化学
矿化(土壤科学)
羟基化
铀
废水
熵(时间箭头)
放射化学
放射性废物
环境化学
同位素
化学工程
核化学
新陈代谢
水化学
氘
核反应
无机化学
作者
Hailin Wu,Xiaofang Feng,Xun Yang,Xiaochuan Deng,Wenjie Sun,Xiaoyu Liu,Xue Jiang,Wenli Zhou,Zicheng Yao,Tao Chen,Wenkun Zhu
标识
DOI:10.1038/s41467-026-76781-0
摘要
Exploring highly active and cost-efficient electrocatalysts with in-situ regeneration of coordination sites is crucial for the large-scale application of electro-assisted uranium extraction technology, which can effectively solve the problem of limited coordination sites for traditional catalysts. Herein, we tailor the charge distribution of La(CrFeCoNiCu)O3 via high-entropy effect to induce in-situ surface hydroxylation, thereby enabling robust uranium recovery from fluoride-containing uranium wastewater. The as-prepared La(CrFeCoNiCu)O3 exhibits high uranium extraction performance, achieving a 97.8% extraction efficiency in fluoride-containing uranium wastewater and still maintaining over 91.3% with real uranium wastewater. Relying on in-situ attenuated total reflection surface-enhanced infrared absorption spectroscopy (ATR-SEIRAS) and quasi-in-situ X-ray photoelectron spectroscopy (XPS), we confirm that Cu sites serve as hydroxylation active sites, enabling precise capture of fluoro-uranium complexes, followed by uranium mineralization via electron reduction-free radical reoxidation pathway. In addition, large-scale application verification of real nuclear wastewater is conducted on the self-designed flow electrolysis device, confirming its cost advantage. A La(CrFeCoNiCu)O3 high-entropy perovskite that drives charge redistribution and in situ surface hydroxylation is reported here, achieving >98% U extraction from real nuclear wastewater. Advanced characterizations identify Cu as the key active site.
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