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Resolving Current-Dependent Regimes of Electroplating Mechanisms for Fast Charging Lithium Metal Anodes

  • David T. Boyle
  • , Yuzhang Li
  • , Allen Pei
  • , Rafael A. Vilá
  • , Zewen Zhang
  • , Philaphon Sayavong
  • , Mun Sek Kim
  • , William Huang
  • , Hongxia Wang
  • , Yunzhi Liu
  • , Rong Xu
  • , Robert Sinclair
  • , Jian Qin
  • , Zhenan Bao
  • , Yi Cui
  • Stanford University
  • University of California at Los Angeles
  • SLAC National Accelerator Laboratory

科研成果: 期刊稿件文章同行评审

109 引用 (Scopus)

摘要

Poor fast-charge capabilities limit the usage of rechargeable Li metal anodes. Understanding the connection between charging rate, electroplating mechanism, and Li morphology could enable fast-charging solutions. Here, we develop a combined electroanalytical and nanoscale characterization approach to resolve the current-dependent regimes of Li plating mechanisms and morphology. Measurement of Li+transport through the solid electrolyte interphase (SEI) shows that low currents induce plating at buried Li||SEI interfaces, but high currents initiate SEI-breakdown and plating at fresh Li||electrolyte interfaces. The latter pathway can induce uniform growth of {110}-faceted Li at extremely high currents, suggesting ion-transport limitations alone are insufficient to predict Li morphology. At battery relevant fast-charging rates, SEI-breakdown above a critical current density produces detrimental morphology and poor cyclability. Thus, prevention of both SEI-breakdown and slow ion-transport in the electrolyte is essential. This mechanistic insight can inform further electrolyte engineering and customization of fast-charging protocols for Li metal batteries.

源语言英语
页(从-至)8224-8232
页数9
期刊Nano Letters
22
20
DOI
出版状态已出版 - 26 10月 2022
已对外发布

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