Phase engineering of vanadium oxide thin films enabled by oxygen pressure control and vacuum annealing

Vanadium oxides are known for a large diversity of crystalline phases with different interesting physical and chemical properties and a wide range of applications. However, due to the close stoichiometric composition of these phases, the growth parameters should be carefully adjusted for each VOx phase. In this work, we propose a method of vanadium oxide thin films phase engineering: growth of amorphous VOx in an oxygen atmosphere at room temperature, followed by vacuum annealing. Our method enables target synthesis of VO2, V4O9, V3O7, and V2O5 phases. A desired phase in a polycrystalline thin-film form can be obtained by finely tuning oxygen pressure during room temperature deposition while keeping other parameters constant. The synthesized thin films can be utilized for various applications: neuromorphic hardware, supercapacitors, sensors, and catalysis.

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Publication Details

Journal
Applied Physics Letters
Published
2026-09-14
DOI
https://doi.org/10.1063/5.0350885
Primary Topic
Transition Metal Oxide Nanomaterials
Type
article
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article

Phase engineering of vanadium oxide thin films enabled by oxygen pressure control and vacuum annealing

Yu. Yu. Lebedinskiǐ, Sergei Zarubin, Petr Shvets, Ksenia Maksimova et al.
Applied Physics Letters
Transition Metal Oxide Nanomaterials
article

Phase engineering of vanadium oxide thin films enabled by oxygen pressure control and vacuum annealing

Yu. Yu. Lebedinskiǐ, Sergei Zarubin, Petr Shvets, Ksenia Maksimova, Ilya A. Zavidovskiy, A. Zenkevich, Anton Khanas, Sergey M. Novikov, Kirill Trunov, Alexander Morozov
article en

Abstract

Vanadium oxides are known for a large diversity of crystalline phases with different interesting physical and chemical properties and a wide range of applications. However, due to the close stoichiometric composition of these phases, the growth parameters should be carefully adjusted for each VOx phase. In this work, we propose a method of vanadium oxide thin films phase engineering: growth of amorphous VOx in an oxygen atmosphere at room temperature, followed by vacuum annealing. Our method enables target synthesis of VO2, V4O9, V3O7, and V2O5 phases. A desired phase in a polycrystalline thin-film form can be obtained by finely tuning oxygen pressure during room temperature deposition while keeping other parameters constant. The synthesized thin films can be utilized for various applications: neuromorphic hardware, supercapacitors, sensors, and catalysis.

Applied Physics LettersVol. 129(11)
Immanuel Kant Baltic Federal University (RU), Moscow Institute of Physics and Technology (RU), Research Center of Neurology (RU)
Openalex Percentile: Top 23%
Transition Metal Oxide Nanomaterials
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Phase engineering of vanadium oxide thin films enabled by oxygen pressure control and vacuum annealing — Yu. Yu. Lebedinskiǐ, Sergei Zarubin, et al. · Applied Physics Letters (2026) | TGRS Research Map | TGRS