海水
铀酰
铀
自愈水凝胶
吸附
萃取(化学)
化学
盐(化学)
化学工程
盐度
环境化学
无机化学
人工海水
离子键合
贫化铀
地下水
浓缩铀
核化学
杂质
离子
扩散
作者
Hui Wang,Feng Gao,Taohong Xu,Peng Liu,Zhanhu Guo,Guanbing Zhou,Yihui Yuan,Ning Wang
出处
期刊:Engineering
[Elsevier BV]
日期:2025-12-08
卷期号:60: 198-209
被引量:2
标识
DOI:10.1016/j.eng.2025.11.024
摘要
Uranium extraction from seawater is a promising strategy to alleviate global uranium scarcity, yet its implementation is hindered by extremely low concentrations and complex ionic environments. Concentrated seawater brine, a byproduct of salt production and desalination, contains 2–10 times more uranium than natural seawater, yet its high salinity presents additional challenges for extraction. Conventional polyamidoxime (PAO) hydrogels exhibit salt-induced shrinkage, compromising functional group accessibility and adsorption efficiency. Herein, we develop an anti-polyelectrolyte effect hydrogel by composing polyvinylphosphonic acid (PVPA) and the PAO. Under high-salinity conditions, cations and anions accumulate via diffusion around the positively charged amidoxime and negatively charged phosphonic acid groups, weakening interchain electrostatic attractions. This anti-polyelectrolyte effect promotes hydrogel swelling, significantly improving the exposure of binding sites and uranyl ion uptake. The PVPA–PAO hydrogel achieves a uranium adsorption capacity of 43.89 mg·g −1 after 24 days in concentrated natural seawater derived from solar saltworks, significantly surpassing that of previously reported PAO hydrogels (∼10 mg·g −1 ). In addition, it exhibits excellent antibacterial performance, mechanical robustness, and ion selectivity. This work presents an effective strategy for improving uranium recovery from marine resources and advances the comprehensive development and utilization of seawater resources.
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