Weakening electrostatic effect and strengthening couple with crystal lattice in vanadium oxide for enhanced Zn2+ storage

Vanadium oxides (VOs) have been widely explored as cathode materials for aqueous zinc ion batteries (AZIBs). However, their practical application is hindered by sluggish Zn2+ transport kinetics and poor structural stability arising from strong electrostatic interactions. To address these issues, potassium tartrate (PT) is introduced into the layered V2O5 framework to construct a hybrid material (VO–PT) featuring C4H4O62− anions and K+ pillars. In this architecture, the polar functional groups (–COO−) of tartrate anions effectively weaken the electrostatic interaction between Zn2+ and lattice oxygen while simultaneously providing additional Zn2+ storage sites. Meanwhile, the –OH groups interact with V centers, strengthening the coupling between the organic species and the host framework. Concurrently, K+ ions act as interlayer pillars, together enhancing structural integrity. Comprehensive characterizations combined with theoretical calculations reveal that this synergistic modulation not only reduces the energy barriers for Zn2+ insertion/extraction but also facilitates ion diffusion kinetics. As a result, the VO–PT||Zn full cell delivers a high specific capacity of 415.3 mAh g−1 at 0.2 A g−1 and maintains a capacity retention of 84.9% after 5000 cycles at high current density. This work provides a viable strategy for designing stable and high-performance vanadium-based cathodes for AZIBs.

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Publication Details

Journal
Journal of Applied Physics
Published
2026-09-28
DOI
https://doi.org/10.1063/5.0353756
Primary Topic
Advanced battery technologies research
Type
article
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article

Weakening electrostatic effect and strengthening couple with crystal lattice in vanadium oxide for enhanced Zn2+ storage

Meijia Qiu, Yuxuan Liang, Han Huang, Peng Sun et al.
Journal of Applied Physics
Advanced battery technologies research
article

Weakening electrostatic effect and strengthening couple with crystal lattice in vanadium oxide for enhanced Zn2+ storage

Meijia Qiu, Yuxuan Liang, Han Huang, Peng Sun, Ross Inglis, Hongxu Zhang, Wenjie Mai
article en

Abstract

Vanadium oxides (VOs) have been widely explored as cathode materials for aqueous zinc ion batteries (AZIBs). However, their practical application is hindered by sluggish Zn2+ transport kinetics and poor structural stability arising from strong electrostatic interactions. To address these issues, potassium tartrate (PT) is introduced into the layered V2O5 framework to construct a hybrid material (VO–PT) featuring C4H4O62− anions and K+ pillars. In this architecture, the polar functional groups (–COO−) of tartrate anions effectively weaken the electrostatic interaction between Zn2+ and lattice oxygen while simultaneously providing additional Zn2+ storage sites. Meanwhile, the –OH groups interact with V centers, strengthening the coupling between the organic species and the host framework. Concurrently, K+ ions act as interlayer pillars, together enhancing structural integrity. Comprehensive characterizations combined with theoretical calculations reveal that this synergistic modulation not only reduces the energy barriers for Zn2+ insertion/extraction but also facilitates ion diffusion kinetics. As a result, the VO–PT||Zn full cell delivers a high specific capacity of 415.3 mAh g−1 at 0.2 A g−1 and maintains a capacity retention of 84.9% after 5000 cycles at high current density. This work provides a viable strategy for designing stable and high-performance vanadium-based cathodes for AZIBs.

Journal of Applied PhysicsVol. 140(12)
Jinan University (CN), South China Normal University (CN), China Guangzhou Analysis and Testing Center (CN)
Affordable and clean energy
Openalex Percentile: Top 22%
Advanced battery technologies research
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Weakening electrostatic effect and strengthening couple with crystal lattice in vanadium oxide for enhanced Zn2+ storage — Meijia Qiu, Yuxuan Liang, et al. · Journal of Applied Physics (2026) | TGRS Research Map | TGRS