Impact of the electrical initialization step on transition voltage and power of vanadium dioxide memristors

Vanadium dioxide (VO2) exhibits an insulator-to-metal transition (IMT) near room temperature. Toward its practical use as volatile memristors, we investigate the effect of the first electrical cycle (initialization) on the electrically activated IMT of VO2-based devices. We utilize polycrystalline VO2 thin films on SiO2 to fabricate micro-memristors with varying length (L = 0.6–2.4 μm) and width (W = 5–25 μm). They are analyzed as voltage-driven devices, systematically assessing the necessity of an initialization cycle to stabilize their behavior. The impact of the initialization is interpreted using a percolation model based on a stochastic 2D heterogeneous network. It demonstrates that the introduction of persistent metallic domains from the very first activation facilitates later switching events occurring at lower voltage. The voltage-induced transition was further studied across thirty memristors per layer, on two layers of differing quality (sixty devices in total), revealing that the initial electroforming-like event significantly reduces both the transition voltage (Vimt) and current (Iimt) required for subsequent transitions for all geometries. Notably, the transition power (Pimt) becomes geometry-independent and is reduced by up to 90% compared to the first activation. This study demonstrates, models, and assesses the impact of an initialization process in VO2-based memristors.

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Publication Details

Journal
Applied Physics Letters
Published
2026-09-28
DOI
https://doi.org/10.1063/5.0325022
Primary Topic
Transition Metal Oxide Nanomaterials
Type
article
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Impact of the electrical initialization step on transition voltage and power of vanadium dioxide memristors

Denis Flandre, Jean‐Pierre Raskin, Xi Zeng, Thomas Ratier et al.
Applied Physics Letters
Transition Metal Oxide Nanomaterials
article

Impact of the electrical initialization step on transition voltage and power of vanadium dioxide memristors

Denis Flandre, Jean‐Pierre Raskin, Xi Zeng, Thomas Ratier, Loïc Lahaye
article en

Abstract

Vanadium dioxide (VO2) exhibits an insulator-to-metal transition (IMT) near room temperature. Toward its practical use as volatile memristors, we investigate the effect of the first electrical cycle (initialization) on the electrically activated IMT of VO2-based devices. We utilize polycrystalline VO2 thin films on SiO2 to fabricate micro-memristors with varying length (L = 0.6–2.4 μm) and width (W = 5–25 μm). They are analyzed as voltage-driven devices, systematically assessing the necessity of an initialization cycle to stabilize their behavior. The impact of the initialization is interpreted using a percolation model based on a stochastic 2D heterogeneous network. It demonstrates that the introduction of persistent metallic domains from the very first activation facilitates later switching events occurring at lower voltage. The voltage-induced transition was further studied across thirty memristors per layer, on two layers of differing quality (sixty devices in total), revealing that the initial electroforming-like event significantly reduces both the transition voltage (Vimt) and current (Iimt) required for subsequent transitions for all geometries. Notably, the transition power (Pimt) becomes geometry-independent and is reduced by up to 90% compared to the first activation. This study demonstrates, models, and assesses the impact of an initialization process in VO2-based memristors.

Applied Physics LettersVol. 129(13)
UCLouvain (BE)
Affordable and clean energy
Openalex Percentile: Top 24%
Transition Metal Oxide Nanomaterials
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Impact of the electrical initialization step on transition voltage and power of vanadium dioxide memristors — Denis Flandre, Jean‐Pierre Raskin, et al. · Applied Physics Letters (2026) | TGRS Research Map | TGRS