揭示了碳酸盐电解质的硫电池中阴极电解质接口形成的隐藏的电化学途径
Francisco J García-Soriano1, Jan Jerovsek1, Santiago A Maldonado-Ochoa2,3
1National Institute of Chemistry, Hajdrihova 19, 1000 Ljubljana, Slovenia.
概括
研究人员探索了微孔碳和碳酸盐电解质如何稳定硫 (Li-S) 电池. 形成一个保护LiF层,增强循环稳定性和容量保留,用于实际的Li-S电池开发.
科学领域:
- 材料科学 材料科学 材料科学
- 电化学 电化学 电化学
- 储能 储能 储能 储能 储能 储能
背景情况:
- 硫 (Li-S) 电池面临多硫化物溶解和电解质兼容性的挑战.
- 开发稳定和高容量的Li-S电池对于下一代能源存储至关重要.
研究的目的:
- 研究微孔碳和碳酸盐电解质在Li-S电池中的作用.
- 了解阴极-电解质间相 (CEI) 的形成和功能.
- 提高Li-S电池的循环稳定性和容量保留.
主要方法:
- 在微孔碳中对具有不同硫含量的Li-S细胞进行电化学分析.
- 使用电化学方法对阴极-电解质间相 (CEI) 的表征.
- 在现场调查CEI形成机制.
主要成果:
- 提出了一种电化学核性机制,用于CEI形成,涉及聚硫化物和溶剂分子.
- 确定LiF是保护CEI的主要组成部分,封闭碳孔.
- 证明微孔中的硫含量增加可以提高碳酸盐电解质的循环稳定性.
结论:
- 开发的CEI有效地防止了溶剂入侵,并稳定了Li-S系统.
- 微孔碳和碳酸盐电解质为强大的Li-S电池设计提供了可行的策略.
- 优化的孔隙结构和电解质是实现Li-S电池高稳定性和容量的关键.
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