2+-预间接V2O5作为用于Zn-I电池中的聚化固定的双功能阴极添加剂
Xiaoyu Bi1,2, Ao Yu1,2, Jing Zhang3
1Catalonia Institute for Energy Research - IREC Sant Adrià de Besòs, Barcelona 08930, Catalonia, Spain.
ACS nano
|June 30, 2025
概括
离子预间接氧化纳米带通过防止穿和增强离子运输来改善水性- (Zn-I) 电池. 这种混合阴极添加剂提高了性能,为先进的电池应用提供了高能量密度和稳定的循环.
科学领域:
- 电化学 电化学 电化学
- 材料科学 材料科学 材料科学
- 储能 储能 储能 储能 储能 储能
背景情况:
- 水性- (Zn-I2) 电池提供安全,环保和资源丰富的能量存储.
- 性能限制源于活性物质的转移和转换型电极的低库伦比效率.
研究的目的:
- 通过解决穿和改善离子动力学来提高Zn-I2电池的性能.
- 开发一种高性能阴极添加剂,使用离子预接氧化 (CaVO) 纳米带.
主要方法:
- 合成的离子预间接V2O5 (CaVO) 纳米带作为阴极添加剂.
- 制造的复合材料阴极 (CaVO/AC@I2) 使用活性炭和CaVO用于固定.
- 研究了物理捕获和化学吸附对和离子管理的协同效应.
主要成果:
- 实现了物种的优越固定,缩短了Zn2+扩散通路.
- 由于Ca诱导的晶体结构改变,观察到增强的Zn2+运输和容量贡献.
- 证明了高的特定容量 (244mAhg-1在0.2Ag-1),优异的速率能力 (78.5%的保留在5Ag-1),和能量密度 (279Whkg-1).
结论:
- 使用CaVO作为阴极添加剂的混合储能策略显著提高了Zn-I电池的性能.
- 协同的物理和化学相互作用有效地抑制了的运输,并促进了离子运输.
- 提出了开发下一代高性能水性电池的可行方法.
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