Wang Fei, Jiang Min, Zhao Tianshuo, Meng Pengyu, Ren Jianmin, Yang Zhaohui, Zhang Jiao, Fu Chaopeng, Sun Baode
School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai, 200240, People's Republic of China.
Nanomicro Lett. 2022 Aug 20;14(1):169. doi: 10.1007/s40820-022-00915-4.
Rechargeable aluminum-sulfur (Al-S) batteries have been considered as a highly potential energy storage system owing to the high theoretical capacity, good safety, abundant natural reserves, and low cost of Al and S. However, the research progress of Al-S batteries is limited by the slow kinetics and shuttle effect of soluble polysulfides intermediates. Herein, an interconnected free-standing interlayer of iron single atoms supported on porous nitrogen-doped carbon nanofibers (FeSAs-NCF) on the separator is developed and used as both catalyst and chemical barrier for Al-S batteries. The atomically dispersed iron active sites (Fe-N) are clearly identified by aberration-corrected high-angle annular dark-field scanning transmission electron microscopy and X-ray absorption near-edge structure. The Al-S battery with the FeSAs-NCF shows an improved specific capacity of 780 mAh g and enhanced cycle stability. As evidenced by experimental and theoretical results, the atomically dispersed iron active centers on the separator can chemically adsorb the polysulfides and accelerate reaction kinetics to inhibit the shuttle effect and promote the reversible conversion between aluminum polysulfides, thus improving the electrochemical performance of the Al-S battery. This work provides a new way that can not only promote the conversion of aluminum sulfides but also suppress the shuttle effect in Al-S batteries.
由于理论容量高、安全性好、天然储量丰富以及铝和硫成本低,可充电铝硫(Al-S)电池被认为是一种极具潜力的储能系统。然而,Al-S电池的研究进展受到可溶性多硫化物中间体动力学缓慢和穿梭效应的限制。在此,开发了一种支撑在隔膜上的多孔氮掺杂碳纳米纤维(FeSAs-NCF)负载的铁单原子互连自立中间层,并将其用作Al-S电池的催化剂和化学屏障。通过像差校正高角度环形暗场扫描透射电子显微镜和X射线吸收近边结构清楚地识别出原子分散的铁活性位点(Fe-N)。具有FeSAs-NCF的Al-S电池显示出780 mAh g的改进比容量和增强的循环稳定性。实验和理论结果表明,隔膜上原子分散的铁活性中心可以化学吸附多硫化物并加速反应动力学,以抑制穿梭效应并促进多硫化铝之间的可逆转化,从而提高Al-S电池的电化学性能。这项工作提供了一种新方法,不仅可以促进硫化铝的转化,还可以抑制Al-S电池中的穿梭效应。