4.6 Article

Improved electrochemical activity of the Li2MnO3-like superstructure in high-nickel Li-rich layered oxide Li1.2Ni0.4Mn0.4O2 and its enhanced performances via tungsten doping

Journal

ELECTROCHIMICA ACTA
Volume 370, Issue -, Pages -

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.electacta.2021.137808

Keywords

High-nickel Li-rich layered oxides; Tungsten doping; Superlattice component; Reversible oxygen redox; Superior performances

Funding

  1. Strategic Priority Research Program of the Chinese Academy of Sciences [XDB36020100]

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In this study, the performance of high-nickel Li-rich layered oxide was improved by partially replacing Mn with W, which effectively suppressed voltage decay, increased capacity, and initial Coulombic efficiency. Doping W favored the activation of the Li2MnO3-like component, reduced primary particle sizes, increased lattice parameters, and enhanced electrochemical kinetics, leading to superior rate capability and high-rate cycling performance.
Voltage decay of Liand Mn-rich layered oxides can be effectively suppressed by increasing their Ni contents, which however normally results in a sizable decrease in capacity probably due to the reduced Li2MnO3-like superlattice component. Here, we reveal that the partial replacement of Mn by W in the high-nickel Li-rich (HNLR) layered oxide Li1.2Ni0.4Mn0.4O2 leads to the increase in both Li2MnO3-like superlattice component and Ni2+ proportion due to the presence of W6+. As a result, the doping of W favors the activation of the Li2MnO3-like component with the reversible redox of more oxygen anions and the creation of a multi-cation chemical environment, accompanied by the size reduction of primary particles and the increase in lattice parameters. The reversible redox of more oxygen anions results in much higher capacity and initial Coulombic efficiency. The reduced sizes of primary particles, along with the lattice expansion significantly enhance the electrochemical kinetics, which accounts for superior rate capability and excellent high-rate cycling performance. This study opens a possibility of improving the performance of HNLR oxides by doping appropriate elements to modify and optimize the properties of the Li2MnO3-like component. (C) 2021 Elsevier Ltd. All rights reserved.

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