Critical role of dynamic structure on ion migration in H2V2O5 cathode material for rechargeable batteries

L Lei Xu J Jing Shi D Dong Jin P Peng Liu B Baozhen Sun (Jiangxi Provincial Key Laboratory of Green Hydrogen and Advanced Catalysis, College of Physics and Communication Electronics, Jiangxi Normal University 1 , Nanchang 330022,) S Shuying Zhong (Jiangxi Provincial Key Laboratory of Green Hydrogen and Advanced Catalysis, College of Physics and Communication Electronics, Jiangxi Normal University 1 , Nanchang 330022,) M Musheng Wu (Jiangxi Provincial Key Laboratory of Green Hydrogen and Advanced Catalysis, College of Physics and Communication Electronics, Jiangxi Normal University 1 , Nanchang 330022,) B Bo Xu C Chuying Ouyang

Abstract

Understanding ionic migration mechanisms in solid-state materials is of paramount importance for advancing rechargeable batteries technologies. Combining first-principle calculations and ab initio molecular dynamics (MD) simulations, we reveal a novel mechanism of ionic migration in 3D tunnel-type H2V2O5, a newly developed cathode material formed by proton pre-intercalated α-V2O5, where hydrogen bonds dynamic play a critical regulatory role. We demonstrate the rotation behavior of –OH groups and the synergistic coupling between the –OH rotation and divalent ion migration in H2V2O5. The paddle-wheel mechanism, as we referred to here, enables ultralow migration barriers (Eb) of 0.56 eV for Zn2+ and 0.44 eV for Mg2+. In a sharp contrast, this mechanism was not observed for monovalent cations (such as Li+) using the climbing image nudged elastic band (NEB) method, which yields Eb of 0.57 eV. However, by MD simulations, we obtained the activation energy Ea of 0.23 eV for Li+ migration. The discrepancy was found to lie in the paddle-wheel mechanism, which needs to be activated at elevated temperature (≥150 K) for Li+ migration and, therefore, cannot be captured in NEB calculation at 0 K. Our results thus highlight the importance of understanding the paddle-wheel mechanism, meanwhile, the potential of proton pre-intercalated α-V2O5 for cathode materials of both monovalent and divalent ion batteries.

Article Details

Volume / Issue Vol. 163, Issue 3
Published July 21, 2025
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (9)

L

Lei Xu

J

Jing Shi

D

Dong Jin

P

Peng Liu

B

Baozhen Sun

Jiangxi Provincial Key Laboratory of Green Hydrogen and Advanced Catalysis, College of Physics and Communication Electronics, Jiangxi Normal University 1 , Nanchang 330022,

S

Shuying Zhong

Jiangxi Provincial Key Laboratory of Green Hydrogen and Advanced Catalysis, College of Physics and Communication Electronics, Jiangxi Normal University 1 , Nanchang 330022,

M

Musheng Wu

Jiangxi Provincial Key Laboratory of Green Hydrogen and Advanced Catalysis, College of Physics and Communication Electronics, Jiangxi Normal University 1 , Nanchang 330022,

B

Bo Xu

C

Chuying Ouyang