High Entropy Effect Induced In-situ Surface Hydroxylation for Robust Electro-assisted Uranium Mineralization from Real Nuclear Wastewater

化学 矿化(土壤科学) 羟基化 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 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
出处
期刊:Nature Communications [Nature Portfolio]
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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