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临界剥离电流会导致锂金属负极固态电解质电池在电镀过程中形成枝晶。

Critical stripping current leads to dendrite formation on plating in lithium anode solid electrolyte cells.

作者信息

Kasemchainan Jitti, Zekoll Stefanie, Spencer Jolly Dominic, Ning Ziyang, Hartley Gareth O, Marrow James, Bruce Peter G

机构信息

Department of Materials, University of Oxford, Oxford, UK.

The Faraday Institution, Harwell Campus, Didcot, UK.

出版信息

Nat Mater. 2019 Oct;18(10):1105-1111. doi: 10.1038/s41563-019-0438-9. Epub 2019 Jul 29.

Abstract

A critical current density on stripping is identified that results in dendrite formation on plating and cell failure. When the stripping current density removes Li from the interface faster than it can be replenished, voids form in the Li at the interface and accumulate on cycling, increasing the local current density at the interface and ultimately leading to dendrite formation on plating, short circuit and cell death. This occurs even when the overall current density is considerably below the threshold for dendrite formation on plating. For the Li/LiPSCl/Li cell, this is 0.2 and 1.0 mA cm at 3 and 7 MPa pressure, respectively, compared with a critical current for plating of 2.0 mA cm at both 3 and 7 MPa. The pressure dependence on stripping indicates that creep rather than Li diffusion is the dominant mechanism transporting Li to the interface. The critical stripping current is a major factor limiting the power density of Li anode solid-state cells. Considerable pressure may be required to achieve even modest power densities in solid-state cells.

摘要

确定了剥离时的临界电流密度,该电流密度会导致电镀时枝晶形成和电池失效。当剥离电流密度从界面去除锂的速度比其补充速度快时,界面处的锂中会形成空隙,并在循环过程中积累,增加界面处的局部电流密度,最终导致电镀时枝晶形成、短路和电池死亡。即使总电流密度远低于电镀时枝晶形成的阈值,这种情况也会发生。对于Li/LiPSCl/Li电池,在3MPa和7MPa压力下,这一临界电流密度分别为0.2和1.0 mA/cm²,而在3MPa和7MPa时电镀的临界电流均为2.0 mA/cm²。对剥离的压力依赖性表明,蠕变而非锂扩散是将锂传输到界面的主要机制。临界剥离电流是限制锂阳极固态电池功率密度的主要因素。在固态电池中,可能需要相当大的压力才能实现适度的功率密度。

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