电镀(地质)
荷电状态
电池(电)
阳极
电解质
材料科学
吞吐量
石墨
锂离子电池
锂(药物)
电化学
电极
功率(物理)
可靠性工程
核工程
计算机科学
化学
工程类
冶金
热力学
物理
内分泌学
物理化学
无线
电信
医学
地球物理学
作者
Zachary M. Konz,Brendan M. Wirtz,Ankit Verma,Tzu‐Yang Huang,Helen K. Bergstrom,Matthew J. Crafton,David E. Brown,Eric J. McShane,Andrew M. Colclasure,Bryan D. McCloskey
出处
期刊:Nature Energy
[Springer Nature]
日期:2023-02-02
卷期号:8 (5): 450-461
被引量:41
标识
DOI:10.1038/s41560-023-01194-y
摘要
Fast charging of most commercial lithium-ion batteries is limited due to fear of lithium plating on the graphite anode, which is difficult to detect and poses considerable safety risk. Here we demonstrate the power of simple, accessible and high-throughput cycling techniques to quantify irreversible Li plating spanning data from over 200 cells. We first observe the effects of energy density, charge rate, temperature and state of charge on lithium plating, use the results to refine a mature physics-based electrochemical model and provide an interpretable empirical equation for predicting the plating onset state of charge. We then explore the reversibility of lithium plating and its connection to electrolyte design for preventing irreversible Li accumulation. Finally, we design a method to quantify in situ Li plating for commercially relevant graphite|LiNi0.5Mn0.3Co0.2O2 (NMC) cells and compare with results from the experimentally convenient Li|graphite configuration. The hypotheses and abundant data herein were generated primarily with equipment universal to the battery researcher, encouraging further development of innovative testing methods and data processing that enable rapid battery engineering. Lithium-ion batteries are prone to unpredictable failure during fast charging, known as lithium plating. Now, innovative testing protocols can quickly quantify lithium plating and inform battery design strategies to mitigate it.
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