• Journal of Inorganic Materials
  • Vol. 37, Issue 4, 395 (2022)
References

[1] D A GIANNAKOUDAKIS, I ANASTOPOULOS, M BARCZAK et al. Enhanced uranium removal from acidic wastewater by phosphonate-functionalized ordered mesoporous silica: surface chemistry matters the most. Journal of Hazardous Materials, 413, 125279(2021).

[2] J Q WANG, H W PANG, H TANG et al. Study on the removal of U(VI) in water by carbon supported zero valent iron prepared by carbothermal reduction method. Journal of Inorganic Materials, 35, 373-380(2020).

[3] Z B ZHANG, R Z ZHOU, Z M DONG et al. Effect of amidoxime hydrothermal carbon on U(VI)-CO3/Ca- U(VI)-CO3. Journal of Inorganic Materials, 35, 352-358(2020).

[4] E SALAMA, S U EL-KAMEESY, R ELRAWI. Depleted uranium assessment and natural radioactivity monitoring in north west of Iraq over a decade since the last gulf war.. Journal of Environmental Radioactivity, 201, 25-31(2019).

[5] P VENU-BABU, E SUSAN. High efficiency phytoextraction of uranium using vetiveria zizanioides L. Nash. International Journal of Phytoremediation, 22, 1137-1146(2020).

[6] S Y YANG, Q LI, L CHEN et al. Synergistic removal and reduction of U(VI) and Cr(VI) by Fe3S4 micro-crystal. Chemical Engineering Journal, 385, 123909(2020).

[7] X L WANG, M J THOMAS, C L CRAIG. Low temperature equilibrium isotope fractionation and isotope exchange kinetics between U(IV) and U(VI). Geochimica et Cosmochimica Acta, 158, 262-275(2015).

[8] S SUDESHNA, B HIRAKENDU, S ROUT et al. Nanohydroxyapatite coated activated carbon impregnated alginate: a new hybrid sorbent for uranium removal from potable water. Journal of Environmental Chemical Engineering, 8, 103999(2020).

[9] S J YU, X X WANG, Y F LIU et al. Efficient removal of uranium(VI) by layered double hydroxides supported nanoscale zero-valent iron: a combined experimental and spectroscopic studies. Chemical Engineering Journal, 365, 51-59(2019).

[10] Y M DAI, L M ZHOU, X H TANG et al. Macroporous ion-imprinted chitosan foams for the selective biosorption of U(VI) from aqueous solution. International Journal of Biological Macromolecules, 164, 4155-4164(2020).

[11] D H MA, J J WEI, Y S ZHAO et al. The removal of uranium using novel temperature sensitive urea-formaldehyde resin: adsorption and fast regeneration. Science of the Total Environment, 735:, 139399(2020).

[12] W LU, Z R DAI, L LI et al. Preparation of composite hydrogel (PCG)and its adsorption performance for uranium(VI). Journal of Molecular Liquids, 303, 112604(2020).

[13] Y H WU, D Y CHEN, L J KONG et al. Rapid and effective removal of uranium(VI) from aqueous solution by facile synthesized hierarchical hollow hydroxyapatite microspheres. Journal of Hazardous Materials, 371, 397-405(2019).

[14] Q P SHI, M H SU, G YUVARAJA et al. Development of highly efficient bundle-like hydroxyapatite towards abatement of aqueous U(VI) ions: mechanism and economic assessment. Journal of Hazardous Materials, 394, 122550(2020).

[15] R P HAN, W H ZOU, Y WANG et al. Removal of uranium (VI) from aqueous solutions by manganese oxide coated zeolite: discussion of adsorption isotherms and pH effect. Journal of Environmental Radioactivity, 93, 127-143(2007).

[16] L M CAMACHO, S G DENG, R R PARRA. Uranium removal from groundwater by natural clinoptilolite zeolite: effects of pH and initial feed concentration. Journal of Hazardous Materials, 175, 393-398(2010).

[17] P F ZONG, X Y WU, J Y GOU et al. Immobilization and recovery of uranium (VI) using Na-bentonite from aqueous medium: equilibrium, kinetics and thermodynamics studies. Journal of Molecular Liquids, 209, 358-366(2015).

[18] F HOUHOUNE, D NIBOU, S CHEGROUCHE et al. Behaviour of modified hexadecyltrimethylammonium bromide bentonite toward uranium species. Journal of Environmental Chemical Engineering, 4, 3459-3467(2016).

[19] E MARIA, P IOANNIS. A comparative study of the adsorption of uranium on commercial and natural (Cypriot) sea sand samples. Journal of Radioanalytical and Nuclear Chemistry, 298, 1111-1116(2013).

[20] W HU, Z X ZHANG, M X LI et al. Enhanced uptake capacity for uranium (VI) in aqueous solutions by activated natural siderite: performance and mechanism. Applied Geochemistry, 100, 96-103(2019).

[21] A BENGTSSON, A SHCHUKAREV, P PERSSON et al. Phase transformations, ion-exchange, adsorption, and dissolution processes in aquatic fluorapatite systems. Langmuir, 25, 2355-2362(2009).

[22] V M VALYASHKO, L N KOGARKO, I L KHODAKOVSKIY. Stability of fluorapatite, chlorapatite and hydroxylapatite in aqueous solutions at different temperatures. Geochemistry International, 5, 21-30(1968).

[23] Y HUANG, H B ZHANG, X S ZHOU et al. Synthesis and microstructure of fluorapatite-type Ca10-2xSmxNax(PO4)6F2 solid solutions for immobilization of trivalent minor actinide. Journal of Nuclear Materials, 485, 105-112(2017).

[24] R BROS, J CARPENA, V SERE et al. Occurrence of Pu and fissiogenic REE in hydrothermal apatites from the fossil nuclear reactor 16 at Oklo (Gabon). Radiochimica Acta, 74, 277-282(2013).

[25] J CHAUMONT, S SOULET, J C KRUPA et al. Competition between disorder creation and annealing in fluoroapatite nuclear waste forms. Journal of Nuclear Materials, 301, 122-128(2002).

[26] E C MORENO, M KRESAK, R T ZAHRADNIK. Fluoridated hydroxyapatite solubility and caries formation. Nature, 247, 64-65(1974).

[27] X N GAO, Y HUANG, Y C TENG et al. Fabrication and chemical durability of hot-pressed Na-bearing fluorapatite-type Ca8Sm1Na1(PO4)6F2 ceramic for immobilization of trivalent minor actinide. Journal of Nuclear Materials, 507, 297-305(2018).

[28] T OHNUKI, N KOZAI, M SAMADFAM et al. The formation of autunite (Ca(UO2)2(PO4)2nH2O) within the leached layer of dissolving apatite: incorporation mechanism of uranium by apatite. Chemical Geology, 211, 1-14(2004).

[29] M H FATHI, Z E MOHAMMADI. Mechanical alloying synthesis and bioactivity evaluation of nanocrystalline fluoridated hydroxyapatite. Journal of Crystal Growth, 311, 1392-1403(2008).

[30] R M TROMMER, L A SANTOS, C P BERGMANN. Alternative technique for hydroxyapatite coatings. Surface & Coatings Technology, 201, 9587-9593(2007).

[31] M N HAN, L J KONG, X L HU et al. Phase migration and transformation of uranium in mineralized immobilization by wasted bio-hydroxyapatite. Journal of Cleaner Production, 197, 886-894(2018).

[32] P WOJCIECH, R WLADYSLAW, P ANITA. Theoretical models of sorption kinetics including a surface reaction mechanism: a review. Advances in Colloid and Interface Science, 152, 2-13(2009).

[33] I LANGMUIR. The adsorption of gases on plane surfaces of glass, mica and platinum. Journal of the American Chemical Society, 40, 1361-1403(1918).

[34] H FREUNDLICH. Über die adsorption in lösungen. Zeitschrift für Physikalische Chemie, 57, 385-471(1906).

[35] Z X ZHANG, H B LIU, W C SONG et al. Accumulation of U(VI) on the Pantoea sp. TW18 isolated from radionuclide-contaminated soils. Journal of Environmental Radioactivity, 192, 219-226(2018).

[36] M X LI, H B LIU, T H CHEN et al. Synthesis of magnetic biochar composites for enhanced uranium (VI) adsorption. Science of the Total Environment, 651, 1020-1028(2018).

[37] N C ZHENG, L Y YIN, M H SU et al. Synthesis of shape and structure-dependent hydroxyapatite nanostructures as a superior adsorbent for removal of U(VI). Chemical Engineering Journal, 384, 123262(2020).