Xu Yaobin, Jia Hao, Gao Peiyuan, Galvez-Aranda Diego E, Beltran Saul Perez, Cao Xia, Le Phung M L, Liu Jianfang, Engelhard Mark H, Li Shuang, Ren Gang, Seminario Jorge M, Balbuena Perla B, Zhang Ji-Guang, Xu Wu, Wang Chongmin
Environmental Molecular Sciences Laboratory, Pacific Northwest National Laboratory, Richland, WA, USA.
These authors contributed equally: Yaobin Xu, Hao Jia.
Nat Energy. 2023 Dec;8(12):1345-1354. doi: 10.1038/s41560-023-01361-1. Epub 2023 Sep 28.
The solid-electrolyte interphase (SEI) critically governs the performance of rechargeable batteries. An ideal SEI is expected to be electrically insulative to prevent persistently parasitic reactions between the electrode and the electrolyte and ionically conductive to facilitate Faradaic reactions of the electrode. However, the true nature of the electrical properties of the SEI remains hitherto unclear due to the lack of a direct characterization method. Here we use in situ bias transmission electron microscopy to directly measure the electrical properties of SEIs formed on copper and lithium substrates. We reveal that SEIs show a voltage-dependent differential conductance. A higher rate of differential conductance induces a thicker SEI with an intricate topographic feature, leading to an inferior Coulombic efficiency and cycling stability in Li∣∣Cu and Li∣∣LiNiMnCoO cells. Our work provides insight into the targeted design of the SEI with desired characteristics towards better battery performance.
固体电解质界面(SEI)对可充电电池的性能起着关键作用。理想的SEI应具有电绝缘性,以防止电极与电解质之间持续发生寄生反应,同时应具有离子导电性,以促进电极的法拉第反应。然而,由于缺乏直接的表征方法,SEI电性能的真实本质迄今仍不清楚。在此,我们使用原位偏置透射电子显微镜直接测量在铜和锂基底上形成的SEI的电性能。我们发现SEI表现出电压依赖性微分电导。较高的微分电导率会导致形成具有复杂形貌特征的更厚的SEI,从而导致Li∣∣Cu和Li∣∣LiNiMnCoO电池的库仑效率和循环稳定性较差。我们的工作为针对更好的电池性能设计具有所需特性的SEI提供了见解。