[1] WAGNER F, JUNG H, HIMMELSBACH T, et al. Impact of uranium mill tailings on water resources in Mailuu Suu, Kyrgyzstan[C]//TU Bergakademie Freiberg Institute of Geology. Proceedings of the 7th International Conference on Uranium Mining and Hydrogeology, Freiberg, Germany, 2015: 487-496.
[2] RUEDIG E, JOHNSON T E. An evaluation of health risk to the public as a consequence of in situ uranium mining in Wyoming, USA[J]. Journal of Environmental Radioactivity, 2015, 150: 170-178. doi: 10.1016/j.jenvrad.2015.08.004
[3] RAMZAEY V, BARKOVSKY A, GONCHAROVA Y, et al. Radiocesium fallout in the grasslands on Sakhalin, Kunashir and Shikotan Islands due to Fukushima accident: The radioactive contamination of soil and plants in 2011[J]. Journal of Environmental Radioactivity, 2013, 118(4): 128-142.
[4] 马盼军, 王哲, 易发成, 等.某铀尾矿库周边土壤中铀元素的空间分布与污染评价[J].原子能科学技术, 2017, 51(5):956-960.
[5] 马盼军.某铀尾矿库周边土壤中核素U与重金属元素空间分布与污染评价研究[D].绵阳: 西南科技大学, 2017.http://cdmd.cnki.com.cn/Article/CDMD-10619-1017172873.htm
[6] 苏峰丙, 罗学刚, 唐永金, 等.不同含磷化合物固化修复铀污染土壤的研究[J].核农学报, 2018, 32(2): 407-415.
[7] 岳宗恺, 周启星.纳米材料在有机污染土壤修复中的应用与展望[J].农业环境科学学报, 2017, 36(10): 1929-1937. doi: 10.11654/jaes.2017-0330
[8] 刘蕊, 周启星, 马奇英.纳米材料在污染水体和土壤修复中的应用[J].生态学杂志, 2010, 29(9): 1852-1859.
[9] GILDIAZ M, PEREZSANZ A, VICENTE M, et al. Immobilisation of Pb and Zn in soils using stabilised zero‐valent iron nanoparticles: Effects on soil properties[J]. Clean-Soil Air Water, 2015, 42(12): 1776-1784.
[10] GILDIAZ M, DIEZPASCUAL S, GONZALEZ A, et al. A nanoremediation strategy for the recovery of an As-polluted soil[J]. Chemosphere, 2016, 149: 137-145. doi: 10.1016/j.chemosphere.2016.01.106
[11] GIL-DIAZ M, ALONSO J, RODRIGUEZ-VALDES E, et al. Comparing different commercial zero valent iron nanoparticles to immobilize As and Hg in brownfield soil[J]. Science of the Total Environment, 2017, 584-585: 1324-1332. doi: 10.1016/j.scitotenv.2017.02.011
[12] VITKOVA M, RAKOSOVA S, MICHALKOVA Z, et al. Metalloids behaviour in soils amended with nano zero-valent iron as a function of pH and time[J]. Journal of Environmental Management, 2017, 186(Pt2): 268-276.
[13] ZHANG Z, LIU J, CAO X, et al. Comparison of U(Ⅵ) adsorption onto nanoscale zero-valent iron and red soil in the presence of U(Ⅵ)-CO3/Ca-U(Ⅵ)-CO3 complexes[J]. Journal of Hazardous Materials, 2015, 300(77): 633-642.
[14] 吴烈善, 曾东梅, 莫小荣, 等.不同钝化剂对重金属污染土壤稳定化效应的研究[J].环境科学, 2015, 36(1): 309-313.
[15] US ENVIRONMENTAL PROTECTION AGENCY. Toxicity characteristic leaching procedure: SW-846-method1311[S]. Washington D C: US Environmental Protection Agency, 1992.
[16] TESSIER A, CAMPBELL P G C, BISSON M. Sequential extraction procedure for the speciation of particulate trace metals[J]. Analytical Chemistry, 1979, 51(7): 844-851. doi: 10.1021/ac50043a017
[17] 张彬, 冯志刚, 马强, 等.广东某铀废石堆周边土壤中铀污染特征及其环境有效性[J].生态环境学报, 2015, 24(1):156-162.
[18] WANG Y, SALVAGE K. Immobilization of uranium in the presence of Fe0(s): Model development and simulation of contrasting experimental conditions[J]. Applied Geochemistry, 2005, 20(7): 1268-1283. doi: 10.1016/j.apgeochem.2005.02.006
[19] HANAUER T, FELIX-HENNINGSEN P, STEFFENS D, et al. In situ stabilization of metals (Cu, Cd, and Zn) in contaminated soils in the region of Bolnisi, Georgia[J]. Plant & Soil, 2011, 341(1/2): 193-208.
[20] IWEGBUE C M. Metal fractionation in soil profiles at automobile mechanic waste dumps[J]. Waste Management & Research, 2007, 25(6): 585-593.
[21] 李小燕, 刘义保, 花明, 等.纳米零价铁去除溶液中U(Ⅵ)的研究[J].核动力工程, 2013, 34(2): 160-163. doi: 10.3969/j.issn.0258-0926.2013.02.038
[22] 周书葵, 侯康龙, 刘迎九, 等.不同固定剂对铀尾矿库中铀稳定效果的实验研究[J].原子能科学技术, 2018, 52(4):583-589.
[23] LI X, LIU Y, LI X, et al. Removal of U(Ⅵ) in aqueous solution by nanoscale zero-valent iron(nZVI)[J]. Water Quality Exposure & Health, 2013, 5(1): 31-40.
[24] LANDSBERGER S, TAMALIS D, MEADOWS T, et al. Leaching dynamics of uranium in a contaminated soil site[J]. Journal of Radioanalytical and Nuclear Chemistry, 2013, 296(1): 319-322. doi: 10.1007/s10967-012-2187-y
[25] MALLAMPATI S R, MITOMA Y, OKUDA T, et al. Total immobilization of soil heavy metals with nano-Fe/Ca/CaO dispersion mixtures[J]. Environmental Chemistry Letters, 2013, 11(2): 119-125. doi: 10.1007/s10311-012-0384-0
[26] LI Z J, WANG L, YUAN L Y, et al. Efficient removal of uranium from aqueous solution by zero-valent iron nanoparticle and its graphene composite[J]. Journal of Hazardous Materials, 2015, 290: 26-33. doi: 10.1016/j.jhazmat.2015.02.028
[27] O'CARROLL D, SLEEP B, KROL M, et al. Nanoscale zero valent iron and bimetallic particles for contaminated site remediation[J]. Advances in Water Resources, 2013, 51(1): 104-122.