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通过锂储存库洞察快速充电时石墨负极增强的可逆性。

Insights into the Enhanced Reversibility of Graphite Anode Upon Fast Charging Through Li Reservoir.

作者信息

Qian Ji, Zhu Tianyu, Huang Di, Liu Gao, Tong Wei

机构信息

Energy Storage and Distributed Resources Division, Lawrence Berkeley National Laboratory, Berkeley, California 94720, United States.

出版信息

ACS Nano. 2022 Dec 27;16(12):20197-20205. doi: 10.1021/acsnano.2c05428. Epub 2022 Dec 5.

Abstract

Increasing the charging rate and reducing the charging time for Li-ion batteries are crucial to realize the mainstream of electric vehicles. However, it is formidable to avoid the Li plating on graphite anode upon fast charging. Despite the tremendous progress in Li detection techniques, the fundamental mechanism of Li plating and its chemical/electrochemical responses upon cycling still remains elusive. Herein, we present a comprehensive electrochemical method to investigate the fast charging behavior of graphite electrode. A detailed analysis is directed toward understanding the changes in phase, composition, and morphology of the fast-charged graphite. By applying a resting process, we scrutinize the further reactions of the plated Li, which readily transforms into irreversible (dead) Li. We further develop a modified graphite electrode with a thin Ag coating as the Li reservoir. The plated Li can be "absorbed" by the Ag layer to form the Li-Ag solid solution that suppresses the formation of dead Li and provides structural stability, thus promoting the further lithiation of graphite and enhancing the reversibility. This work not only provides additional insights into the fast charging behavior of graphite electrode but also demonstrates a potential strategy to improve the fast charging performance of graphite anode.

摘要

提高锂离子电池的充电速率并缩短充电时间对于实现电动汽车的主流化至关重要。然而,在快速充电时避免锂在石墨阳极上镀覆是一项艰巨的任务。尽管锂检测技术取得了巨大进展,但锂镀覆的基本机制及其在循环过程中的化学/电化学反应仍然难以捉摸。在此,我们提出了一种全面的电化学方法来研究石墨电极的快速充电行为。针对理解快速充电石墨的相、组成和形态变化进行了详细分析。通过应用静置过程,我们仔细研究了镀覆锂的进一步反应,这些锂很容易转化为不可逆的(死)锂。我们进一步开发了一种带有薄银涂层作为锂储存器的改性石墨电极。镀覆的锂可以被银层“吸收”形成锂 - 银固溶体,抑制死锂的形成并提供结构稳定性,从而促进石墨的进一步锂化并增强可逆性。这项工作不仅为石墨电极的快速充电行为提供了更多见解,还展示了一种提高石墨阳极快速充电性能的潜在策略。

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