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Manganese-based layered oxides for electrochemical energy storage: a review of degradation mechanisms and engineering strategies at the atomic level

Journal

JOURNAL OF MATERIALS CHEMISTRY A
Volume 10, Issue 37, Pages 19231-19253

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d2ta02242g

Keywords

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Funding

  1. National Natural Science Foundation of China [52072179, 52061135201, 51772154, 51972174]
  2. Natural Science Foundation of Jiangsu Province [BK20200073]
  3. Fundamental Research Funds for the Central Universities [30919011108, 30920041118]

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This article discusses the degradation mechanisms of manganese-based layered oxide (MLO) cathodes in electrochemical energy storage, focusing on the local octahedral distortion induced by the Jahn-Teller (J-T) effect in MLO cathodes and its associated irreversible phase transformation, dissolution/disproportionation reactions, interfacial degradation, and crack formation. The article also reviews the advances in atomic-level structure and property optimizations of MLO materials and the in-depth correlations between structure, function, and property. Finally, the article provides perspectives on the future development of MLO materials.
The ever-increasing demand for high-energy-density electrochemical energy storage has been driving research on the electrochemical degradation mechanisms of high-energy cathodes, among which manganese-based layered oxide (MLO) cathodes have attracted high attention thanks to their low cost and eco-friendliness. More importantly, MLO materials with large and tunable interlayer spacing are ideal candidates for the insertion of (monovalent, divalent, trivalent) alkaline ions, such as Li+, Na+, K+, Zn2+, Mg2+, and Al3+, enabling impressive electrochemical performance. Nevertheless, the local MnO6 octahedron distortion induced by the Jahn-Teller (J-T) effect can lead to irreversible phase transformation, dissolution/disproportionation reactions, interfacial degradation arising from Mn2+, and crack formation, which significantly impact the electrochemical stability of MLO materials. Hence, in this review, we discuss the various degradation processes caused by J-T distortion in MLO cathodes at the atomic level. Advances in the atomic-level structure and property optimizations of MLO materials and in-depth structure-function-property correlations are also systematically reviewed. Finally, we provide our perspectives on the future development of MLO materials. The integration of high-performance MLO cathodes in energy storage devices has great potential to address growing global energy demands.

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