Ordered VO 2 nanoflower with amorphous hybrid interfaces induced by Iodide ion doping for superior Zinc-ion storage

Abstract

With its special one-dimensional tunnel structure, VO₂ stands out as a highly promising cathode material for aqueous zinc-ion batteries (AZIBs). However, its intrinsically low electronic conductivity and pronounced structural degradation hinder its practical application. In this work, controllable doping of VO₂ with I⁻ was successfully achieved via a one-step hydrothermal method. It was found that I⁻ induced the evolution of VO₂ from disordered clusters to highly ordered nanoflower-like spheres. Meanwhile, lattice incorporation of I⁻ leaded to an expansion of the tunnel spacing and induced the enrichment of oxygen vacancies. The resulted amorphous hybrid structure accommodated the local strain associated with repeated Zn²⁺ insertion and extraction. In addition, I⁻ doping facilitated the valence transition from V⁴⁺ to V³⁺, optimizing the intrinsic electronic structure and charge-transfer kinetics of the material.The multiscale routes including morphology, crystal structure, and electronic states synergistically enhanced the electrochemical performance of the VO₂ cathode. The optimized IVO-30 electrode delivered a high specific capacity of 543.6 mAh g⁻¹ at 0.5 A g⁻¹, retained 87.3% of its capacity even at a high rate of 10 A g⁻¹ and exhibited near-100% Coulombic efficiency along with excellent structural stability. This work provides new insights for design of high-performance cathode materials for AZIBs.

Supplementary files

Article information

Article type
Paper
Submitted
24 Feb 2026
Accepted
07 Apr 2026
First published
09 Apr 2026

J. Mater. Chem. A, 2026, Accepted Manuscript

Ordered VO 2 nanoflower with amorphous hybrid interfaces induced by Iodide ion doping for superior Zinc-ion storage

C. Wang, Z. Liu, H. Wang, Y. Sha, J. Wang, J. Jia, Y. Du, W. Li and L. Qian, J. Mater. Chem. A, 2026, Accepted Manuscript , DOI: 10.1039/D6TA01622G

To request permission to reproduce material from this article, please go to the Copyright Clearance Center request page.

If you are an author contributing to an RSC publication, you do not need to request permission provided correct acknowledgement is given.

If you are the author of this article, you do not need to request permission to reproduce figures and diagrams provided correct acknowledgement is given. If you want to reproduce the whole article in a third-party publication (excluding your thesis/dissertation for which permission is not required) please go to the Copyright Clearance Center request page.

Read more about how to correctly acknowledge RSC content.

Social activity

Spotlight

Advertisements