Yang Yaxuan, Zhao Lingfei, Zhang Yiyang, Yang Zhuo, Lai Wei-Hong, Liang Yaru, Dou Shi-Xue, Liu Min, Wang Yun-Xiao
Key Laboratory of Advanced Functional Materials, Ministry of Education, School of Materials Science and Engineering, Beijing University of Technology, Beijing, 100124, China.
Institute for Superconducting & Electronic Materials, Australian Institute of Innovative Materials, University of Wollongong, Innovation Campus, Squires Way, North Wollongong, NSW, 2500, Australia.
Adv Sci (Weinh). 2024 Dec;11(46):e2410318. doi: 10.1002/advs.202410318. Epub 2024 Oct 22.
Rechargeable batteries have been indispensable for various portable devices, electric vehicles, and energy storage stations. The operation of rechargeable batteries at low temperatures has been challenging due to increasing electrolyte viscosity and rising electrode resistance, which lead to sluggish ion transfer and large voltage hysteresis. Advanced electrolyte design and feasible electrode engineering to achieve desirable performance at low temperatures are crucial for the practical application of rechargeable batteries. Herein, the failure mechanism of the batteries at low temperature is discussed in detail from atomic perspectives, and deep insights on the solvent-solvent, solvent-ion, and ion-ion interactions in the electrolytes at low temperatures are provided. The evolution of electrode interfaces is discussed in detail. The electrochemical reactions of the electrodes at low temperatures are elucidated, and the approaches to accelerate the internal ion diffusion kinetics of the electrodes are highlighted. This review aims to deepen the understanding of the working mechanism of low-temperature batteries at the atomic scale to shed light on the future development of low-temperature rechargeable batteries.
可充电电池对于各种便携式设备、电动汽车和储能站来说不可或缺。由于电解质粘度增加和电极电阻上升,可充电电池在低温下运行一直具有挑战性,这会导致离子转移迟缓以及较大的电压滞后现象。先进的电解质设计和可行的电极工程技术,以在低温下实现理想性能,对于可充电电池的实际应用至关重要。在此,从原子层面详细讨论了电池在低温下的失效机制,并对低温下电解质中的溶剂-溶剂、溶剂-离子和离子-离子相互作用提供了深入见解。详细讨论了电极界面的演变。阐明了电极在低温下的电化学反应,并强调了加速电极内部离子扩散动力学的方法。这篇综述旨在加深对低温电池在原子尺度上工作机制的理解,为低温可充电电池的未来发展提供思路。