带结构工程和轨道定向控制 构建双重活性站点,以实现高效的硫逆氧反应
Zhoujie Lao1, Zhiyuan Han1, Jiabin Ma1
1Shenzhen Geim Graphene Center, Tsinghua-Berkeley Shenzhen Institute & Tsinghua Shenzhen International Graduate School, Tsinghua University, Shenzhen, 518055, P. R. China.
Advanced materials (Deerfield Beach, Fla.)
|October 17, 2023
概括
研究人员为硫 (Li-S) 电池开发了一种新的催化剂策略. 通过精确控制与聚硫化物的相互作用,他们提高了电池性能和能量密度,为实际应用铺平了道路.
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:
- 溶性聚硫化物的穿效应阻碍了硫 (Li-S) 电池的性能.
- 了解和控制氧化还原反应的动力学对于Li-S电池的催化剂设计至关重要.
- 多步电化学过程中动力差异的根本原因尚不清楚.
研究的目的:
- 解读电催化硫反应中的相互作用变化.
- 为了证明一个双协调的设计策略来修改电催化选择性.
- 开发用于实用的Li-S电池的先进催化剂.
主要方法:
- 使用二硫化物 (WS2) 作为模型系统.
- 雇员带结构工程和轨道方向控制.
- 设计的添加剂和缺乏硫的WS2 (B-WS2-x) 催化剂.
主要成果:
- B-WS2-x催化剂在多硫化物中与和硫部位的调节相互作用,有利于短链多硫化物.
- 通过区分单个反应步骤的动力学来实验确认修改的相互作用趋势.
- 一个Ah级袋式电池在低电解质/硫比下实现了417.6Wh/kg-1的重力测量能量密度.
结论:
- 双重协调策略有效地改变了电催化选择性.
- 设计的B-WS2-x催化剂为开发先进的Li-S电池催化剂提供了合理的方法.
- 这项工作为增强下一代能源存储中的催化活性提供了一条途径.
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