电解质
淡出
容量损失
自行车
材料科学
加速老化
同质性(统计学)
扩散
电池(电)
电流(流体)
降级(电信)
锂(药物)
复合材料
化学
盐(化学)
导电体
老化
环境科学
锂离子电池
电压
作者
Pablo Morales Torricos,Andreas Gallenberger,Dominik Droese,Julia Kowal,Christian Endisch,Meinert Lewerenz
标识
DOI:10.1002/batt.202500559
摘要
Accurate and rapid assessment of lithium‐ion battery lifetime is essential for predicting remaining lifespan, enabling the selection of appropriate cells for specific applications and determining suitability for second‐life use. However, accelerated cyclic aging tests may underestimate a cell's total lifespan due to exaggerated capacity fade that does not occur under real‐world conditions. This increased capacity fade is primarily driven by electrolyte motion induced salt inhomogeneity (EMSI) and loss of homogeneity of lithium distribution (HLD). This study investigates the impact of varying charge and discharge currents on capacity loss during accelerated testing in compressed NMC‐Gr pouch cells. Most of the capacity loss observed during cycling is fully recoverable after a resting period, with some cells regaining up to 81% of their lost capacity. Contrary to expectations, cells subjected to the highest cycling currents do not exhibit the greatest recoverable capacity loss. This phenomenon can be attributed to the interplay between current and temperature: While higher cycling currents exacerbate EMSI and HLD loss, they simultaneously elevate cell temperature, which mitigates EMSI by weakening polarization, enhancing electrolyte salt diffusion and homogenizing lithium distribution in the anode. Consequently, higher temperatures counteract HLD and EMSI‐effect and therefore reduce apparent capacity loss.
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