[1]柯平超,吴天楠,刘亚洁,等.含铀废水处理技术进展[J].工业水处理,2023,43(9):20-31.
[2]魏广芝,徐乐昌.低浓度含铀废水的处理技术及其研究进展[J].铀矿冶,2007,26(2):90-95.
[3]张晗,闫大海,刘鹏飞.核能放射性污染研究[J].舰船科学技术,2018,40(19):78-81.
[4]张巍.膨润土在水污染治理中吸附无机污染物的应用进展[J].工业水处理,2018,38(11):10-16.
[5]王新宇.富磷水体中铀的赋存形态与分配研究[D].成都:成都理工大学,2014.
[6]彭国文.新型功能化吸附剂的制备及其吸附铀的试验研究[D].长沙:中南大学,2014.
[7]孙绍帅.葫芦脲复合材料的制备及其对核素铀吸附性能的研究[D].长春:吉林大学,2022.
[8]李周,李鹏翔,马旭媛,等.环境样品中铀同位素分析方法研究进展[J].四川环境,2021,40(5):262-268.
[9]商照荣.贫化铀的环境污染影响及其对人体健康的危害[J].辐射防护,2005,25(1):56-61.
[10]张辉.功能化吸附材料的制备及其吸附低浓度铀的行为与机理[D].衡阳:南华大学,2020.
[11]覃国秀,周佐,徐永壮,等.某铀矿山废水中放射性核素对周边环境地表水的影响[J].世界核地质科学,2019,36(4):243-246.
[12]SANIRK,PEYTONBM,DOHNALKOVAA.Comparisonofuranium(Ⅵ)removalbyShewanellaoneidensisMR-1inflowandbatchreactors[J].WaterResearch,2008,42(12):2993-3002.
[13]刘岳林.Cu2+对硫酸盐还原菌处理低浓度含铀废水的影响与机理试验研究[D].衡阳:南华大学,2011.
[14]林莹,高柏,李元锋.核工业低浓度含铀废水处理技术进展[J].山东化工,2009,38(3):35-38.
[15]汪爱河,张伟,胡凯光,等.ZVI-SRB协同处理铀废水的正交实验研究[J].矿业工程研究,2011,26(3):60-63.
[16]ZHANGHS,LIUQ,WANGJ,etal.Preparationofmagneticcalciumsilicatehydratefortheefficientremovalofuranium from aqueoussystems[J].RSCAdvances,2015,5(8):5904-5912.
[17]PAPYNOVEK,PORTNYAGINAS,CHEREDNICHENKOAI,etal.Uranium sorptiononreducedporousironoxides[J].DokladyPhysicalChemistry,2016,468:67-71.
[18]HAGAGM SA.ComparativestudyoffabricatedcompositesbasedonphosphogypsumandAl-hydroxideforuranium separationfromaqueousandwastesolutions[J].InternationalJournalofEnvironmentalAnalyticalChemistry,2021,101(5):680-701.
[19]路艳,边宇博,汪兆金.吸附沉淀法处理含铀废水试验研究与应用[J].核科学与工程,2018,38(5):864-871.
[20]高旭,李鹏,王学刚,等.絮凝与电絮凝对含铀废水的处理效果对比[J].环境工程学报,2018,12(2):488-496.
[21]刘欢欢.二维过渡金属氧族半导体的表面氢调控及其对铀的限域催化还原研究[D].绵阳:西南科技大学,2022.
[22]张汉铭.内电解工艺在废水处理中的研究进展[J].广东化工,2010,37(9):118-119,122.
[23]SHAODD,HOUGS,LIJX,etal.PANI/GOasasuperadsorbentfortheselectiveadsorptionofuranium(Ⅵ)[J].ChemicalEngineeringJournal,2014,255:604-612.
[24]王子鸣,赵家印,秦凯文,等.功能化三维石墨烯复合气凝胶对U(Ⅵ)的吸附行为[J].复合材料学报,2023,40(11):6138-6152.
[25]ZHANGQ,WANGYY,WANGZ,etal.Activebiocharsupportnanozero-valentironforefficientremovalofU(Ⅵ)fromsewagewater[J].JournalofAlloysandCompounds,2021,852:156993.
[26]ZHUKR,CHENCL,XUMW C,etal.InsitucarbothermalreductionsynthesisofFenanocrystalsembeddedintoN-dopedcarbonnano-spheresforhighlyefficientU(Ⅵ)adsorptionandreduction[J].ChemicalEngineeringJournal,2018,331:395-405.
[27]TANGHP,CHENGW C,YIYP,etal.Nanozerovalentironencap-sulatedingrapheneoxideforreducinguranium[J].Chemosphere,2021,278:130229.
[28]杨旭,历新宇,周娟苹,等.含重金属离子废水处理技术研究进展[J].材料导报,2023,37(9):1-19.
[29]TORKABADMG,KESHTKARAR,SAFDARISJ.Comparisonofpolyethersulfoneandpolyamidenanofiltrationmembranesforuraniumremovalfrom aqueoussolution[J].Progressin NuclearEnergy,2017,94:93-100.
[30]WANGYL,LONGJ,XUWJ,etal.Removalofuranium(Ⅵ)fromsimulatedwastewaterbyanovelporousmembranebasedoncrosslinkedchitosan,UiO-66-NH2 andpolyvinylalcohol[J].JournalofRadioanalyticalandNuclearChemistry,2021,328:397-410.
[31]汪萍,吕彩霞,盛青,等.含铀废水处理技术的研究进展[J].现代化工,2016,36(12):23-27.
[32]李建华,王红英,程威,等.离子交换纤维处理含铀矿井水[J].铀矿冶,2012,31(2):100-102.
[33]赵春,王彬,汪时沛,等.离子交换树脂吸附法去除某铀矿山废水中的铀[J].矿冶,2020,29(6):83-86.
[34]郭栋清,李静,张利波,等.核工业含铀废水处理技术进展[J].工业水处理,2019,39(1):14-20.
[35]张永康,沙沙,陈莉,等.放射性废水远红外蒸发处理装置研制[J].辐射防护,2016,36(1):53-59.
[36]刘金平,何辉,叶国安.后处理厂硝酸回收及放射性液体最小化的蒸发浓缩技术[J].核化学与放射化学,2015,37(1):1-10.
[37]曾志伟,王攀,战景明,等.碳纤维蒸发帘强化蒸发池低放射性废水自然蒸发[J].工业水处理,2022,42(10):160-165.
[38]宋超前,刘杰,贾明辉,等.新兴萃取技术处理废水中低浓度Cr(Ⅵ)的研究进展[J].稀有金属材料与工程,2022,51(11):4333-4346.
[39]ELSHAHATMF,KAMALMH,GHAZALLARAE,etal.Recoveryofuranium from itsconcentratedsolutionbytri-octylamineusingpulsedcolumn[J].ChineseJournalofInorganicChemistry,2016,32:1427-1433.
[40]龙亮,郑楠,刘书衡,等.从高磷酸含铀废液中回收铀的试验研究[J].铀矿冶,2018,37(4):304-308.
[41]ORABIA H,MOHAMED B T,ISMAIELD A,etal.Sequentialseparationandselectiveextractionofuranium andthorium frommonazitesulfateleachliquorusingdipropylamineextractant[J].MineralsEngineering,2021,172:107151.
[42]JIANGJ,LUOHH,WANGSF,etal.Atwo-dimensionalanalyticalmodelforheavy metalcontaminantstransportinpermeablereactivebarrier[J].WaterScienceandTechnology,2023,87(2):393-406.
[43]ZHANGWM,LIUHY,FANXR,etal.RemovalofuraniumfromaqueoussolutionbyapermeablereactivebarrierloadedwithHydroxyapatite-coatedquartzsand:Implicationforgroundwaterremediation[J].Geochemistry,2020,80(4):125545.
[44]李艳梅,高柏,马文洁,等.可渗透反应墙技术修复铀矿区地下水中铀锰进展[J].水处理技术,2020,46(10):12-16,24.
[45]WANG X,LIU Q,LIU JY,etal.3Dself-assemblypolyethyleneiminemodifiedgrapheneoxidehydrogelfortheextractionofuraniumfromaqueoussolution[J].AppliedSurfaceScience,2017,426:
1063-1074.
[46]陈雨昕,雷治武,郭昊童,等.土著微生物菌群对某模拟铀尾矿废水中U(Ⅵ)和Zn(Ⅱ)的去除机制[J].中国有色冶金,2023,52(3):74-80.
[47]崔志成,付亮,赵琦,等.铁还原菌在水资源再生与能源转化领域的研究进展[J].微生物学报,2021,61(8):2219-2235.
[48]闻倩敏,秦永丽,郑君健,等.硫酸盐还原菌法固定酸性矿山废水中重金属的研究进展[J].化工进展,2022,41(10):5578-5587.
[49]郝春博,张洪勋,白志辉,等.酸性矿山废水区域沉积物中嗜酸菌多样性研究[J].环境科学,2006,27(11):2255-2260.
[50]VANROYS,EYSK,DRESSELAERST,etal.TheuseofanAlcali-geneseutrophusbiofilminamembranebioreactorforheavymetalrecovery[J].ResearchinMicrobiology,1997,148(6):526-528.
[51]周琳,董发勤,张伟,等.基于光谱学分析的生物磷参与暹罗芽孢杆菌对铀的去除行为及机制研究[J].光谱学与光谱分析,2020,40(1):22-28.
[52]田丽丽,王鑫.地杆菌属微生物在厌氧污水处理中的应用潜力[J].给水排水,2020,56(增刊2):201-206.
[53]钟娟,刘兴宇,张明江,等.铀污染的微生物修复技术研究进展[J].稀有金属,2021,45(1):93-105.
[54]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):215-225.
[55]LIL,XUM Z,CHUBIKM,etal.Entrapmentofradioactiveuraniumfrom wastewaterbyusingfungusFe3O4bio-nanocomposites[J].RSCAdvances,2015,5(52):41611-41616.
[56]陈天宇,孙敏,冯红.嗜麦芽糖寡养单胞菌H002对铀的生物吸附[J].四川大学学报(自然科学版),2021,58(5):145-151.
[57]王国华,刘颖,王家莉,等.土著菌群还原矿化修复铀污染地下水[J].过程工程学报,2023,23(1):88-97.
[58]黄德娟,朱业安,余月,等.铀污染环境治理中的植物修复研究[J].铀矿冶,2012,31(4):202-206.
[59]WILLSCHER S,MIRGORODSKY D,JABLONSKIL,etal.Fieldscalephytoremediationexperimentsonaheavymetalanduraniumcontaminatedsite,andfurtherutilizationoftheplantresidues[J].Hydrometallurgy,2013,131:46-53.
[60]JAGETIYAB,SHARMA A.Optimizationofchelatorstoenhanceuranium uptakefromtailingsforphytoremediation[J].Chemosphere,2013,91(5):692-696.
[61]MIHALKJ,TLUSTOP,SZAKOVJ.Comparisonofwillowandsunflowerforuranium phytoextractioninducedbycitricacid[J].JournalofRadioanalyticalandNuclearChemistry,2010,285(2):279-285.
[62]CHENB,ROOSP,ZHUYG,etal.Arbuscularmycorrhizascontri-butetophytostabilizationofuraniuminuraniumminingtailings[J].JournalofEnvironmentalRadioactivity,2008,99(5):801-810.
[63]何柳.合果芋-内生菌共生体系修复低浓度铀污染废水的实验研究[D].衡阳:南华大学,2020.
[64]DUSHENKOVS.Trendsinphytoremediationofradionuclides[J].PlantandSoil,2003,249:167-175.
[65]胡南,丁德馨,李广悦,等.五种水生植物对水中铀的去除作用[J].环境科学学报,2012,32(7):1637-1645.
[66]丁德馨,谭国炽,曾晓娜,等.3种植物-人工湿地对铀尾矿库浸渍水修复效果比较[J].工业水处理,2022,42(1):126-132,142.
[67]姜淑娟,宋少青,卢长海,等.光催化还原去除重金属铬Cr(Ⅵ)和铀U(Ⅵ)的研究进展[J].东华理工大学学报(自然科学版),2017,40(1):88-92.
[68]秦泽敏.石墨相氮化碳基材料光催化还原除铀研究进展[J].硅酸盐通报,2022,41(12):4458-4468.
[69]LIP,WANG Y,WANG J,etal.Carboxylgroupsong-C3N4forboostingthephotocatalyticU(Ⅵ)reductioninthepresenceofcarbonates[J].ChemicalEngineeringJournal,2021,414:128810.
[70]CHENLJ,GAOY,LIANJJ,etal.Efficientphotoreductionremovalofuranium(Ⅵ)byO,Kco-dopedg-C3N4 underairatmospherewithoutsacrificialagents[J].SeparationandPurificationTechnology,2023,307:122873.
[71]洪佳辉,马冉,仵云超,等.MOFs自牺牲模板法制备CoNx/g-C3N4纳米材料用作高效光催化还原U(Ⅵ)[J].无机材料学报,2022,37(7):741-749.
[72]余丽胜,李晓霞,焦纬洲,等.超声协同Fenton法处理有机废水的研究进展[J].化工环保,2017,37(1):38-42.
[73]郭晓东,常玉珍,许德杰.超声波法处理含铀废水工艺研究与应用[C]∥中国核学会.中国核科学技术进展报告(第五卷)——中国核学会2017年学术年会论文集第6册(核化工分卷?核化学与放射化学分卷?辐射物理分卷).北京:中国原子能出版社,2017:143-146.
[74]王贤磊,李峰,张辉,等.酸法地浸采铀退役采区地下水二步修复法[J].有色金属工程,2021,11(10):136-142.