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Edge-Plane-Selective Formation of Mn Vacancies in β-Na0.7MnO2+y for Air-Stable Cathode Materials in Sodium-Ion Batteries
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Title
Edge-Plane-Selective Formation of Mn Vacancies in β-Na0.7MnO2+y for Air-Stable Cathode Materials in Sodium-Ion Batteries
Issued Date
2025-02
Citation
Kim, Hyeongi. (2025-02). Edge-Plane-Selective Formation of Mn Vacancies in β-Na0.7MnO2+y for Air-Stable Cathode Materials in Sodium-Ion Batteries. ACS Materials Letters, 7(3), 1003–1011. doi: 10.1021/acsmaterialslett.4c02642
Type
Article
Keywords
P2LITHIUMOXIDESX LESS-THANELECTROCHEMICAL PERFORMANCE
ISSN
2639-4979
Abstract
Manganese-based P2-type NaxMnO2+y, particularly β-Na0.7MnO2+y, exhibit high reversible capacity but are prone to stability issues, especially hydration-induced degradation when exposed to air. Herein, a significant improvement in the air stability of β-Na0.7MnO2+y cathodes is achieved through a selective transition of their edge planes to α-Na0.7MnO2+z. When β-Na0.7MnO2+y particles are oxidized at a relatively low temperature (350 °C), oxygen is selectively inserted at the edge planes due to the higher energy barrier for oxygen insertion at the basal planes compared with the edge planes. This mild oxidation selectively locally creates manganese vacancies near the edge plane surface, promoting the exclusive formation of α-Na0.7MnO2+z on the edge surface. The α-Na0.7MnO2+z nanolayers on the edge planes effectively suppress H2O insertion during air exposure, eventually mitigating the phase transition of β-Na0.7MnO2+y to NaγMnO2·δH2O birnessite during storage. Moreover, this plane-selective formation of α-Na0.7MnO2+z enhances the electrochemical performance of β-Na0.7MnO2+y, such as stable capacity retention. © 2025 American Chemical Society.
URI
http://hdl.handle.net/20.500.11750/58126
DOI
10.1021/acsmaterialslett.4c02642
Publisher
American Chemical Society
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Lee, Hochun이호춘

Department of Energy Science and Engineering

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