插层(化学)
电化学
二价
离子半径
阴极
电解质
氧化还原
电池(电)
材料科学
离子键合
阳离子聚合
镁
无机化学
化学
离子
化学工程
电极
物理
功率(物理)
有机化学
物理化学
量子力学
工程类
冶金
高分子化学
作者
Ananyo Roy,Mohsen Sotoudeh,Sirshendu Dinda,Yushu Tang,Christian Kübel,Axel Groß,Zhirong Zhao‐Karger,Maximilian Fichtner,Zhenyou Li
标识
DOI:10.1038/s41467-023-44495-2
摘要
Abstract The development of competitive rechargeable Mg batteries is hindered by the poor mobility of divalent Mg ions in cathode host materials. In this work, we explore the dual cation co-intercalation strategy to mitigate the sluggishness of Mg 2+ in model TiS 2 material. The strategy involves pairing Mg 2+ with Li + or Na + in dual-salt electrolytes in order to exploit the faster mobility of the latter with the aim to reach better electrochemical performance. A combination of experiments and theoretical calculations details the charge storage and redox mechanism of co-intercalating cationic charge carriers. Comparative evaluation reveals that the redox activity of Mg 2+ can be improved significantly with the help of the dual cation co-intercalation strategy, although the ionic radius of the accompanying monovalent ion plays a critical role on the viability of the strategy. More specifically, a significantly higher Mg 2+ quantity intercalates with Li + than with Na + in TiS 2 . The reason being the absence of phase transition in the former case, which enables improved Mg 2+ storage. Our results highlight dual cation co-intercalation strategy as an alternative approach to improve the electrochemical performance of rechargeable Mg batteries by opening the pathway to a rich playground of advanced cathode materials for multivalent battery applications.
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