物理化学学报 >> 2026, Vol. 42 >> Issue (4): 100189.doi: 10.1016/j.actphy.2025.100189

论文 上一篇    下一篇

一石三鸟:路易斯酸热诱导改性Li5FeO4

李孟修, 毛佳辉, 倪江锋*(), 李亮*()   

  1. 苏州大学物理科学与技术学院, 江苏省前沿材料物理与器件重点实验室, 苏州市智能光电感知重点实验室, 江苏省先进负碳技术重点实验室, 能源转换材料与物理中心(CECMP), 江苏 苏州 215006
  • 收稿日期:2025-07-10 修回日期:2025-09-06 录用日期:2025-09-16 发布日期:2026-01-29
  • 通讯作者: Email: jeffni@suda.edu.cn (倪江锋)lli@suda.edu.cn (李亮)

Three birds with one stone: modification of Li5FeO4 with thermal induction of Lewis acid

Mengxiu Li, Jiahui Mao, Jiangfeng Ni*(), Liang Li*()   

  1. School of Physical Science and Technology, Jiangsu Key Laboratory of Frontier Material Physics and Devices, Suzhou Key Laboratory of Intelligent Photoelectric Perception, Jiangsu Key Laboratory of Advanced Negative Carbon Technologies, Center for Energy Conversion Materials & Physics (CECMP), Soochow University, Suzhou 215006, Jiangsu Province, China
  • Received:2025-07-10 Revised:2025-09-06 Accepted:2025-09-16 Published:2026-01-29
  • Contact: Email: jeffni@suda.edu.cn (Jiangfeng Ni)lli@suda.edu.cn (Liang Li)

摘要:

铁酸锂(Li5FeO4)是一种极具前景的锂离子电池正极预锂化添加剂,但其易与空气中的二氧化碳和水分发生副反应而导致失效。针对这一问题,本研究提出了一种基于PF5热诱导改性的高效路易斯酸再生策略。该策略可有效去除Li5FeO4表面惰性杂质,并原位构建Li3PO4与LiF的复合包覆层。再生后的Li5FeO4表现出优异的分散性、空气稳定性和电解液界面相容性,能有效抑制浆料凝胶化和界面副反应。当添加1.5% (wt)再生Li5FeO4时,LiFePO4正极在200次循环后仍保持135.0 mAh g−1的容量和95.3%的保持率;而对照组(未添加Li5FeO4)仅保留113.7 mAh g−1容量(保持率92.2%)。该研究为Li5FeO4的实际应用提供了新思路,将在长循环锂离子电池领域获得广泛应用。

关键词: 锂离子电池, 正极预锂化, Li5FeO4, 路易斯酸, 再生

Abstract:

Lithium ferrate Li5FeO4 is a promising cathode prelithiation additive for lithium-ion batteries, boasting a high theoretical capacity of 867 mAh g−1, which compensates for lithium loss due to solid electrolyte interphase (SEI) formation during the initial cycle. However, its practical application faces significant challenges due to inherent chemical instability. The material is extremely sensitive to air, readily undergoing deleterious side reactions with atmospheric carbon dioxide and moisture to form electrochemically inert Li2CO3 surface layers. This degradation in the atmosphere presents several major issues. It not only substantially reduces active lithium content but also induces severe slurry gelation during electrode manufacturing. In addition, it promotes continuous gas generation and electrolyte decomposition during battery operation, and leads to a significant increase in electrochemical impedance. Previous stabilization attempts via carbon coating or metal doping have shown limited success, often introducing new problems such as capacity reduction or inadequate protection, highlighting the urgent need for a more comprehensive and effective modification method. To address these challenges, this study proposes an efficient Lewis acid-induced regeneration strategy through thermal modification with PF5. This approach effectively removes surface inert impurities and facilitates the in-situ construction of a composite layer of Li3PO4 and LiF on the Li5FeO4 particles. The regenerated Li5FeO4 exhibits excellent dispersion, air stability, and electrolyte interfacial compatibility, effectively suppressing slurry gelation and interfacial side reactions. In comparison with the bare counterpart, the regenerated Li5FeO4 shows a significantly reduced viscosity upon slurry processing and gas generation during high-temperature storage. When 1.5% (wt) regenerated Li5FeO4 is introduced to the LiFePO4 cathode in the full cells, the cathode maintains a high capacity of 135.0 mAh g−1 and a retention rate of 95.3% after 200 cycles. In contrast, the control LiFePO4 cathode without Li5FeO4 only retains 113.7 mAh g−1 with a capacity retention of 92.2%. This approach integrates impurity removal, interfacial stabilization, and performance enhancement of Li5FeO4 into one strategy, which will find extensive applications in long-cycle lithium-ion batteries.

Key words: Lithium-ion battery, Cathode prelithiation, Li5FeO4, Lewis acid, Regeneration