Zuo Anhao, Lv Zhe, Fang Ruqing, Sun Li-Qun, Wu Oukai, Zhou Wei, Lu Haoran, Wu Zhixuan, Ge Ke, Kang Jianqiang, Xie Haiming, Li Zhe
School of Vehicle and Mobility, Tsinghua University, Beijing 100084, P.R. China.
Beijing HyperStrong Technology Co., LTD., Beijing 100094, P.R. China.
ACS Appl Mater Interfaces. 2025 May 14;17(19):28065-28075. doi: 10.1021/acsami.4c23064. Epub 2025 May 5.
LiFePO (LFP) undergoes a two-phase transformation during lithium insertion or extraction, forming lithium-rich and lithium-poor phases. Determining the kinetic parameters of these phases is crucial for electrochemical models but remains challenging. In this study, we decouple the reaction and diffusion kinetics of the Li-rich and Li-poor phases in LFP cathodes using single-particle electrochemical impedance spectroscopy (EIS). LFP agglomerates comprising primary particles are fabricated into single-particle microelectrodes. EIS measurements are conducted on single LFP particles at various insertion ratios. A physics-based impedance model is developed for phase-transformation electrodes, and the evolution of the exchange current density () and diffusion coefficient () for both phases is extracted. In the single-phase region, the Li-poor phase exhibits a steeper change in with varying insertion ratios compared with the Li-rich phase. In the two-phase coexistence region, the Li-poor phase shows a higher than the Li-rich phase. Additionally, for the Li-poor phase is higher than that for the Li-rich phase in both the single-phase and two-phase coexistence regions. We also compare the kinetic parameters of the Li-rich and Li-poor phases in LFP agglomerates of varying particle sizes to clarify the impact of particle size on electrochemical kinetics. The proposed impedance-based approach decouples the electrochemical kinetics of Li-rich and Li-poor phases in LFP cathodes, and the extracted kinetic parameters serve as the basis for developing models considering phase transformation.