Deciphering the Degradation Mechanisms of Cycle Life in Ternary Lithium-Ion Batteries from the Electrode State Perspective
Yang Sijia1,2, Zhang Caiping3, Yuan Zhaolin1,2, Zhang Linjing3, Zhang Weige3
1. School of Artifical Intelligence University of Science and Technology Beijing Beijing 100083 China; 2. Shunde Innovation School University of Science and Technology Beijing Foshan 528399 China; 3. National Active Distribution Network Technology Research Center Beijing Jiaotong University Beijing 100044 China
Abstract:Lithium-ion (Li-ion) batteries are the core components in electrical energy storage systems (ESSs), yet their inevitable performance degradation directly impacts system lifespan and safety. During the operation of ESSs, the state of charge (SOC) of Li-ion batteries often operates over fragmented intervals that fluctuate frequently in response to frequency regulation, peak shaving, and renewable energy accommodation. This gives rise to cell-to-cell inconsistencies, triggering divergent degradation modes and accelerating the deterioration of pack-level performance—making it challenging to accurately predict service life or optimize operating strategies. To address these issues, two representative nickel-cobalt-manganese (NCM) cells—an energy-type 114 A·h cell and a power-type 8 A·h cell—were selected for degradation experiments, as they encompass the typical application requirements of ESSs. To decipher the degradation mechanisms of any part of the SOC range within the 0%~100% SOC interval on battery aging, the full SOC interval (0%~100%) was divided into five non-overlapping subintervals (0%~20%, 20%~40%, 40%~60%, 60%~80%, and 80%~100%), each corresponding to a 20% depth of discharge, with the full SOC interval serving as a reference. Room-temperature cycling experiments were conducted under these defined SOC intervals, with periodic performance calibration tests to monitor changes in key electrochemical parameters such as capacity, open circuit voltage and internal resistance. The evolution of capacity and resistance of two NCM batteries was first analyzed. Both battery types exhibited more pronounced increases in polarization resistance when cycled within the 0%~20% SOC interval and the 0%~100% SOC interval relative to other subintervals. Specifically, the energy cell showed a more substantial increase than the power cell, indicating that cycling in low SOC exacerbates kinetic loss. On the other hand, thermodynamic loss, characterized by a decline in maximum available capacity, emerged as the dominant factor governing overall state of health (SOH) degradation, accounting for over 80% of total SOH degradation across all SOC intervals. Notably, the two battery types displayed distinct degradation patterns: the energy cell underwent accelerated capacity loss in the 0%~20% SOC interval after 400 equivalent cycles, even exceeding the degradation rate in the full 0%~100% SOC interval; in contrast, the power cell exhibited the most severe degradation in the 80%~100% SOC interval, with the 0%~20% interval showing the least degradation. To untangle the intricate interplay between external characteristics and internal degradation physics, the root causes of these behaviors were further elucidated from an electrode-state-centric perspective. Quantitative diagnosis of aging modes combined with electrode material expansion analysis was performed. The results revealed that lithium inventory loss dominated in linearly degrading cells, whereas the dominant aging mode transitioned to negative electrode active material loss once the negative electrode became the limiting electrode—precipitating an abrupt acceleration in capacity fade. More importantly, due to differences in negative-to-positive ratios, the same SOC interval translated into markedly different graphite lithiation ranges for the two cell designs, inducing varying extents of phase transitions and mechanical stress. This explains why the most significant fade in linear degradation was observed in the 60%~80% SOC interval for the energy cell and in the 80%~100% SOC interval for the power cell. In summary, this study underscores the inadequacy of traditional degradation evaluation metrics that overlook electrode-level states. Electrode-state diagnostics enables the optimization of operating SOC windows tailored to specific cell chemistries and designs. The aging mode of the full cell, the electrode state reflected by the cycling range, and the degree of electrode expansion together determine the thermodynamic degradation characteristics under SOC range stress. When optimizing the battery operating range, a specific analysis should be conducted in combination with the electrode state to avoid having the full cell work for a long time in the SOC range where the graphite has a low potential and a high degree of expansion. These findings contribute to a more precise and proactive approach to smart battery management, ultimately supporting the reliable and efficient operation of ESSs. Future work will extend electrode-state diagnostics to other operating conditions and high-nickel ternary chemistries.
杨思嘉, 张彩萍, 袁兆麟, 张琳静, 张维戈. 基于电极状态的三元锂离子电池循环寿命衰退机制解析[J]. 电工技术学报, 2026, 41(15): 5345-5358.
Yang Sijia, Zhang Caiping, Yuan Zhaolin, Zhang Linjing, Zhang Weige. Deciphering the Degradation Mechanisms of Cycle Life in Ternary Lithium-Ion Batteries from the Electrode State Perspective. Transactions of China Electrotechnical Society, 2026, 41(15): 5345-5358.
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