [18] PANG H W, WU Y H, YAO W et al. Synthesis of rod-like metal-organic framework (MOF-5) nanomaterial for efficient removal of U(VI): batch experiments and spectroscopy study[D]. Science Bulletin, 63, 831-839(2018).

    [19] DROUT R J, HOWARTH A J, OTAKE K et al. Efficient capture of perrhenate and pertechnetate by a mesoporous Zr metal-organic framework and examination of anion binding motifs[D]. Chemistry of Materials, 30, 1277-1284(2018).

    [20] LI Y X, LIU Z Y, WANG Y L et al. Umbellate distortions of the uranyl coordination environment result in a stable and porous polycatenated framework that can effectively remove cesium from aqueous solutions[D]. Journal of America Chemistry Society, 137, 6144-6147(2015).

    [21] BANERJEE D, KIM D, SCHWEIGER M J et al. Removal of TcO4- ions from solution: materials and future outlook[D]. Chemical Society Reviews, 45, 2724-2739(2016).

    [22] HUANG S Y, PANG H W, WU Y H et al. Efficient elimination of U(VI) by polyethyleneimine decorated fly ash[D]. Inorganic Chemistry Frontiers, 5, 2399-2407(2018).

    [23] TAN X L, WANG X X, YU S J et al. Sorption of radionuclides from aqueous systems onto graphene oxide-based materials: a review[D]. Inorganic Chemistry Frontiers, 2, 593-612(2015).

    [24] DUAN L F, WANG L M, ZHANG Y et al. Synthesis and characterization of MnFe2O4 with different morphologies and their application in water treatment[D]. Journal of Inorganic Materials, 29, 763-768(2014).

    [25] ABNEY C W, CARBONI M, LIU S B et al. Highly porous and stable metal-organic frameworks for uranium extraction[D]. Chemical Science, 4, 2396-2402(2013).

    [26] BAI Z Q, YUAN L Y, ZHU L et al. Introduction of amino groups into acid-resistant MOFs for enhanced U(VI) sorption[D]. Journal of Materials Chemistry A, 3, 525-534(2015).

    [27] LI L N, MA W, SHEN S S et al. A combined experimental and theoretical study on the extraction of uranium by amino-derived metal-organic frameworks through post-synthetic strategy[D]. ACS Applied Materials & Interfaces, 8, 31032-31041(2016).

    [28] SHENG D P, XU C, ZHU L et al. Identifying the recognition site for selective trapping of 99TcO4- in a hydrolytically stable and radiation resistant cationic metal-organic framework[D]. Journal of America Chemistry Society, 139, 14873-14876(2017).

    [29] SHENG D P, XU C, ZHU L et al. Efficient and selective uptake of TcO4- by a cationic metal-organic framework material with open Ag+ sites[D]. Environmental Science & Technology, 51, 3471-3479(2017).

    [30] LIU Q, LIU J Y, YANG P P et al. Interfacial growth of a metal-organic framework (UiO-66) on functionalized graphene oxide (GO) as a suitable seawater adsorbent for extraction of uranium(VI)[D]. Journal of Materials Chemistry A, 5, 17933-17942(2017).

    [31] GUO W L, YUAN L Y, ZHANG N et al. Extending the use of highly porous and functionalized MOFs to Th(IV) capture[D]. ACS Applied Materials & Interfaces, 9, 25216-25224(2017).

    [32] HUANG H L, LIU D H, PENG Y G et al. Radioactive barium ion trap based on metal-organic framework for efficient and irreversible removal of barium from nuclear wastewater[D]. ACS Applied Materials & Interfaces, 8, 8527-8535(2016).

    [33] LIU J, TIAN Y, YUAN G Y et al. Schiff base anchored on metal-organic framework for Co(II) removal from aqueous solution[D]. Chemical Engineering Journal, 326, 691-699(2017).

    [34] FENG M L, GAO Y J, ZHANG B et al. An easily synthesized microporous framework material for the selective capture of radioactive Cs+ and Sr2+ ions[D]. Journal of Materials Chemistry A, 6, 3967-3976(2018).

    [35] LIANG Y, WANG X X, YAO W et al. Synthesis of novel flower-like layered double oxides/carbon dots nanocomposites for U(VI) and 241Am(III) efficient removal: batch and EXAFS studies[D]. Chemical Engineering Journal, 332, 775-786(2018).

    [36] WANG X X, WU Y H, YU S J et al. The synergistic elimination of uranium(VI) species from aqueous solution using bi-functional nanocomposite of carbon sphere and layered double hydroxide[D]. Chemical Engineering Journal, 342, 321-330(2018).

    [37] LIU Y, PANG H W, WANG X X et al. Effect of graphene oxide surface modification on the elimination of Co(II) from aqueous solutions[D]. Chemical Engineering Journal, 344, 380-390(2018).

    [38] SONG S, WANG J, YU S J et al. One-pot synthesis of graphene oxide and Ni-Al layered double hydroxides nanocomposites for the efficient removal of U(VI) from wastewater[D]. Science China Chemistry, 60, 415-422(2017).

    [39] CHEN Z S, WANG X X, YU S J et al. Interaction mechanism of radionickel on Na-montmorillonite: influences of pH, electrolyte cations, humic acid and temperature[D]. Chemical Engineering Journal, 302, 77-85(2016).

    [40] SONG S, WANG X X, YIN L et al. Rationally designed core-shell and yolk-shell magnetic titanate nanosheets for efficient U(VI) adsorption performance[D]. Environmental Pollution, 238, 725-738(2018).

    [41] GU P C, LI X, ZHANG S et al. Recent advances in layered double hydroxide-based nanomaterials for the removal of radionuclides from aqueous solution[D]. Environmental Pollution, 240, 493-505(2018).

    [42] CHEN Z S, SONG W C, WANG X X et al. Enhanced immobilization of U(VI) on Mucor circinelloides in presence of As(V): batch and XAFS investigation[D]. Environmental Pollution, 237, 228-236(2018).

    [43] FANG M, TAN L Q, TAN X L et al. Core-shell hierarchical C@Na2Ti3O7·9H2O nanostructures for the efficient removal of radionuclides[D]. Environmental Science: Nano, 5, 1140-1149(2018).

    [44] FAGHIHIAN H, NAEIMI S. Performance of novel adsorbent prepared by magnetic metal-organic framework MOF modified by potassium nickel hexacyanoferrate for removal of Cs+ from aqueous solution[D]. Separation and Purification Technology, 175, 255-265(2017).

    [45] LI X, LIU Y, ZHANG C L et al. Highly uranium elimination by crab shells-derived porous graphitic carbon nitride: batch, EXAFS and theoretical calculations[D]. Chemical Engineering Journal, 346, 406-415(2018).

    [46] HU Y Z, WANG X X, ZOU Y D et al. Superior sorption capacities of Ca-Ti and Ca-Al bimetallic oxides for U(VI) from aqueous solutions[D]. Chemical Engineering Journal, 316, 419-428(2017).

    [47] CHEN Z S, PU Z X, WANG J et al. Synthesis of magnetic Fe3O4/CFA composites for the efficient removal of U(VI) from wastewater[D]. Chemical Engineering Journal, 320, 448-457(2017).

    [48] CHEN Z S, LI X, ZHANG C L et al. Synthesis of ordered mesoporous carbonaceous materials and its highly efficient capture of uranium from solutions[D]. Science China Chemistry, 61, 281-293(2018).

    [49] LU S H, SUN Y B, WANG X X et al. Plasma-facilitated synthesis of amidoxime/carbon nanofiber hybrids for effective enrichment of 238U(VI) and 241Am(III)[D]. Environmental Science & Technology, 51, 12274-12282(2017).

    [50] WANG J, WANG X X, ZHAO G X et al. Polyvinylpyrrolidone and polyacrylamide intercalated molybdenum disulfide as adsorbents for enhanced removal of chromium(VI) from aqueous solutions[D]. Chemical Engineering Journal, 334, 569-578(2018).

    [51] SONG G, WANG X X, YANG D X et al. One-pot synthesis of arginine modified hydroxyapatite carbon microsphere composites for efficient removal of U(VI) from aqueous solutions[D]. Science Bulletin, 62, 1609-1618(2017).

    [52] HUANG S Y, SONG S, ZHANG R et al. Simultaneous removal of U(VI) and humic acid on defective TiO2-x investigated by batch and spectroscopy techniques[D]. Chemical Engineering Journal, 325, 576-587(2017).

    [53] MEI H Y, TAN L Q, TAN X L et al. Coagulation behavior of humic acid in aqueous solutions containing Cs+, Sr2+ and Eu3+: DLS, EEM and MD simulation[D]. Environmental Pollution, 235, 835-843(2018).

    [54] ZHANG N, ZHANG J Y, ZHANG L J et al. Adsorption of uranyl ions on amine-functionalization of MIL-101(Cr) nanoparticles by a facile coordination-based post-synthetic strategy and X-ray absorption spectroscopy studies[D]. Scientific Reports(2015).

    [55] GIAMMAR D E, PAN Z Z, WEN H et al. Enhanced uranium immobilization by phosphate amendment under variable geochemical and flow conditions: insights from reactive transport modeling[D]. Environmental Science & Technology, 52, 5841-5850(2018).

    [56] LAN J H, WANG L, ZHANG Y J et al. Adsorption of uranyl species on hydroxylated titanium carbide nanosheet: a first-principles study[D]. Journal of Hazardous Materials, 308, 402-410(2016).

    [57] CHEN K, WANG L, YUAN L Y et al. Loading actinides in multilayered structures for nuclear waste treatment: the first case study of uranium capture with vanadium carbide MXene[D]. ACS Applied Materials & Interfaces, 8, 16396-16403(2016).

    [58] GUI D X, YANG Z X, ZHENG T et al. Overcoming the crystallization and designability issues in the ultrastable zirconium phosphonate framework system[D]. Nature Communications, 8, 15369(2017).

    [59] , SHAO D D, SHENG G D. Effect of pH and ionic strength on sorption of Eu(III) to MX-80 bentonite: batch and XAFS study[D]. Radiochimica Acta, 97, 621-630(2009).

    [60] CHEN C L, REN X M, TAN X L et al. Analytical approaches to the speciation of lanthanides at solid-water interfaces[D]. TrAC Trends in Analytical Chemistry, 61, 107-132(2014).

    [61] CHEN J L, DANG L L, LUO F et al. High-performance Hg2+ removal from ultra-low-concentration aqueous solution using both acylamide-and hydroxyl-functionalized metal-organic framework[D]. Journal of Materials Chemistry A, 3, 9616-9620(2015).

    [62] BANERJEE D, NIE Z M, XU W Q et al. Zirconium-based metal-organic framework for removal of perrhenate from water[D]. Inorganic Chemistry, 55, 8241-8243(2016).

    [63] HOSKINS B F, ROBSON R. Infinite polymeric frameworks consisting of three dimensionally linked rod-like segments[D]. Journal of the American Chemical Society, 111, 5962-5964(1989).

    [64] JIANG J W, NALAPARAJU A. Ion exchange in metal-organic framework for water purification: insight from molecular simulation[D]. The Journal of Physical Chemistry C, 116, 6925-6931(2012).

    Tools

    Get Citation

    Copy Citation Text

    Xiang-Xue WANG, Shu-Jun YU, Xiang-Ke WANG, [in Chinese], [in Chinese], [in Chinese]. Removal of Radionuclides by Metal-organic Framework-based Materials[J]. Journal of Inorganic Materials, 2019, 34(1): 17

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Category: Research Articles

    Received: May. 7, 2018

    Accepted: --

    Published Online: Feb. 4, 2021

    The Author Email:

    DOI:10.15541/jim20180211

    Topics