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Electrochemically Induced Phase Transformation in Vanadium Oxide Boosts Zn-Ion Intercalation

Authors :
Mo, Li’e
Huang, Yang
Wang, Yifan
Wei, Tingting
Zhang, Xianxi
Zhang, Hong
Ren, Yingke
Ji, Denghui
Li, Zhaoqian
Hu, Linhua
Source :
ACS Nano; January 2024, Vol. 18 Issue: 1 p1172-1180, 9p
Publication Year :
2024

Abstract

Vanadium oxides are excellent cathode materials with large storage capacities for aqueous zinc-ion batteries, but their further development has been hampered by their low electronic conductivity and slow Zn2+diffusion. Here, an electrochemically induced phase transformation strategy is proposed to mitigate and overcome these barriers. In situX-ray diffraction analysis confirms the complete transformation of tunnel-like structural V6O13into layered V5O12·6H2O during the initial electrochemical charging process. Theoretical calculations reveal that the phase transformation is crucial to reducing the Zn2+migration energy barrier and facilitating fast charge storage kinetics. The calculated band structures indicate that the bandgap of V5O12·6H2O (0.0006 eV) is lower than that of V6O13(0.5010 eV), which enhanced the excitation of charge carriers to the conduction band, favoring electron transfer in redox reactions. As a result, the transformed V5O12·6H2O delivers a high capacity of 609 mA h g–1at 0.1 A g–1, superior rate performance (300 mA h g–1at 20 A g–1), fast-charging capability (<7 min charging for 465 mA h g–1), and excellent cycling stability with a reversible capacity of 346 mA h g–1at 5 A g–1after 5000 cycles.

Details

Language :
English
ISSN :
19360851 and 1936086X
Volume :
18
Issue :
1
Database :
Supplemental Index
Journal :
ACS Nano
Publication Type :
Periodical
Accession number :
ejs65028298
Full Text :
https://doi.org/10.1021/acsnano.3c11217