硫化物基全固态电池中O2生成的起源及其对高能量密度的影响
Keisuke Yoshikawa1, Takeshi Kato1, Yasuhiro Suzuki1
1Department of Material Design Innovation Engineering, Graduate School of Engineering, Nagoya University, Furo-cho, Chikusa-ku, Nagoya, Aichi, 464-8603, Japan.
概括
在高压充电过程中,硫化物为基础的全固态电池 (SB) 中无形LiNbO3涂层的降解是由氧气释放引起的. 在LiNbxP1-xO3涂层中的元素替代抑制氧气生成,使稳定的高压运行和更好的能量密度.
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
- 电池技术 电池技术
背景情况:
- 基于硫化物的全固态电池 (SB) 使用无形LiNbO3涂层来稳定电化学反应.
- 高压充电对这些无形LiNbO3涂层的稳定性和性能构成挑战.
研究的目的:
- 研究在SBS中高压充电期间无形LiNbO3涂层的降解机制.
- 确定提高SBS高压性能和能量密度的策略.
主要方法:
- 电化学气体分析以检测气体演变.
- 电化学X射线光电子光谱学用于分析表面化学.
- 用修改的LiNbxP1-xO3涂层制造和测试电池.
主要成果:
- 由于在高压充电过程中从无形LiNbO3涂层中提取,因此观察到氧气 (O2) 生成.
- 这种O2释放导致氧化固体电解质的形成,降低了电池的性能.
- 用无形LiNbxP1-xO3进行元素替代,显著减少了O2的释放.
结论:
- 来自LiNbO3涂层的氧气生成是高压SBS的关键故障机制.
- 通过元素替代抑制O2生成对于实现稳定的高压充放电反应至关重要.
- 控制O2释放是提高硫化物基全固态电池能量密度的关键.
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