Issue 37, 2024

A well-designed P2-Na0.67Mn0.85Al0.05Zn0.1O2 cathode for superior sodium-ion batteries

Abstract

A P2-Na0.67MnO2 (NMO) layered cathode has the merits of high capacity and easy preparation. Nevertheless, the severe phase transition (P2–O2) and inferior electronic/ionic conductivities seriously limit its practical application. Herein, a synergistic doping with Al3+ and Zn2+ into Mn-sites is employed to prepare a series of P2-Na0.67Mn1−xyZnxAlyO2 cathodes. In situ XRD and in situ EIS measurements profoundly verify the suppressed phase transition, enhanced structural reversibility and even faster charge transfer during the charge–discharge cycle, respectively. Moreover, DFT calculations confirm the much stronger metallicity of the NMO3 electrode than that of NMO, derived from the more likely transition capability of mobile free electrons in the vicinity of the Fermi level. As a result, a more stable structure and stronger conductivity are obtained. The optimum P2-Na0.67Mn0.85Al0.05Zn0.1O2 (NMO3) can display more superior electrochemical performance, including working capacity (181.85 mA h g−1@0.1C), cycling stability (83%@93.87 mA h g−1@600 cycles@5C) in half-cells and energy density (334.5 W h kg−1) in NMO3//hard carbon full-cells, thereby showing extraordinary application potential in advanced sodium-ion batteries.

Graphical abstract: A well-designed P2-Na0.67Mn0.85Al0.05Zn0.1O2 cathode for superior sodium-ion batteries

Supplementary files

Article information

Article type
Paper
Submitted
18 Jun 2024
Accepted
01 Aug 2024
First published
02 Aug 2024

J. Mater. Chem. A, 2024,12, 25100-25108

A well-designed P2-Na0.67Mn0.85Al0.05Zn0.1O2 cathode for superior sodium-ion batteries

X. Ding, C. Hu, Y. Fan, Y. Lin, J. Liu, Y. Yang, L. Liu, H. Ma, Y. Xiao and L. Han, J. Mater. Chem. A, 2024, 12, 25100 DOI: 10.1039/D4TA04224G

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