| [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. |
| [2] |
Chu S, Majumdar A. 2012. Opportunities and challenges for a sustainable energy future. |
| [3] |
Adamantiades A, Kessides I. 2009. Nuclear power for sustainable development: current status and future prospects. |
| [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. |
| [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. |
| [6] |
Abney CW, Mayes RT, Saito T, Dai S. 2017. Materials for the recovery of uranium from seawater. |
| [7] |
Sholl DS, Lively RP. 2016. Seven chemical separations to change the world. |
| [8] |
Lindner H, Schneider E. 2015. Review of cost estimates for uranium recovery from seawater. |
| [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. |
| [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. |
| [11] |
Manos MJ, Kanatzidis MG. 2012. Layered metal sulfides capture uranium from seawater. |
| [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. |
| [13] |
Kou S, Yang Z, Sun F. 2017. Protein hydrogel microbeads for selective uranium mining from seawater. |
| [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. |
| [15] |
Katsoyiannis IA, Althoff HW, Bartel H, Jekel M. 2006. The effect of groundwater composition on uranium(VI) sorption onto bacteriogenic iron oxides. |
| [16] |
Barton CS, Stewart DI, Morris K, Bryant DE. 2004. Performance of three resin-based materials for treating uranium-contaminated groundwater within a PRB. |
| [17] |
Sorg TJ. 1988. Methods for removing uranium from drinking water. |
| [18] |
Shen J, Schäfer A. 2014. Removal of fluoride and uranium by nanofiltration and reverse osmosis: a review. |
| [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. |
| [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. |
| [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. |
| [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. |
| [23] |
Liao Y, Wang M, Chen D. 2019. Electrosorption of uranium(VI) by highly porous phosphate-functionalized graphene hydrogel. |
| [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. |
| [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. |
| [26] |
Tauk M, Bechelany M, Sistat P, Habchi R, Cretin M, et al. 2024. Ion-selectivity advancements in capacitive deionization: a comprehensive review. |
| [27] |
Zhang J, Wang Y, Wei Y, Xu M, Hu Y, et al. 2024. Magnetic CNT-based electrode for efficient electro-adsorption of uranium. |
| [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. |
| [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. |
| [30] |
Parveen N. 2025. Enhanced energy storage using bio-waste derived carbon and three-dimensional NiCo2O4 structures in asymmetric supercapacitors. |
| [31] |
Lakard S, Lakard B. 2025. Environmental applications of conducting polymers and their composites: adsorption and detection of heavy metal ions. |
| [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. |
| [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. |
| [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. |
| [35] |
Nezakati T, Seifalian A, Tan A, Seifalian AM. 2018. Conductive polymers: opportunities and challenges in biomedical applications. |
| [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'. |
| [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. |
| [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. |
| [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. |
| [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. |
| [41] |
Song E, Choi JW. 2013. Conducting polyaniline nanowire and its applications in chemiresistive sensing. |
| [42] |
Baker CO, Huang X, Nelson W, Kaner RB. 2017. Polyaniline nanofibers: broadening applications for conducting polymers. |
| [43] |
Bhadra S, Khastgir D, Singha NK, Lee JH. 2009. Progress in preparation, processing and applications of polyaniline. |
| [44] |
Lei H, Pan N, Wang X, Zou H. 2018. Facile synthesis of phytic acid impregnated polyaniline for enhanced U(VI) adsorption. |
| [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. |
| [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. |
| [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. |
| [48] |
Peng Q, Jin T, Wang C, Qian Y. 2024. Phytic acid-modified carboxymethyl cellulose hydrogel for uranium adsorption from aqueous solutions. |
| [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. |
| [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). |
| [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. |
| [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. |
| [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. |
| [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. |
| [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. |
| [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. |
| [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. |
| [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). |
| [59] |
Jiao R, Chen Z, Zeng S, Wang D, Li J. 2023. Electrosorption of uranium(VI) by sulfonic acid-decorated FeOOH nanorods. |
| [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). |
| [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. |
| [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. |
| [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. |
| [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. |
| [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. |
| [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. |
| [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. |