[1]

Hoffert MI, Caldeira K, Benford G, Criswell DR, Green C, et al. 2002. Advanced technology paths to global climate stability: energy for a greenhouse planet. science 298:981−987

doi: 10.1126/science.1072357
[2]

Chu S, Majumdar A. 2012. Opportunities and challenges for a sustainable energy future. Nature 488:294−303

doi: 10.1038/nature11475
[3]

Adamantiades A, Kessides I. 2009. Nuclear power for sustainable development: current status and future prospects. Energy Policy 37:5149−5166

doi: 10.1016/j.enpol.2009.07.052
[4]

Degueldre C, Bertsch J, Kuri G, Martin M. 2011. Nuclear fuel in generation II and III reactors: research issues related to high burn-up. Energy & Environmental Science 4:1651−1661

doi: 10.1039/c0ee00476f
[5]

Mayer K, Wallenius M, Lützenkirchen K, Horta J, Nicholl A, et al. 2015. Uranium from german nuclear power projects of the 1940s − a nuclear forensic investigation. Angewandte Chemie International Edition 54:13452−13456

doi: 10.1002/anie.201504874
[6]

Abney CW, Mayes RT, Saito T, Dai S. 2017. Materials for the recovery of uranium from seawater. Chemical Reviews 117:13935−14013

doi: 10.1021/acs.chemrev.7b00355
[7]

Sholl DS, Lively RP. 2016. Seven chemical separations to change the world. Nature 532:435−437

doi: 10.1038/532435a
[8]

Lindner H, Schneider E. 2015. Review of cost estimates for uranium recovery from seawater. Energy Economics 49:9−22

doi: 10.1016/j.eneco.2015.01.016
[9]

Kim J, Tsouris C, Mayes RT, Oyola Y, Saito T, et al. 2013. Recovery of uranium from seawater: a review of current status and future research needs. Separation Science and Technology 48:367−387

doi: 10.1080/01496395.2012.712599
[10]

Wang C, Helal AS, Wang Z, Zhou J, Yao X, et al. 2021. Uranium in situ electrolytic deposition with a reusable functional graphene-foam electrode. Advanced Materials 33:2102633

doi: 10.1002/adma.202102633
[11]

Manos MJ, Kanatzidis MG. 2012. Layered metal sulfides capture uranium from seawater. Journal of the American Chemical Society 134:16441−16446

doi: 10.1021/ja308028n
[12]

Zhao S, Yuan Y, Yu Q, Niu B, Liao J, et al. 2019. A dual-surface amidoximated halloysite nanotube for high-efficiency economical uranium extraction from seawater. Angewandte Chemie International Edition 58(42):14979−14985

doi: 10.1002/anie.201908762
[13]

Kou S, Yang Z, Sun F. 2017. Protein hydrogel microbeads for selective uranium mining from seawater. ACS Applied Materials & Interfaces 9:2035−2039

doi: 10.1021/acsami.6b15968
[14]

Yu Q, Yuan Y, Feng L, Feng T, Sun W, et al. 2020. Spidroin-inspired, high-strength, loofah-shaped protein fiber for capturing uranium from seawater. Angewandte Chemie International Edition 59:15997−16001

doi: 10.1002/anie.202007383
[15]

Katsoyiannis IA, Althoff HW, Bartel H, Jekel M. 2006. The effect of groundwater composition on uranium(VI) sorption onto bacteriogenic iron oxides. Water Research 40:3646−3452

doi: 10.1016/j.watres.2006.06.032
[16]

Barton CS, Stewart DI, Morris K, Bryant DE. 2004. Performance of three resin-based materials for treating uranium-contaminated groundwater within a PRB. Journal of Hazardous Materials 116:191−204

doi: 10.1016/j.jhazmat.2004.08.028
[17]

Sorg TJ. 1988. Methods for removing uranium from drinking water. Journal‐American Water Works Association 80:105−111

doi: 10.1002/j.1551-8833.1988.tb03074.x
[18]

Shen J, Schäfer A. 2014. Removal of fluoride and uranium by nanofiltration and reverse osmosis: a review. Chemosphere 117:679−691

doi: 10.1016/j.chemosphere.2014.09.090
[19]

Huang J, Liu Z, Huang D, Jin T, Qian Y. 2022. Electrochemical deposition of uranium oxide with an electrocatalytically active electrode using double potential step technique. Chinese Chemical Letters 33:3762−3766

doi: 10.1016/j.cclet.2021.11.008
[20]

Liu Y, Tian R, Zhang S, Bo T, Wang Z, et al. 2024. Capacitive deionization of uranium mediated by dioxygen functionalities in the C=O=C=O segment of polyacrylic acid-functionalized graphene aerogel. Chemical Engineering Journal 481:148388

doi: 10.1016/j.cej.2023.148388
[21]

Shi N, Wu J, Zhi X, Li N, Wang Z. 2023. Amidoxime-functionalized cellulose nanofibers/MXene aerogel for electric field enhanced uranium extraction from seawater. Chemical Engineering Journal 476:146563

doi: 10.1016/j.cej.2023.146563
[22]

Huang J, Liu Z, Huang D, Jin T, Qian Y. 2022. Efficient removal of uranium(VI) with a phytic acid-doped polypyrrole/carbon felt electrode using double potential step technique. Journal of Hazardous Materials 433:128775

doi: 10.1016/j.jhazmat.2022.128775
[23]

Liao Y, Wang M, Chen D. 2019. Electrosorption of uranium(VI) by highly porous phosphate-functionalized graphene hydrogel. Applied Surface Science 484:83−96

doi: 10.1016/j.apsusc.2019.04.103
[24]

Zhou J, Zhang X, Zhang Y, Wang D, Zhou H, et al. 2022. Effective inspissation of uranium(VI) from radioactive wastewater using flow electrode capacitive deionization. Separation and Purification Technology 283:120172

doi: 10.1016/j.seppur.2021.120172
[25]

Yan B, Ma C, Gao J, Yuan Y, Wang N. 2020. An ion-crosslinked supramolecular hydrogel for ultrahigh and fast uranium recovery from seawater. Advanced Materials 32:1906615

doi: 10.1002/adma.201906615
[26]

Tauk M, Bechelany M, Sistat P, Habchi R, Cretin M, et al. 2024. Ion-selectivity advancements in capacitive deionization: a comprehensive review. Desalination 572:117146

doi: 10.1016/j.desal.2023.117146
[27]

Zhang J, Wang Y, Wei Y, Xu M, Hu Y, et al. 2024. Magnetic CNT-based electrode for efficient electro-adsorption of uranium. Journal of Environmental Chemical Engineering 12:112160

doi: 10.1016/j.jece.2024.112160
[28]

Liao Y, Lei R, Weng X, Yan C, Fu J, et al. 2023. Uranium capture by a layered 2D/2D niobium phosphate/holey graphene architecture via an electro-adsorption and electrocatalytic reduction coupling process. Journal of Hazardous Materials 442:130054

doi: 10.1016/j.jhazmat.2022.130054
[29]

Ali Ansari S, Parveen N, Ansari MZ, Alsulaim GM, Alam MW, et al. 2025. Exploring recent advances in the versatility and efficiency of carbon materials for next generation supercapacitor applications: a comprehensive review. Progress in Materials Science 154:101493

doi: 10.1016/j.pmatsci.2025.101493
[30]

Parveen N. 2025. Enhanced energy storage using bio-waste derived carbon and three-dimensional NiCo2O4 structures in asymmetric supercapacitors. Journal of Industrial and Engineering Chemistry 150:824−836

doi: 10.1016/j.jiec.2025.06.027
[31]

Lakard S, Lakard B. 2025. Environmental applications of conducting polymers and their composites: adsorption and detection of heavy metal ions. Journal of Environmental Chemical Engineering 13:116233

doi: 10.1016/j.jece.2025.116233
[32]

Yu H, Zhou L, Liu Y, Ao X, Ouyang J, et al. 2023. Biocarbon/polyaniline nanofiber electrodes with high hybrid capacitance and hierarchical porous structure for U(VI) electrosorption. Desalination 564:116773

doi: 10.1016/j.desal.2023.116773
[33]

Shuang M, Zhou L, Liu Y, Yu H, Ao X, et al. 2023. Electrodeposition nanofabrication of graphene oxide/polypyrrole electrodes with high hybrid specific capacitance for enhancing U(VI) electrosorption. Journal of Environmental Chemical Engineering 11:111498

doi: 10.1016/j.jece.2023.111498
[34]

Chen D, Wu W, Zhao X, Feng D, Zhao R, et al. 2023. Continuous polypyrrole nanotubes encapsulated Co3O4 nanoparticles with oxygen vacancies and electron transport channels boosting peroxymonosulfate activation. Nano Research 16:11018−11029

doi: 10.1007/s12274-023-5781-0
[35]

Nezakati T, Seifalian A, Tan A, Seifalian AM. 2018. Conductive polymers: opportunities and challenges in biomedical applications. Chemical Reviews 118:6766−6843

doi: 10.1021/acs.chemrev.6b00275
[36]

Hodgson AJ, Gilmore K, Small C, Wallace GG, MacKenzie IL, et al. 1994. Reactive supramolecular assemblies of mucopolysaccharide, polypyrrole and protein as controllable biocomposites for a new generation of 'intelligent biomaterials'. Supramolecular Science 1:77−83

doi: 10.1016/0968-5677(94)90013-2
[37]

Kargirwar SR, Thakare SR, Choudhary MD, Kondawar SB, Dhakate SR. 2011. Morphology and electrical conductivity of self-doping polyanilines synthesized via self-assembly process. Advanced Materials Letters 2:397−401

doi: 10.5185/amlett.2011.4245
[38]

Zou Y, Chen Z, Guo X, Peng Z, Yu C, et al. 2022. Mechanically robust and elastic graphene/aramid nanofiber/polyaniline nanotube aerogels for pressure sensors. ACS Applied Materials & Interfaces 14:17858−17868

doi: 10.1021/acsami.2c02538
[39]

Wang X, Zhang D, Zhang H, Gong L, Yang Y, et al. 2021. In situ polymerized polyaniline/MXene (V2C) as building blocks of supercapacitor and ammonia sensor self-powered by electromagnetic-triboelectric hybrid generator. Nano Energy 88:106242

doi: 10.1016/j.nanoen.2021.106242
[40]

Yu P, Zhang Z, Zheng L, Teng F, Hu L, et al. 2016. A novel sustainable flour derived hierarchical nitrogen-doped porous carbon/polyaniline electrode for advanced asymmetric supercapacitors. Advanced Energy Materials 6:1601111

doi: 10.1002/aenm.201601111
[41]

Song E, Choi JW. 2013. Conducting polyaniline nanowire and its applications in chemiresistive sensing. Nanomaterials 3:498−523

doi: 10.3390/nano3030498
[42]

Baker CO, Huang X, Nelson W, Kaner RB. 2017. Polyaniline nanofibers: broadening applications for conducting polymers. Chemical Society Reviews 46:1510−1525

doi: 10.1039/c6cs00555a
[43]

Bhadra S, Khastgir D, Singha NK, Lee JH. 2009. Progress in preparation, processing and applications of polyaniline. Progress in Polymer Science 34:783−810

doi: 10.1016/j.progpolymsci.2009.04.003
[44]

Lei H, Pan N, Wang X, Zou H. 2018. Facile synthesis of phytic acid impregnated polyaniline for enhanced U(VI) adsorption. Journal of Chemical & Engineering Data 63:3989−3997

doi: 10.1021/acs.jced.8b00688
[45]

Lei H, Pan N, Zou H, Wang X, Tuo X. 2023. Hollow self-assembled hybrid framework based on phytic acid for U(VI) capture from highly acidic aqueous media. Chemical Engineering Journal 472:144919

doi: 10.1016/j.cej.2023.144919
[46]

Zhao X, Chen D, Zhang N, Shi M, Hu W, et al. 2024. Biodegradable chitosan-zirconium composite adsorptive membranes for potential arsenic (III/V) capture electrodialysis. International Journal of Biological Macromolecules 256:128356

doi: 10.1016/j.ijbiomac.2023.128356
[47]

Yin Q, Liu J, Zhong Z, Zhang Y, Zhang F, et al. 2023. Synthesis of phytic acid-modified chitosan and the research of the corrosion inhibition and antibacterial properties. International Journal of Biological Macromolecules 253:126905

doi: 10.1016/j.ijbiomac.2023.126905
[48]

Peng Q, Jin T, Wang C, Qian Y. 2024. Phytic acid-modified carboxymethyl cellulose hydrogel for uranium adsorption from aqueous solutions. International Journal of Biological Macromolecules 256:128545

doi: 10.1016/j.ijbiomac.2023.128545
[49]

Ansari MZ, Ali Ansari S, Parveen N, Alam MW, Kim SH. 2025. The role of high-entropy materials and d-band center adjustments in supercapacitor development. Journal of Energy Storage 131:117535

doi: 10.1016/j.est.2025.117535
[50]

Ren Q, Xia H, Wang Y, Lv J, Yuan D, et al. 2024. Novel malonamide-amidoxime bifunctional polymers decorated graphene oxide/chitosan electrode for enhancing electrosorptive removal of uranium(VI). Separation and Purification Technology 330:125292

doi: 10.1016/j.seppur.2023.125292
[51]

Liu Y, Zhou L, Xie Y, Ao X, Ouyang J, et al. 2024. Enhancing U(VI) removal by using biomass-derived hierarchical porous carbon/α-MnO2 nano fiber composites as high hybrid capacitance electrodes for capacitive deionization. Process Safety and Environmental Protection 182:948−959

doi: 10.1016/j.psep.2023.11.063
[52]

Shehzad H, Chen J, Shuang MT, Liu Z, Farooqi ZH, et al. 2024. Insights into electro-assisted and selective adsorption of U(VI) using hierarchical porous and activated biocarbon from lotus pods/2D-MoS2/polypyrrole composites through capacitive deionization. Process Safety and Environmental Protection 181:354−366

doi: 10.1016/j.psep.2023.11.032
[53]

Endrizzi F, Leggett CJ, Rao L. 2016. Scientific basis for efficient extraction of uranium from seawater. I: Understanding the chemical speciation of uranium under seawater conditions. Industrial & Engineering Chemistry Research 55:4249−4256

doi: 10.1021/acs.iecr.5b03679
[54]

Krot AD, Tararushkin EV, Trigub AL, Vlasova IE, Kalmykov SN. 2025. Uranium coordination on clay surface at nanoscale: integration of EXAFS data and ab initio molecular dynamics. Applied Clay Science 274:107863

doi: 10.1016/j.clay.2025.107863
[55]

Wang F, Zhang J, Jia S, Chen X, Cheng Z. 2025. A review of modification strategies and applications for hydrated salts: insights from energy storage materials encapsulation technology. Renewable and Sustainable Energy Reviews 223:115998

doi: 10.1016/j.rser.2025.115998
[56]

Liu Y, Zhou L, Ouyang J, Ao X, Shuang M, et al. 2024. Electrodeposition nanofabrication of carboxylated carbon nanotubes/α-MnO2 nanorods/polypyrrole composites as high hybrid capacitance electrodes for efficient U(VI) electrosorption. Separation and Purification Technology 334:125989

doi: 10.1016/j.seppur.2023.125989
[57]

Jin M, Huang X, Wang Z, Chan V, Hu J, et al. 2023. Mn, N co-doped carbon nanospheres for efficient capture of uranium(VI) via capacitive deionization. Chemosphere 342:140190

doi: 10.1016/j.chemosphere.2023.140190
[58]

Hu Q, Wang D, Liang J, Liu Z, Li J. 2024. Porous carbonized N-doped MOF-199 modified with MWCNTs for the deionization of uranium(VI). Separation and Purification Technology 330:125494

doi: 10.1016/j.seppur.2023.125494
[59]

Jiao R, Chen Z, Zeng S, Wang D, Li J. 2023. Electrosorption of uranium(VI) by sulfonic acid-decorated FeOOH nanorods. Journal of Environmental Chemical Engineering 11:111275

doi: 10.1016/j.jece.2023.111275
[60]

Zhang Y, Zhou J, Wang D, Cao R, Li J. 2022. Performance of MXene incorporated MOF-derived carbon electrode on deionization of uranium(VI). Chemical Engineering Journal 430:132702

doi: 10.1016/j.cej.2021.132702
[61]

Tang W, Li D, Zhang X, Guo F, Cui C, et al. 2023. A modified freezing-casted conductive hierarchical porous polymer composite electrode for electrochemical extraction of uranium from water. Separation and Purification Technology 319:124087

doi: 10.1016/j.seppur.2023.124087
[62]

Zhao X, Chen D, Shi M, Zhao R. 2024. Anchoring chitosan/phytic acid complexes on polypyrrole nanotubes as capacitive deionization electrodes for uranium capture from wastewater. International Journal of Biological Macromolecules 270:132491

doi: 10.1016/j.ijbiomac.2024.132491
[63]

Guo D, Yan C, Huang B, Jin T, Liu Z, et al. 2025. Combining electrosorption and electrochemical reduction mechanisms for uranium removal using 1,2,3,4-butane tetracarboxylic acid-modified MIL-101: an in-depth exploration of uranyl–adsorbent interactions. Inorganic Chemistry 64:1777−1787

doi: 10.1021/acs.inorgchem.4c04304
[64]

Huang J, Huang B, Jin T, Liu Z, Huang D, et al. 2022. Electrosorption of uranium(VI) from aqueous solution by phytic acid modified chitosan: an experimental and DFT study. Separation and Purification Technology 284:120284

doi: 10.1016/j.seppur.2021.120284
[65]

Yang S, Luan Z, Li W, Cheng X, Ye Z, et al. 2024. Two-dimensional sp2 carbon-conjugated COFs electrode for efficient electro-adsorption of uranium. Separation and Purification Technology 330:125378

doi: 10.1016/j.seppur.2023.125378
[66]

Li Q, Zhou J, Xu Y, Jin Z, Zhou H. 2025. Interface-driven electronic modulation enhances US coordination in carbon-confined Co-Mo sulfide heterojunctions for electrochemical uranium extraction. Chemical Engineering Journal 519:164881

doi: 10.1016/j.cej.2025.164881
[67]

Yang S, Yan C, Huang B, Jin T, Guo D, et al. 2025. PBTCA-modified self-crosslinked chitosan gels for efficient electrosorption of uranium from wastewater. Desalination 612:118984

doi: 10.1016/j.desal.2025.118984