[1] MA Q, FENG Z G, LIU P, et al. Uranium speciation and in situ leaching of a sandstone-type deposit from China[J]. Journal of Radioanalytical and Nuclear Chemistry, 2017, 311(3): 2129-2134. doi: 10.1007/s10967-016-5154-1
[2] PEREIRA R, BARBOSA S, CARVALHO F P. Uranium mining in Portugal: A review of the environmental legacies of the largest mines and environmental and human health impacts[J]. Environmental Geochemistry and Health, 2014, 36(2): 285-301. doi: 10.1007/s10653-013-9563-6
[3] MONTI M M, DAVID F, SHIN M, et al. Community drinking water data on the national environmental public health tracking network: a surveillance summary of data from 2000 to 2010[J]. Environmental Monitoring and Assessment, 2019, 191(9): 557. doi: 10.1007/s10661-019-7710-y
[4] YIN M, SUN J, CHEN Y, et al. Mechanism of uranium release from uranium mill tailings under long-term exposure to simulated acid rain: geochemical evidence and environmental implication[J]. Environmental Pollution, 2019, 244: 174-181. doi: 10.1016/j.envpol.2018.10.018
[5] SAUNDERS J A, PIVETZ B E, VOORHIES N, et al. Potential aquifer vulnerability in regions down-gradient from uranium in situ recovery (ISR) sites[J]. Journal of Environmental Management, 2016, 183: 67-83.
[6] BJORKLUND G, SEMENOVA Y, PIVINA L, et al. Uranium in drinking water: a public health threat[J]. Archives of Toxicology, 2020, 94(5): 1551-1560. doi: 10.1007/s00204-020-02676-8
[7] NOLAN J, WEBER K A. Natural uranium contamination in major US aquifers linked to nitrate[J]. Environmental Science & Technology Letters, 2015, 2(8): 215-220.
[8] NEWSOME L, MORRIS K, LLOYD J R. The biogeochemistry and bioremediation of uranium and other priority radionuclides[J]. Chemical Geology, 2014, 363: 164-184. doi: 10.1016/j.chemgeo.2013.10.034
[9] JROUNDI F, DESCOSTES M, POVEDANO P C, et al. Profiling native aquifer bacteria in a uranium roll-front deposit and their role in biogeochemical cycle dynamics: insights regarding in situ recovery mining[J]. Science of the Total Environment, 2020,https://doi.org/10.1016/j.scitotenv.2020.137758.
[10] CHANG Y J, PEACOCK A D, LONG P E, et al. Diversity and characterization of sulfate-reducing bacteria in groundwater at a uranium mill tailings site[J]. Applied and environmental microbiology, 2001, 67(7): 3149-3160. doi: 10.1128/AEM.67.7.3149-3160.2001
[11] REIMUS P W, DANGELMAYR M A, CLAY J T, et al. Uranium natural attenuation downgradient of an in situ recovery mine inferred from a cross-hole field test[J]. Environmental Science & Technology, 2019, 53(13): 7483-7493.
[12] BORCH T, ROCHE N, JOHNSON T E. Determination of contaminant levels and remediation efficacy in groundwater at a former in situ recovery uranium mine[J]. Journal of Environmental Monitoring, 2012, 14(7): 1814-1823. doi: 10.1039/c2em30077j
[13] 孙占学, 马文洁, 刘亚洁, 等. 地浸采铀矿山地下水环境修复研究进展[J]. 地学前缘, 2021, 28(5): 1-10.
[14] 陈约余, 张辉, 胡南, 等. 地浸采铀地下水修复技术研究进展[J]. 矿业研究与开发, 2021, 41(2): 149-154.
[15] 牛洁, 张学礼. 捷克Straz地浸铀矿山地下水恢复治理介绍[J]. 铀矿冶, 2016, 35(2): 110-117.
[16] FINNERAN K T, ANDERSON R T, NEVIN K P, et al. Potential for bioremediation of uranium-contaminated aquifers with microbial U(VI) reduction[J]. Soil and Sediment Contamination:An International Journal, 2002, 11(3): 339-357. doi: 10.1080/20025891106781
[17] ANDERSON R T, VRIONIS H A, ORTIZ B I, et al. Stimulating the in situ activity of geobacter species to remove uranium from the groundwater of a uranium-contaminated aquifer[J]. Applied and environmental microbiology, 2003, 69(10): 5884-5891. doi: 10.1128/AEM.69.10.5884-5891.2003
[18] 张伟, 董发勤, 杨杰, 等. 三种非活性微生物对铀的吸附行为及其受γ辐照的动力学影响[J]. 核化学与放射化学, 2018, 40(4): 258-266. doi: 10.7538/hhx.2018.YX.2017038
[19] SIVASWAMY V, BOYANOV M I, PEYTON B M, et al. Multiple mechanisms of uranium immobilization by cellulomonas sp strain ES6[J]. Biotechnology and Bioengineering, 2011, 108(2): 264-276. doi: 10.1002/bit.22956
[20] 张健, 宋晗, 邓洪, 等. 铀与微生物相互作用研究进展[J]. 矿物岩石地球化学通报, 2018, 37(1): 55-62+158-159.
[21] 张露, 刘峙嵘. 微生物法处理低浓度含铀废水研究[J]. 环境工程, 2017, 35(12): 36-40.
[22] ZOU W, ZHAO L, HAN R P. Removal of uranium (VI) by fixed bed ion-exchange column using natural zeolite coated with manganese oxide[J]. Chinese Journal of Chemical Engineering, 2009, 17(4): 585-593. doi: 10.1016/S1004-9541(08)60248-7
[23] 许智慧, 李宏星, 胥国龙. 用纳滤膜从酸性溶液中富集铀的可行性研究[J]. 铀矿冶, 2018, 37(1): 37-41.
[24] 张洪灿. 化学中和法和生物法联合治理酸法地浸采铀矿山污染地下水实验研究[D]. 衡阳: 南华大学, 2013.
[25] DOUGLAS G, SHACKLETON M, WOODS P. Hydrotalcite formation facilitates effective contaminant and radionuclide removal from acidic uranium mine barren lixiviant[J]. Applied Geochemistry, 2014, 42: 27-37. doi: 10.1016/j.apgeochem.2013.12.018
[26] 魏榕, 黄健. 酸性矿山废水的污染与处理研究[J]. 能源与环境, 2006, 2: 31-33.
[27] MERKEL B, SCHIPEK M. Neutralisation and trace element removal from beverley in-situ recovery uranium mine barren lixiviant via hydrotalcite formation[J]. The New Uranium Mining Boom, 2012, 12: 101-109.
[28] SU M, TSANG D C, REN X, et al. Removal of U(VI) from nuclear mining effluent by porous hydroxyapatite: evaluation on characteristics, mechanisms and performance[J]. Environmental Pollution, 2019,https://doi.org/10.1016/j.envpol.2019.07.059.
[29] LAMMERS L N, RASMUSSEN H, ADILMAN D, et al. Groundwater uranium stabilization by a metastable hydroxyapatite[J]. Applied Geochemistry, 2017, 84: 105-113. doi: 10.1016/j.apgeochem.2017.06.001
[30] RUIZ O, THOMSON B, CERRATO J M, et al. Groundwater restoration following in-situ recovery (ISR) mining of uranium[J]. Applied Geochemistry, 2019,https://doi.org/10.1016/j.apgeochem.2019.104418.
[31] SODERHOLM L, SKANTHAKUMAR S, GORMAN L D, et al. Characterizing solution and solid-phase amorphous uranyl silicates[J]. Geochimica Et Cosmochimica Acta, 2008, 72(1): 140-150. doi: 10.1016/j.gca.2007.10.002
[32] WEN H, PAN Z, GIAMMAR D, et al. Enhanced uranium immobilization by phosphate amendment under variable geochemical and flow conditions: insights from reactive transport modeling[J]. Environmental Science & Technology, 2018, 52(10): 5841-5850.
[33] MEHTA V S, MAILLOT F, WANG Z, et al. Effect of co-solutes on the products and solubility of uranium(VI) precipitated with phosphate[J]. Chemical Geology, 2014, 364: 66-75. doi: 10.1016/j.chemgeo.2013.12.002
[34] KANEMATSU M, PERDRIAL N, UM W Y, et al. Influence of phosphate and silica on U(VI) precipitation from acidic and neutralized wastewaters[J]. Environmental Science & Technology, 2014, 48(11): 6097-6106.
[35] SEMIAO A J, ROSSITER H M, SCHAEFER A I. Impact of organic matter and speciation on the behaviour of uranium in submerged ultrafiltration[J]. Journal of Membrane Science, 2010, 348(1-2): 174-180. doi: 10.1016/j.memsci.2009.10.056
[36] ANTONINA P K, LYUDMILA Y Y, IRINA D A, et al. Ultrafiltration removal of U(VI) from contaminated water[J]. Desalination, 2004, 162(1): 229-236.
[37] MEHTA V S, MAILLOT F, WANG Z, et al. Effect of reaction pathway on the extent and mechanism of uranium(VI) immobilization with calcium and phosphate[J]. Environmental Science & Technology, 2016, 50(6): 3128-3136.
[38] ROUT S, KUMAR A, RAVI P M, et al. Understanding the solid phase chemical fractionation of uranium in soil and effect of ageing[J]. Journal of Hazardous Materials, 2016, 317: 457-465. doi: 10.1016/j.jhazmat.2016.05.082
[39] 雷鸣, 廖柏寒, 秦普丰. 土壤重金属化学形态的生物可利用性评价[J]. 生态环境, 2007, 5: 1551-1556.
[40] LIU K, LUO L, LUO L, et al. Initial oxidation behaviors of nitride surfaces of uranium by XPS analysis[J]. Applied Surface Science, 2013, 280: 268-272. doi: 10.1016/j.apsusc.2013.04.147
[41] HAYCOCK D, URCH D S, GARNER C D. Electronic structure of the octachlorodimolybdenum(II) anion using X-ray emission and X-ray photoelectron spectroscopies[J]. Journal of Electron Spectroscopy & Related Phenomena, 1979, 17(5): 345-352.
[42] EJIMA T, SATO S, SUZUKI S, et al. Line shapes of the XPS U 4f spectra in some uranium compounds[J]. Physical review. B, Condensed matter, 1996, 53(4): 1806-1813. doi: 10.1103/PhysRevB.53.1806