Wang Xiaohong, Tan Yuchen, Wang Wenyu, Sun Yongming
Wuhan National Laboratory for Optoelectronics, Huazhong University of Science and Technology, Wuhan, 430074, China.
ChemSusChem. 2024 Dec 6;17(23):e202400971. doi: 10.1002/cssc.202400971. Epub 2024 Aug 8.
Mitigating the growth of dendritic lithium (Li) metal on silicon (Si) anodes has become a crucial task for the pursuit of long-term cycling stability of high energy density Si-based lithium-ion batteries (LIBs) under fast charging or other specific conditions. While it is widely known that Li metal plating on Si-based anodes may introduce inferior cycling stability and cause safety concerns, the evolution of the anode/material structure and electrochemical performance with Li metal plating remains largely unexplored. A comprehensive quantitative investigation of the hybrid Li storage mechanism, combining the Li alloying/dealloying mechanism and plating/stripping mechanism, has been conducted to explore the effect of Li plating on Si-based anodes. The findings reveal that Li plating/stripping accounts for the decay of the overall Coulombic efficiency and cycling stability of the hybrid Li storage mechanism. Furthermore, alloying reactions occurring below 0 V encourage the formation of crystalline LiSi, which subsequently exacerbates voltage hysteresis. The performance decay is amplified as the ratio of Li plating/stripping capacity increases, or in other words, as the over-lithiation level rises, thereby posing a threat to the battery's cycling stability. These results provide valuable insights into the design of advanced Si-based electrodes for high energy density LIBs.
减轻硅(Si)阳极上枝晶锂(Li)金属的生长,已成为在快速充电或其他特定条件下追求高能量密度硅基锂离子电池(LIB)长期循环稳定性的关键任务。虽然众所周知,在硅基阳极上镀锂可能会导致较差的循环稳定性并引发安全问题,但阳极/材料结构和电化学性能随锂金属镀层的演变在很大程度上仍未得到探索。为了探究锂镀层对硅基阳极的影响,已对结合锂合金化/脱合金化机制和电镀/剥离机制的混合锂存储机制进行了全面的定量研究。研究结果表明,锂的电镀/剥离是混合锂存储机制整体库仑效率和循环稳定性下降的原因。此外,在0 V以下发生的合金化反应会促使形成结晶LiSi,进而加剧电压滞后。随着锂电镀/剥离容量比的增加,或者换句话说,随着过锂化水平的提高,性能衰减会加剧,从而对电池的循环稳定性构成威胁。这些结果为高能量密度LIB的先进硅基电极设计提供了有价值的见解。