Chemomechanics of Rechargeable Batteries: Status, Theories, and Perspectives

背景(考古学) 电池(电) 多学科方法 电化学储能 透视图(图形) 纳米技术 生化工程 系统工程 化学 计算机科学 电化学 工程类 材料科学 超级电容器 人工智能 物理 电极 功率(物理) 古生物学 物理化学 社会学 生物 社会科学 量子力学
作者
Luize Scalco de Vasconcelos,Rong Xu,Zhengrui Xu,Jin Zhang,Nikhil Sharma,Sameep Rajubhai Shah,Jiaxiu Han,Xiaomei He,Xianyang Wu,Hong Sun,Shan Hu,Madison Perrin,Xiaokang Wang,Yijin Liu,Feng Lin,Yi Cui,Kejie Zhao
出处
期刊:Chemical Reviews [American Chemical Society]
卷期号:122 (15): 13043-13107 被引量:203
标识
DOI:10.1021/acs.chemrev.2c00002
摘要

Chemomechanics is an old subject, yet its importance has been revived in rechargeable batteries where the mechanical energy and damage associated with redox reactions can significantly affect both the thermodynamics and rates of key electrochemical processes. Thanks to the push for clean energy and advances in characterization capabilities, significant research efforts in the last two decades have brought about a leap forward in understanding the intricate chemomechanical interactions regulating battery performance. Going forward, it is necessary to consolidate scattered ideas in the literature into a structured framework for future efforts across multidisciplinary fields. This review sets out to distill and structure what the authors consider to be significant recent developments on the study of chemomechanics of rechargeable batteries in a concise and accessible format to the audiences of different backgrounds in electrochemistry, materials, and mechanics. Importantly, we review the significance of chemomechanics in the context of battery performance, as well as its mechanistic understanding by combining electrochemical, materials, and mechanical perspectives. We discuss the coupling between the elements of electrochemistry and mechanics, key experimental and modeling tools from the small to large scales, and design considerations. Lastly, we provide our perspective on ongoing challenges and opportunities ranging from quantifying mechanical degradation in batteries to manufacturing battery materials and developing cyclic protocols to improve the mechanical resilience.
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