钴
浸出(土壤学)
配位复合体
母材
水溶液
阴极
拉曼光谱
材料科学
化学
过渡金属
金属
无机化学
化学工程
绿色化学
资源回收
催化作用
电化学
纳米技术
粉末衍射
晶体结构
水介质
反应机理
红外光谱学
作者
Qiang Zeng,Xuezhen Feng,Songhe Yang,Xiaosong Gu,Wenfei Wei,Shimao Deng,Ranhao Wang,Zheting Chu,Hong Chen
标识
DOI:10.1002/anie.202522624
摘要
Abstract Sustainable end‐of‐life management of lithium‐ion batteries (LIBs) is essential for minimizing environmental impact and enhancing supply chain resilience. Here, we present a novel H + /OH − switchable reversible coordination chemistry mechanism that utilizes a cost‐effective, recyclable K 4 Fe(CN) 6 aqueous solution for highly efficient and selective recovery of critical metals from various spent LIB cathodes. Under H + ‐rich acidic conditions, the LiCoO 2 (LCO) cathode demonstrates a high Li leaching efficiency of 96.57%, while cobalt selectively reacts with K 4 Fe(CN) 6 to precipitate as K 0.5 H 1.5 CoFe(CN) 6 ·H 2 O. Subsequent OH − ‐rich base treatment facilitates the stepwise recovery of cobalt from K 0.5 H 1.5 CoFe(CN) 6 ·H 2 O to form CoOOH, achieving a 95.18% recovery efficiency and K 4 Fe(CN) 6 regeneration. In situ powder X‐ray diffraction and time‐dependent Raman spectroscopy reveal the dynamic crystal structural evolution and reversible coordination chemistry between Co─O bonding in LiCoO 2 /CoOOH and Co─N bonding in K 0.5 H 1.5 CoFe(CN) 6 ·H 2 O, driven by the H + /OH − pair in the K 4 Fe(CN) 6 solution. This strategy is applicable for recovering critical metals from a wide range of LIBs cathodes (e.g., NCMs, LFP), offering significant techno‐economic and environmental benefits, and lays the foundation for sustainable critical metals recycling from urban minerals beyond spent LIBs.
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