材料科学
合金
图层(电子)
溶解
电解质
沉积(地质)
金属
扫描电子显微镜
阳极
陶瓷
电化学
冶金
复合材料
化学工程
电极
化学
古生物学
物理化学
工程类
生物
沉积物
作者
Nicolas Delaporte,Alexis Péréa,Steve Collin‐Martin,Mireille Léonard,Julie Matton,Hendrix Demers,Daniel Clément,Vincent Gariépy,Wen Zhu
出处
期刊:Batteries
[Multidisciplinary Digital Publishing Institute]
日期:2024-07-17
卷期号:10 (7): 253-253
被引量:5
标识
DOI:10.3390/batteries10070253
摘要
The deposition of a thin LixSny alloy layer by plasma vapor deposition (PVD) on the surface of a Li foil is reported. The formation of a Li-rich alloy is confirmed by the volume expansion (up to 380%) of the layer and by the disappearance of metallic Sn peaks in the X-ray diffractogram. The layer has a much higher hardness than bare Li and can withstand aggressive cycling at 1C. Post-mortem scanning electron microscope observations revealed that the alloy layer remains intact even after fast cycling for hundreds of cycles. A concept of double modification by adding a thin ceramic/polymer layer deposited by a doctor blade on top of the LixSny layer was also reported to be efficient to reach long-term stability for 500 cycles at C/3. Finally, a post-treatment after Sn deposition consisting of a plasma cleaning of the LixSny alloy layer led to a strong improvement in the cycling performance at 1C. The surface is smoother and less oxidized after this treatment. The combination of a Li-rich alloy interlayer, the increase in hardness at the electrolyte/Li interface, and the absence of dissolution of the layer during cycling at high C-rates are reasons for such an improvement in electrochemical performance.
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