Ion-Migration Mechanism: An Overall Understanding of Anionic Redox Activity in Metal Oxide Cathodes of Li/Na-Ion Batteries.

Lai, Yangyang; Xie, Huixian; Li, Peng; Li, Biao; Zhao, Along; Luo, Laibing; Jiang, Zewen; Fang, Yongjin et al. · Adv Mater · 2022

basic_science · Level V

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Abstract

The anionic redox reaction (ARR) has attracted extensive attention due to its potential to enhance the reversible capacity of cathode materials in Li/Na-ion batteries (LIBs/SIBs). However, the understanding of its activation mechanism is still limited by the insufficient mastering of the underlying thermodynamics and kinetics. Herein, a series of Mg/Li/Zn-substituted Na<sub>x</sub> MnO<sub>2</sub> and Li<sub>x</sub> MnO<sub>2</sub> cathode materials are designed to investigate their ARR behaviors. It is found that the ARR can be activated in only Li-substituted Li<sub>x</sub> MnO<sub>2</sub> and not for Mg- and Zn-substituted ones, while all Mg/Li/Zn-substituted Na<sub>x</sub> MnO<sub>2</sub> cathode materials exhibit ARR activities. Combining theoretical calculations with experimental results, such a huge difference between Li and Na cathodes is closely related to the migration of substitution ions from the transition metal layer to the alkali metal layer in a kinetic aspect, which generates unique Li(Na)-O-□<sub>TM</sub> and/or □<sub>Li/</sub> <sub>Na</sub> -O-□<sub>TM</sub> configurations and reducing reaction activation energy to trigger the ARR. Based on these findings, an ion-migration mechanism is proposed to explain the different ARR behaviors between the Na<sub>x</sub> MnO<sub>2</sub> and Li<sub>x</sub> MnO<sub>2</sub> , which can not only reveal the origin of ARR in the kinetic aspect, but also provide a new insight for the development of high-capacity metal oxide cathode materials for LIBs/SIBs.