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氨基辅助高效再生靶向降解的磷酸铁锂正极的结构缺陷和无活性磷酸铁相

Amino Group-Aided Efficient Regeneration Targeting Structural Defects and Inactive FePO Phase for Degraded LiFePO Cathodes.

作者信息

Liu Yuanyuan, Tu Wenqian, Bai Jin, Wang Peiyao, Mao Yunjie, Xiao Ke, Wang Siya, Qiu Shiyu, Zhu Xuebin, Lu Wenjian, Zhao Bangchuan, Sun Yuping

机构信息

Science Island Branch, University of Science and Technology of China, Hefei, 230026, P. R. China.

Key Laboratory of Materials Physics, Institute of Solid State Physics, HFIPS, Chinese Academy of Sciences, Hefei, 230031, P. R. China.

出版信息

Small. 2024 Dec;20(49):e2405362. doi: 10.1002/smll.202405362. Epub 2024 Sep 12.

Abstract

It is urgent to develop efficient recycling methods for spent LiFePO cathodes to cope with the upcoming peak of power battery retirement. Compared with the traditional metallurgical recovery methods that lack satisfactory economic and environmental benefits, the direct regeneration seems to be a promising option at present. However, a simple direct lithium replenishment cannot effectively repair and regenerate the cathodes due to the serious structural damage of the spent LiFePO. Herein, the spent LiFePO cathodes are directly regenerated by a thiourea-assisted solid-phase sintering process. The density functional theory calculation indicates that thiourea has a targeted repair effect on the antisite defects and inactive FePO phase in the spent cathode due to the associative priority of amino group (─NH) in thiourea with Fe ions: Fe─N > Fe─N. Meanwhile, the pyrolysis products of thiourea can also create an optimal reducing atmosphere and inhibit the agglomeration of particles in the high temperature restoration process. The regenerated LiFePO exhibits an excellent electrochemical performance, which is comparable to that of commercial LiFePO. This targeted restoration has improved the efficiency of direct regeneration, which is expected to achieve large-scale recycling of spent LiFePO.

摘要

开发高效的废旧磷酸铁锂正极回收方法以应对即将到来的动力电池退役高峰迫在眉睫。与缺乏令人满意的经济和环境效益的传统冶金回收方法相比,直接再生目前似乎是一个有前景的选择。然而,由于废旧磷酸铁锂严重的结构损伤,简单的直接锂补充无法有效地修复和再生正极。在此,通过硫脲辅助的固相烧结过程直接再生废旧磷酸铁锂正极。密度泛函理论计算表明,由于硫脲中氨基(─NH)与铁离子的缔合优先级:Fe─N > Fe─N,硫脲对废旧正极中的反位缺陷和非活性磷酸铁相具有靶向修复作用。同时,硫脲的热解产物还可以创造最佳的还原气氛,并在高温恢复过程中抑制颗粒团聚。再生的磷酸铁锂表现出优异的电化学性能,与商业磷酸铁锂相当。这种靶向修复提高了直接再生的效率,有望实现废旧磷酸铁锂的大规模回收。

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