材料科学
原子层沉积
阳极
硅
碳纤维
图层(电子)
石墨
涂层
电解质
化学工程
氧化物
沉积(地质)
锂(药物)
纳米技术
复合材料
冶金
电极
复合数
化学
医学
古生物学
物理化学
内分泌学
沉积物
工程类
生物
作者
Philipp Stehle,Dragoljub Vranković,Montaha Anjass
出处
期刊:Meeting abstracts
[Institute of Physics]
日期:2022-10-09
卷期号:MA2022-02 (7): 2464-2464
被引量:1
标识
DOI:10.1149/ma2022-0272464mtgabs
摘要
Due to its high availability and extremely high specific capacity, silicon (Si) is the most promising anode material for next generation lithium-ion batteries (LIBs). However, Si anodes are suffering from high volume changes during cycling causing unstable solid-electrolyte interface (SEI). One approach for mitigation of these effects is to embed Si particles into a carbon matrix to create silicon/carbon composites (Si/C). These typically show more stable electrochemical performance than bare silicon materials. Nevertheless, the same failure mechanisms mentioned earlier appear in a less pronounced form. In this work, we further improved the cycling performance of two commercially available Si/C materials by coating thin metal oxide films of different thicknesses on the powders via Atomic Layer Deposition (ALD). The coated powders were analyzed via ICP-OES and AFM measurements. Si/C-graphite anodes with automotive-relevant loadings (~3.5 mAh/cm2) were processed out of the materials and tested in half coin cells (HCCs) and full pouch cells (FPCs). During long-term cycling in FPCs, a significant improvement was observed for some of the ALD-coated materials. After 500 cycles, the capacity retention was already up to 10% higher compared to the pristine materials. Cycling of the FPCs continued until they reached a state of health (SOH) of 80%. By this point, up to the triple number of cycles were achieved by ALD-coated compared to pristine anodes. Post-mortem analysis via various methods was carried out to evaluate the differences in SEI formation and thicknesses.
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