Guo Yue, Hu Zhiqiu, Wang Jiawei, Peng Zhangquan, Zhu Junfa, Ji Hengxing, Wan Li-Jun
Hefei National Laboratory for Physical Sciences at the Microscale, CAS Key Laboratory of Materials for Energy Conversion, iChEM, Department of Applied Chemistry, University of Science and Technology of China, Hefei, Anhui, 230026, China.
State Key Laboratory of Electroanalytical Chemistry, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, Jilin, 130022, China.
Angew Chem Int Ed Engl. 2020 Dec 14;59(51):22963-22967. doi: 10.1002/anie.202008481. Epub 2020 Oct 12.
The rechargeable aluminium-sulfur (Al-S) battery is regarded as a potential alternative beyond lithium-ion battery system owing to its safety, promising energy density, and the high earth abundance of the constituent electrode materials, however, sluggish kinetic response and short life-span are the major issues that limit the battery development towards applications. In this article, we report Co as an electrochemical catalyst in the sulfur cathode that renders a reduced discharge-charge voltage hysteresis and improved capacity retention and rate capability for Al-S batteries. The structural and electrochemical analysis suggest that the catalytic effect of Co is closely associated with the formation of cobalt sulfides and the changes in the valence states of the Co during the electrochemical reactions of the sulfur species, which lead to improved reaction kinetics and sulfur utilization in the cathode. The Al-S battery, assembled with the cathode consisting of Co decorated carbon matrix, demonstrates a considerably reduced voltage hysteresis of 0.8 V, a reversible specific capacity of ≈500 mAh g at 1 A g after 200 discharge-charge cycles and of ≈300 mAh g at 3 A g .
可充电铝硫(Al-S)电池因其安全性、可观的能量密度以及构成电极材料在地壳中的高丰度,被视为锂离子电池系统之外的一种潜在替代方案。然而,缓慢的动力学响应和较短的寿命是限制该电池向实际应用发展的主要问题。在本文中,我们报道了钴作为硫正极中的一种电化学催化剂,它能降低铝硫电池的充放电电压滞后,并提高容量保持率和倍率性能。结构和电化学分析表明,钴的催化作用与硫化钴的形成以及在硫物种电化学反应过程中钴价态的变化密切相关,这导致了正极反应动力学的改善和硫利用率的提高。由钴修饰的碳基体组成正极组装的铝硫电池,其电压滞后显著降低至0.8 V,在1 A g下经过200次充放电循环后,可逆比容量约为500 mAh g,在3 A g下约为300 mAh g。