Gu Hanqing, Yang Xiaohu, Chen Song, Zhang Wenming, Yang Hui Ying, Li Zhanyu
Hebei Key Laboratory of Optic-Electronic Information and Materials, National & Local Joint Engineering Laboratory of New Energy Photoelectric Devices, College of Physics Science and Technology, Hebei University, Baoding 071002, China.
Pillar of Engineering Product Development, Singapore University of Technology and Design, 8 Somapah Road, Singapore 487372.
Nano Lett. 2023 Dec 27;23(24):11842-11849. doi: 10.1021/acs.nanolett.3c03654. Epub 2023 Dec 10.
Aluminum-ion batteries have garnered an extensive amount of attention due to their superior electrochemical performance, low cost, and high safety. To address the limitation of battery performance, exploring new cathode materials and understanding the reaction mechanism for these batteries are of great significance. Among numerous candidates, multiple structures and valence states make manganese-based oxides the best choice for aqueous aluminum-ion batteries (AAIBs). In this work, a new cathode consists of γ-MnO with abundant oxygen vacancies. As a result, the electrode shows a high discharge capacity of 481.9 mAh g at 0.2 A g and a sustained reversible capacity of 128.6 mAh g after 200 cycles at 0.4 A g. In particular, through density functional theory calculation and experimental comparison, the role of oxygen vacancies in accelerating the reaction kinetics of H has been verified. This study provides insights into the application of manganese dioxide materials in aqueous AAIBs.
铝离子电池因其优异的电化学性能、低成本和高安全性而受到广泛关注。为了解决电池性能的限制,探索新型阴极材料并理解这些电池的反应机制具有重要意义。在众多候选材料中,多种结构和价态使锰基氧化物成为水系铝离子电池(AAIBs)的最佳选择。在这项工作中,一种新的阴极由具有丰富氧空位的γ-MnO组成。结果,该电极在0.2 A g时显示出481.9 mAh g的高放电容量,在0.4 A g下循环200次后具有128.6 mAh g的持续可逆容量。特别是,通过密度泛函理论计算和实验比较,验证了氧空位在加速H反应动力学中的作用。本研究为二氧化锰材料在水系AAIBs中的应用提供了见解。