School of Materials Science and Engineering, Sichuan University of Science and Engineering, Zigong, Sichuan 643000, P. R. China.
Center for High Pressure Science and Technology Advanced Research (HPSTAR), Beijing 100094, P. R. China.
ACS Appl Mater Interfaces. 2023 May 17;15(19):23623-23630. doi: 10.1021/acsami.3c02214. Epub 2023 May 3.
Graphite is one of the major anode materials for commercial lithium-ion batteries. Li transport in a single graphite granule along intra and interlayer modes is a crucial factor for the battery performance. However, direct evidence and visualized details of the Li transports are hardly provided. Here, we report the direct observation of the anisotropic transport behavior of Li and investigate the electro-chemo-structure evolution during the lithiation of graphite through both the intra and interlayer pathways via in situ transmission electron microscopy. The in situ experiments of nano batteries give two extreme conditions, in which thermal runaway induced by polarization only occurs along the interlayer, not along the intralayer. The high diffusion energy barrier induced large polarization when the interlayer Li transport became dominant. The energy of the polarization electric field would be instantaneously released like a short electric pulse, which generated a substantial amount of joule heat and created an extremely high temperature, causing the melting of the tungsten tip. We provide another possible fundamental mechanism of thermal failure in graphite-based Li-ion batteries and hope this insightful work would help the safety management of graphite-based lithium-ion batteries.
石墨是商业锂离子电池的主要阳极材料之一。锂离子在单个石墨颗粒中沿层内和层间模式的传输是影响电池性能的关键因素。然而,关于锂离子传输的直接证据和可视化细节却很难提供。在这里,我们通过原位透射电子显微镜报告了对锂离子各向异性传输行为的直接观察,并研究了通过层内和层间途径进行石墨嵌锂过程中的电-化学-结构演变。纳米电池的原位实验给出了两种极端情况,其中极化引起的热失控仅沿层间发生,而不是沿层内发生。当层间锂离子传输占主导地位时,高扩散能垒会引起较大的极化。极化电场的能量会像短电脉冲一样瞬间释放,产生大量焦耳热,形成极高的温度,导致钨针尖熔化。我们提供了石墨基锂离子电池热失效的另一种可能的基本机制,并希望这项有见地的工作有助于石墨基锂离子电池的安全管理。