Efficient Direct Recycling Strategy of Spent LiFePO <sub>4</sub> Cathodes by Structural Defect Repair and Interface Construction
Abstract
ABSTRACT The increasing number of retired LiFePO 4 batteries urgently requires efficient and environmentally friendly recycling methods. The primary causes of LiFePO 4 battery failure can be attributed to lithium loss and the formation of Fe(III) phases. Therefore, the synergistic interaction between the green reagent citric acid (CA) and urea (UR) achieves low‐temperature spontaneous defect repair and the construction of an N‐doped carbon layer. Specifically, CA creates a reductive atmosphere that reduces Fe(III) to the Fe(II) phase, thereby eliminating Li‐Fe anti‐site defects. Meanwhile, the amino group (─NH 2 ) in UR acts as a nitrogen source, enabling N‐doping modification of the carbon layer on the surface of LiFePO 4 particles. The formed N‐doped carbon layer effectively improves the electronic conductivity and lithium‐ion migration dynamics of regenerated LiFePO 4 (R‐LFP). Moreover, the strengthening of Fe‐O and P─O bonds further increases the overall structural stability of R‐LFP, resulting in its remarkable electrochemical performance. The R‐LFP electrode material delivers 163 mAh/g specific capacity during the first discharge cycle at 0.1C and retains 93.5% of its initial capacity after 500 cycles at 1C. This economical and environmentally friendly recycling strategy provides a greatly promising solution for the sustainable recovery of lithium‐ion batteries (LIBs).
Article Details
Authors (6)
Meng Li
Ziwen Ying
The Institute of Nuclear and New Energy Technology Tsinghua University Beijing China
Zhiyuan Zeng
Jiehui Hu
Institute of Nuclear and New Energy Technology Tsinghua University Haidian District Beijing 100084 China
Zhen Shang
Beijing Key Lab of Fine Ceramics Institute of Nuclear and New Energy Technology Tsinghua University Beijing China
Shengming Xu
Institute of Nuclear and New Energy Technology Tsinghua University Beijing China