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锂离子电池中高度取向热解石墨和无序石墨负极上固体电解质界面的形成与演变比较

A Comparison of Solid Electrolyte Interphase Formation and Evolution on Highly Oriented Pyrolytic and Disordered Graphite Negative Electrodes in Lithium-Ion Batteries.

作者信息

Zhu Haoyu, Russell Joshua A, Fang Zongtang, Barnes Pete, Li Lan, Efaw CoreyM, Muenzer Allison, May Jeremy, Hamal Kailash, Cheng I Francis, Davis Paul H, Dufek EricJ, Xiong Hui

机构信息

Micron School of Materials Science and Engineering, Boise State University, Boise, ID 83725, USA.

Biological and Chemical Science and Engineering Department, Idaho National Laboratory, Idaho Falls, ID 83415, USA.

出版信息

Small. 2021 Dec;17(52):e2105292. doi: 10.1002/smll.202105292. Epub 2021 Oct 30.

Abstract

The presence and stability of solid electrolyte interphase (SEI) on graphitic electrodes is vital to the performance of lithium-ion batteries (LIBs). However, the formation and evolution of SEI remain the least understood area in LIBs due to its dynamic nature, complexity in chemical composition, heterogeneity in morphology, as well as lack of reliable in situ/operando techniques for accurate characterization. In addition, chemical composition and morphology of SEI are not only affected by the choice of electrolyte, but also by the nature of the electrode surface. While introduction of defects into graphitic electrodes has promoted their electrochemical properties, how such structural defects influence SEI formation and evolution remains an open question. Here, utilizing nondestructive operando electrochemical atomic force microscopy (EChem-AFM) the dynamic SEI formation and evolution on a pair of representative graphitic materials with and without defects, namely, highly oriented pyrolytic and disordered graphite electrodes, are systematically monitored and compared. Complementary to the characterization of SEI topographical and mechanical changes during electrochemical cycling by EChem-AFM, chemical analysis and theoretical calculations are conducted to provide mechanistic insights underlying SEI formation and evolution. The results provide guidance to engineer functional SEIs through design of carbon materials with defects for LIBs and beyond.

摘要

石墨电极上固体电解质界面(SEI)的存在和稳定性对锂离子电池(LIBs)的性能至关重要。然而,由于SEI具有动态性质、化学成分复杂、形态异质性以及缺乏可靠的原位/ operando技术进行准确表征,其形成和演变仍然是锂离子电池中最不为人所知的领域。此外,SEI的化学成分和形态不仅受电解质选择的影响,还受电极表面性质的影响。虽然在石墨电极中引入缺陷促进了它们的电化学性能,但这种结构缺陷如何影响SEI的形成和演变仍然是一个悬而未决的问题。在此,利用非破坏性的operando电化学原子力显微镜(EChem-AFM),系统地监测和比较了一对具有代表性的有缺陷和无缺陷石墨材料(即高度取向热解石墨电极和无序石墨电极)上SEI的动态形成和演变。作为对通过EChem-AFM表征电化学循环过程中SEI形貌和力学变化的补充,进行了化学分析和理论计算,以提供SEI形成和演变的机理见解。这些结果为通过设计具有缺陷的碳材料来构建用于锂离子电池及其他领域的功能性SEI提供了指导。

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