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Research Article | Open Access | Just Accepted

Atomic-scale origins of ultraviolet-driven phase transition behavior in strongly correlated vanadium dioxide heterostructures

Tao Zhao1Hongyi Ouyang1Jinxin Gu2Yanyu Chen1Xingquan Guo1Qianqian Zhao1Jiarui Lu1Chao Li1Yanfei Yang1Haobo Fan1Shuliang Dou1( )Jiupeng Zhao3( )Yao Li1 ( )

1 Country Center for Composite Materials and Structure, Harbin Institute of Technology, Harbin 150001, China

2 Suzhou Laboratory, Suzhou 215123, China

3 School of Chemical Engineering and Technology, Harbin Institute of Technology, Harbin 150001, China

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Abstract

Precise control over multiple functional phases in strongly correlated VO₂ and its heterostructures establishes a correlation between inclusions, defect dynamics and the stabilization of monoclinic versus tetragonal phases. However, a comprehensive atomic-level understanding of these processes remains insufficient to elucidate the underlying multiple defect-phase relationship mechanisms. Herein, we uncover the atomic-scale inter-layer defect transfer mechanism in VO2-based Fabry-Pérot resonant cavity heterostructures under vacuum-ultraviolet (VUV) irradiation. The irradiation induces cleavage of In-O and Sn-O bonds within the indium-tin-oxide (ITO) layer, triggering the concerted diffusive migration of In, Sn, and oxygen vacancies with VO2. This migration elevates electron occupancy in the hybridized energy levels of the d//-bond orbital and In/Sn-d orbitals within V-V dimers. The enhanced d// electron density strengthens orbital overlap with π* antibonding orbitals, driving the VO2 phase transition from insulating monoclinic to metallic rutile. These results offer important theoretical and experimental insights into defect-mediated phase engineering in strongly correlated oxides and hold promise for advancing applications in quantum optoelectronic information and adaptive optics.

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Cite this article:
Zhao T, Ouyang H, Gu J, et al. Atomic-scale origins of ultraviolet-driven phase transition behavior in strongly correlated vanadium dioxide heterostructures. Nano Research, 2026, https://doi.org/10.26599/NR.2026.94908919

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Received: 27 February 2026
Revised: 07 June 2026
Accepted: 08 June 2026
Available online: 08 June 2026

© The Author(s) 2026. Published by Tsinghua University Press.

This is an open access article under the terms of the Creative Commons Attribution 4.0 International License (CC BY 4.0, https://creativecommons.org/licenses/by/4.0/)