Delocalized spin-polarized electrons enhance the performance of ion batteries

Abstract

Numerous studies have confirmed that delocalized electron engineering can enhance the performance of rechargeable batteries. However, the impact of spin-polarized electrons induced by electronic correlation effects remains to be clarified. Herein, we introduce vacancies into the two-dimensional ferromagnetic material VSe2 to generate delocalized spin-polarized electrons and investigate the regulatory effect of these spin electrons on the performance of cation batteries. Electronic structure analysis reveals that both V vacancies and Se vacancies generate delocalized electrons. Compared with pristine VSe2, VSe2 with V vacancies (VSVV) and VSe2 with Se vacancies (VSSV) can significantly enhance the performance in Li+, Na+, Mg2+, and Ca2+ batteries. We compare the performance of various ion batteries based on different substrates (VSe2, VSVV, and VSSV) including ion diffusion barriers, transferred charges, theoretical capacity, and open-circuit voltage. Among these, Se vacancies induce a stronger spin polarization and ion batteries based on VSSV exhibit superior performance (in Mg2+ batteries, before and after the introduction of Se vacancies, the ion diffusion energy barriers and open-circuit voltages decreased by 52.3% and 30.6%, respectively, while the transferred charges and theoretical capacities increased by 37% and 10%, respectively). This study provides insights into exploring the relationship between electronic spin polarization and battery performance enhancement.

Graphical abstract: Delocalized spin-polarized electrons enhance the performance of ion batteries

Supplementary files

Article information

Article type
Paper
Submitted
19 Dec 2025
Accepted
04 Jun 2026
First published
16 Jun 2026

J. Mater. Chem. A, 2026, Advance Article

Delocalized spin-polarized electrons enhance the performance of ion batteries

H. Xing, M. Wang, S. Zhang, F. Liu, F. Lyu, C. Ning, C. Xie, S. Zhang, T. Hou, S. Zhu and R. Xiong, J. Mater. Chem. A, 2026, Advance Article , DOI: 10.1039/D5TA10288J

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