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用于提升二次电池零下温度性能的电解质开发

Electrolyte Development for Enhancing Sub-Zero Temperature Performance of Secondary Batteries.

作者信息

Dam Tapabrata, Nguyen An-Giang, Cao Guozhong, Park Chan-Jin

机构信息

Department of Materials Science and Engineering, Chonnam National University, 77 Yongbong-ro, Buk-gu, Gwangju, 61186, South Korea.

Center for Environmental Intelligence, VinUniversity, Hanoi, 100000, Vietnam.

出版信息

Small. 2025 Sep;21(35):e2500982. doi: 10.1002/smll.202500982. Epub 2025 Jul 7.

Abstract

Rechargeable batteries serve as a vital energy storage solution in modern society, powering virtually all portable electronic devices and electric vehicles. However, sub-zero temperature operation, particularly below -20 °C, poses significant challenges for rechargeable batteries, greatly limiting their utility in extreme environments. The sluggish ion diffusion and charge transfer kinetics are the primary factors contributing to the suboptimal performance of rechargeable batteries at low temperatures, both intricately linked to the electrolyte's role in governing ion transport at bulk and interfacial levels. This review provides insights into the ion conduction mechanisms across different classes of electrolytes, explores potential failure mechanisms from the electrolyte perspective, and examines relevant works on low-temperature battery applications with a specific focus on various electrolyte classes. Additionally, this work aims to comprehensively cover the recent development of solid-state batteries and discusses advancements in characterization techniques that can expedite battery development for subzero temperature operation. The review concludes by summarizing some advancements and outlining potential directions for future research in the field of low-temperature rechargeable batteries.

摘要

可充电电池是现代社会至关重要的能量存储解决方案,几乎为所有便携式电子设备和电动汽车提供动力。然而,在零下温度环境下运行,尤其是低于-20°C时,可充电电池面临重大挑战,极大地限制了它们在极端环境中的效用。离子扩散缓慢和电荷转移动力学是导致可充电电池在低温下性能欠佳的主要因素,这两者都与电解质在控制本体和界面水平的离子传输中所起的作用密切相关。本综述深入探讨了不同类型电解质的离子传导机制,从电解质角度探究了潜在的失效机制,并审视了低温电池应用的相关研究工作,特别关注各类电解质。此外,这项工作旨在全面涵盖固态电池的最新进展,并讨论可加速低温运行电池开发的表征技术的进步。综述最后总结了一些进展,并概述了低温可充电电池领域未来研究的潜在方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/710b/12410917/920c31c18bb4/SMLL-21-2500982-g006.jpg

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