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Systematic density functional theory investigations on cubic lithium-rich iron-based Li2FeO3: A multiple electrons cationic and anionic redox cathode material

密度泛函理论 氧化还原 阴极 离子 氧化态 空位缺陷 锂(药物) 公式单位 化学物理 电子 基态 无机化学 化学 材料科学 计算化学 物理化学 结晶学 原子物理学 晶体结构 有机化学 物理 催化作用 量子力学 内分泌学 医学
作者
Yuyang Chen,Dingguo Xia
出处
期刊:eTransportation [Elsevier BV]
卷期号:10: 100141-100141 被引量:10
标识
DOI:10.1016/j.etran.2021.100141
摘要

Lithium-rich materials with multi-electron redox processes are promising for high energy density lithium-ion batteries. However, the layered manganese-based lithium-rich materials that have been widely studied still have many drawbacks. Studies of new non-layered lithium-rich materials can deepen the understanding of multi-electron redox processes mechanism of the combination of anion and cation. Herein, detailed density functional theory investigations based on the first-principles calculations of cubic lithium-rich iron-based Li2FeO3 are reported. The ground-state Li/vacancy configurations of Li2−xFeO3 (0 ≤ x ≤ 2) at nine Li concentrations are determined, from which the delithiation potential is calculated as ∼4.3 V vs. Li+/Li. According to the Li/vacancy configuration in each ground state, the sequence of lithium removal is suggested from an energetic view. Bader charge and spin calculations suggest the charge compensation during Li removal is divided into two stages. Specifically, Fe4+ is oxidized to Fe5+ during the first Li ion extraction per formula unit, while the second Li ion extraction triggered the oxygen redox exclusively. This work emphasizes the guiding and predictive role of theoretical calculations for the discovery of new cathode materials for lithium batteries, and can certainly be expanded to other material systems.

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