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锂/钠离子电池中阴离子氧化还原的统一图景。

Unified picture of anionic redox in Li/Na-ion batteries.

作者信息

Ben Yahia Mouna, Vergnet Jean, Saubanère Matthieu, Doublet Marie-Liesse

机构信息

Institut Charles Gerhardt, UMR 5253, CNRS-Université de Montpellier, Montpellier, France.

Réseau Français sur le Stockage Électrochimique de l'Énergie (RS2E), Amiens, France.

出版信息

Nat Mater. 2019 May;18(5):496-502. doi: 10.1038/s41563-019-0318-3. Epub 2019 Mar 18.

Abstract

Anionic redox in Li-rich and Na-rich transition metal oxides (A-rich-TMOs) has emerged as a new paradigm to increase the energy density of rechargeable batteries. Ever since, numerous electrodes delivering extra anionic capacity beyond the theoretical cationic capacity have been reported. Unfortunately, most often the anionic capacity achieved in charge is partly irreversible in discharge. A unified picture of anionic redox in A-rich-TMOs is designed here to identify the electronic origin of this irreversibility and to propose new directions to improve the cycling performance of the electrodes. The electron localization function is introduced as a holistic tool to unambiguously locate the oxygen lone pairs in the structure and follow their participation in the redox activity of A-rich-TMOs. The charge-transfer gap of transition metal oxides is proposed as the pertinent observable to quantify the amount of extra capacity achievable in charge and its reversibility in discharge, irrespective of the material chemical composition. From this generalized approach, we conclude that the reversibility of the anionic capacity is limited to a critical number of O holes per oxygen, h ≤ 1/3.

摘要

富锂和富钠过渡金属氧化物(富A过渡金属氧化物)中的阴离子氧化还原已成为提高可充电电池能量密度的一种新范式。从那时起,已有大量报道称电极具有超出理论阳离子容量的额外阴离子容量。不幸的是,电荷中实现的阴离子容量在放电时大多部分是不可逆的。本文设计了一幅富A过渡金属氧化物中阴离子氧化还原的统一图景,以确定这种不可逆性的电子起源,并提出改善电极循环性能的新方向。引入电子定位函数作为一种整体工具,以明确确定结构中的氧孤对,并跟踪它们参与富A过渡金属氧化物的氧化还原活性。提出过渡金属氧化物的电荷转移能隙作为相关的可观测指标,以量化充电时可实现的额外容量及其放电时的可逆性,而与材料的化学成分无关。从这种通用方法中,我们得出结论,阴离子容量的可逆性限于每个氧的O空穴的临界数量,h≤1/3。

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