论文标题

离子截距电池电极的接口反应动力学的脱钩测量和建模

Decoupled measurement and modeling of interface reaction kinetics of ion-intercalation battery electrodes

论文作者

Xiong, Ruoyu, Zhou, Mengyuan, Li, Longhui, Xu, Jia, Li, Maoyuan, Yan, Bo, Li, Dequn, Zhang, Yun, Zhou, Huamin

论文摘要

单粒子测量结果揭示了锂离子电池电极中使用的活动颗粒的超高速率性能,这表明开发高功率电池的潜力很大。但是,在这种离子间隔活性材料中,传统的电化学动力学不再描述单个颗粒在超高c速率下的充电/放电行为。同时,由于界面反应和活性颗粒的固态扩散过程的耦合,常规动力学测量方法遇到了挑战。在这里,我们通过时间分辨的电势测量值将反应和扩散动力学以1 ms的间隔解除,表明经典的巴特勒 - volmer方程与当前密度,超电势和LI+浓度之间的实际关系偏离。开发了一个界面离子插值模型,该模型考虑了离子间隙材料的电荷转移反应中Li+(DE)插入的过量驱动力。模拟表明,所提出的模型可以准确预测各种活性材料的单粒子和电极尺度的充电/放电。从单个颗粒到复合电极的动力学限制过程是系统地揭示的,从而促进了高功率电池的理性设计。

Ultrahigh rate performance of active particles used in lithium-ion battery electrodes has been revealed by single-particle measurements, which indicates a huge potential for developing high-power batteries. However, the charging/discharging behaviors of single particles at ultrahigh C-rates can no longer be described by the traditional electrochemical kinetics in such ion-intercalation active materials. In the meantime, regular kinetic measuring methods meet a challenge due to the coupling of interface reaction and solid-state diffusion processes of active particles. Here, we decouple the reaction and diffusion kinetics via time-resolved potential measurements with an interval of 1 ms, revealing that the classical Butler-Volmer equation deviates from the actual relation between current density, overpotential, and Li+ concentration. An interface ion-intercalation model is developed which considers the excess driving force of Li+ (de)intercalation in the charge transfer reaction for ion-intercalation materials. Simulations demonstrate that the proposed model enables accurate prediction of charging/discharging at both single-particle and electrode scales for various active materials. The kinetic limitation processes from single particles to composite electrodes are systematically revealed, promoting rational designs of high-power batteries.

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