TY - JOUR
T1 - Electrochemical-mediated FeS active sites regeneration for effective extraction of uranium from seawater
AU - Zhang, Zena
AU - Chen, Fan
AU - Wang, Chunlin
AU - Du, Ruoyu
AU - Wang, Jingjing
AU - Yan, Cheng
AU - Liu, Bing
AU - Liang, Bin
AU - Wang, Aijie
AU - Wang, Yuheng
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2026/2/1
Y1 - 2026/2/1
N2 - Electrochemical uranium extraction (EUE) from seawater offers a sustainable pathway for nuclear fuel production, yet its practical implementation remains hindered by active site deactivation, limited selectivity, and high operational costs. To overcome these challenges, we developed a nano-FeS-modified carbon cloth (nFeS/CC) electrode via an anaerobic in situ deposition strategy, enabling the construction of an advanced EUE system with efficient and selective UO22+ adsorption-reduction performance and regenerable active sites. Experimental results and density functional theory calculations revealed that interfacial sulfur species strongly coordinate with UO22+ through Lewis complexation. The adsorbed UO22+ was effectively reduced to low-valent, insoluble uranium oxides (UxOy) via both Fe(II)-mediated surface redox reactions and direct electroreduction. Remarkably, the FeS active sites exhibited in situ electro-regenerability, ensuring sustained catalytic activity over multiple operations. Additionally, the generation of reactive oxygen species under electrochemical conditions enhanced uranium extraction by improving UO22+ bioavailability, lowering the activation energy barrier, and promoting interfacial electron transfer. The EUE system exhibited excellent selectivity over competing metal ions and demonstrated robust stability. Evaluations in NaCl solution, simulated seawater, and real seawater confirmed the nFeS/CC system's high adaptability, operational stability, and economic feasibility, achieving uranium extraction capacities up to 17154 mg g−1 and a low energy cost of approximately 2.1 USD kg−1 U. This work offers new insights into the design of durable and cost-effective electrochemical platforms for uranium recovery from complex marine environments.
AB - Electrochemical uranium extraction (EUE) from seawater offers a sustainable pathway for nuclear fuel production, yet its practical implementation remains hindered by active site deactivation, limited selectivity, and high operational costs. To overcome these challenges, we developed a nano-FeS-modified carbon cloth (nFeS/CC) electrode via an anaerobic in situ deposition strategy, enabling the construction of an advanced EUE system with efficient and selective UO22+ adsorption-reduction performance and regenerable active sites. Experimental results and density functional theory calculations revealed that interfacial sulfur species strongly coordinate with UO22+ through Lewis complexation. The adsorbed UO22+ was effectively reduced to low-valent, insoluble uranium oxides (UxOy) via both Fe(II)-mediated surface redox reactions and direct electroreduction. Remarkably, the FeS active sites exhibited in situ electro-regenerability, ensuring sustained catalytic activity over multiple operations. Additionally, the generation of reactive oxygen species under electrochemical conditions enhanced uranium extraction by improving UO22+ bioavailability, lowering the activation energy barrier, and promoting interfacial electron transfer. The EUE system exhibited excellent selectivity over competing metal ions and demonstrated robust stability. Evaluations in NaCl solution, simulated seawater, and real seawater confirmed the nFeS/CC system's high adaptability, operational stability, and economic feasibility, achieving uranium extraction capacities up to 17154 mg g−1 and a low energy cost of approximately 2.1 USD kg−1 U. This work offers new insights into the design of durable and cost-effective electrochemical platforms for uranium recovery from complex marine environments.
KW - Adsorption-reduction
KW - Electrochemical catalysis
KW - Nano ferrous sulfide (nFeS)
KW - Reactive site
KW - Seawater
KW - Uranium extraction
UR - https://www.scopus.com/pages/publications/105020857732
U2 - 10.1016/j.desal.2025.119542
DO - 10.1016/j.desal.2025.119542
M3 - 文章
AN - SCOPUS:105020857732
SN - 0011-9164
VL - 619
JO - Desalination
JF - Desalination
M1 - 119542
ER -