在水性电解质中进行可逆电化学的Zwitterionic聚合物渐变介面
Shuo Jin1, Peng-Yu Chen1, Yufeng Qiu1
1Robert Frederick Smith School of Chemical and Biomolecular Engineering, Cornell University, Ithaca, New York 14853, United States.
Journal of the American Chemical Society
|September 16, 2022
概括
基聚合物介质通过提高阳极性能来增强水性电池. 这些接口可实现高能储能和延长电池寿命,解决电池技术的关键问题.
科学领域:
- 材料科学
- 电化学
- 能量储存
背景情况:
- 水性电池提供成本效益高且安全的电能存储.
- 关键的挑战包括阳极可逆性差,形状变化,被动化和水电解.
- 现有的解决方案尚未完全解决这些实际应用的局限性.
研究的目的:
- 开发和研究用于水性电池的新型基聚合物介面.
- 了解这些工程界面的电化学和运输特性.
- 解决阳极的局限性,提高电池的整体性能.
主要方法:
- 使用启动化学蒸汽沉积聚合物在Zn上生长空间调节的zwitterionic聚合物介面.
- 进行了电化学研究,包括高电流密度和面积容量测量.
- 使用分子动力学模拟和实验分析来阐明界面机制.
主要成果:
- 在高电流密度 (20 mA cm−2) 和高面积容量 (10 mAh cm−2) 中实现了高度可逆的 Zn 氧化还原反应.
- 证明交相调节交界水,使离子运输快速,抑制被动化和进化.
- 通过使用开发的介面,观察到ZnRRRNiOOH和ZnRRRR空气配置的延长电池寿命.
结论:
- 可空间调节的Zwitterionic聚合物介面有效提高水性性电池的性能.
- 交相为克服关键Zn阳极挑战提供了途径,提高了安全性和能量密度.
- 这种方法对开发下一代高性能水性电池具有显著的前景.
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