TY - JOUR
T1 - Electrochemical removal and recovery of uranium
T2 - Effects of operation conditions, mechanisms, and implications
AU - Ye, Yin
AU - Fan, Beilei
AU - Qin, Zemin
AU - Tang, Xin
AU - Feng, Yanyue
AU - Lv, Miao
AU - Miao, Shiyu
AU - Li, Hongwan
AU - Chen, Yanlong
AU - Chen, Fan
AU - Wang, Yuheng
N1 - Publisher Copyright:
© 2022 Elsevier B.V.
PY - 2022/6/15
Y1 - 2022/6/15
N2 - Removing and recovering uranium (U) from U-mining wastewater would be appealing, which simultaneously reduces the adverse environmental impact of U mining activities and mitigates the depletion of conventional U resources. In this study, we demonstrate the application of a constant-voltage electrochemical (CVE) method for the removal and recovery of U from U-mining wastewater, in an ambient atmosphere. The effects of operation conditions were elucidated in synthetic U-bearing water experiments, and the cell voltage and the ionic strength were found to play important roles in both the U extraction kinetics and the operation cost. The mechanistic studies show that, in synthetic U-bearing water, the CVE U extraction proceeds exclusively via a single-step one-electron reduction mechanism, where pentavalent U is the end product. In real U-mining wastewater, the interference of water matrices led to the disproportionation of the pentavalent U, resulting in the formation of tetravalent and hexavalent U in the extraction products. The U extraction efficacy of the CVE method was evaluated in real U-mining wastewater, and results show that the CVE U extraction method can be efficient with operation costs ranging from $0.55/kgU ~ $64.65/kgU, with varying cell voltages from 1.0 V to 4.0 V, implying its feasibility from the economic perspective.
AB - Removing and recovering uranium (U) from U-mining wastewater would be appealing, which simultaneously reduces the adverse environmental impact of U mining activities and mitigates the depletion of conventional U resources. In this study, we demonstrate the application of a constant-voltage electrochemical (CVE) method for the removal and recovery of U from U-mining wastewater, in an ambient atmosphere. The effects of operation conditions were elucidated in synthetic U-bearing water experiments, and the cell voltage and the ionic strength were found to play important roles in both the U extraction kinetics and the operation cost. The mechanistic studies show that, in synthetic U-bearing water, the CVE U extraction proceeds exclusively via a single-step one-electron reduction mechanism, where pentavalent U is the end product. In real U-mining wastewater, the interference of water matrices led to the disproportionation of the pentavalent U, resulting in the formation of tetravalent and hexavalent U in the extraction products. The U extraction efficacy of the CVE method was evaluated in real U-mining wastewater, and results show that the CVE U extraction method can be efficient with operation costs ranging from $0.55/kgU ~ $64.65/kgU, with varying cell voltages from 1.0 V to 4.0 V, implying its feasibility from the economic perspective.
KW - Electrochemical
KW - Mechanisms
KW - Reduction
KW - Uranium extraction
KW - Uranium mining wastewater
UR - http://www.scopus.com/inward/record.url?scp=85126620083&partnerID=8YFLogxK
U2 - 10.1016/j.jhazmat.2022.128723
DO - 10.1016/j.jhazmat.2022.128723
M3 - 文章
C2 - 35316632
AN - SCOPUS:85126620083
SN - 0304-3894
VL - 432
JO - Journal of Hazardous Materials
JF - Journal of Hazardous Materials
M1 - 128723
ER -