Sun Siyu, Wang Kehan, Hong Zhanglian, Zhi Mingjia, Zhang Kai, Xu Jijian
Department of Chemistry, City University of Hong Kong, Hong Kong, 999077, People's Republic of China.
State Key Laboratory of Silicon Materials, School of Materials Science and Engineering, Zhejiang University, Hangzhou, 310027, People's Republic of China.
Nanomicro Lett. 2023 Nov 29;16(1):35. doi: 10.1007/s40820-023-01245-9.
Electrolyte design holds the greatest opportunity for the development of batteries that are capable of sub-zero temperature operation. To get the most energy storage out of the battery at low temperatures, improvements in electrolyte chemistry need to be coupled with optimized electrode materials and tailored electrolyte/electrode interphases. Herein, this review critically outlines electrolytes' limiting factors, including reduced ionic conductivity, large de-solvation energy, sluggish charge transfer, and slow Li-ion transportation across the electrolyte/electrode interphases, which affect the low-temperature performance of Li-metal batteries. Detailed theoretical derivations that explain the explicit influence of temperature on battery performance are presented to deepen understanding. Emerging improvement strategies from the aspects of electrolyte design and electrolyte/electrode interphase engineering are summarized and rigorously compared. Perspectives on future research are proposed to guide the ongoing exploration for better low-temperature Li-metal batteries.
电解质设计为能够在零下温度下运行的电池开发提供了最大的机遇。为了在低温下从电池中获得最大的能量存储,电解质化学的改进需要与优化的电极材料以及定制的电解质/电极界面相结合。在此,本综述批判性地概述了电解质的限制因素,包括离子电导率降低、去溶剂化能大、电荷转移缓慢以及锂离子在电解质/电极界面间传输缓慢,这些因素会影响锂金属电池的低温性能。文中还给出了详细的理论推导,以解释温度对电池性能的明确影响,从而加深理解。总结并严格比较了从电解质设计和电解质/电极界面工程方面出现的改进策略。提出了对未来研究的展望,以指导正在进行的关于更好的低温锂金属电池的探索。