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Main Authors: Huang, Siyuan, Sun, Shuaishuai, Shi, Yin, Wang, Wentao, Zhu, Chunhui, Tian, Huanfang, Yang, Huaixin, Li, Jun, Li, Jianqi
Format: Preprint
Published: 2026
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Online Access:https://arxiv.org/abs/2604.19329
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author Huang, Siyuan
Sun, Shuaishuai
Shi, Yin
Wang, Wentao
Zhu, Chunhui
Tian, Huanfang
Yang, Huaixin
Li, Jun
Li, Jianqi
author_facet Huang, Siyuan
Sun, Shuaishuai
Shi, Yin
Wang, Wentao
Zhu, Chunhui
Tian, Huanfang
Yang, Huaixin
Li, Jun
Li, Jianqi
contents The insulator-to-metal transition (IMT) in strongly correlated materials, such as vanadium dioxide (VO2), offers a transformative platform for next-generation adaptive electronics and neuromorphic computing. However, harnessing this non-equilibrium phase transition for deterministic device operation is fundamentally hindered by the inability to disentangle electric-field effects from Joule heating, owing to a lack of operando techniques capable of resolving phase dynamics at nanoscale spatial and sub-nanosecond temporal scales. Here, using a newly developed electrical-pulse-pump ultrafast transmission electron microscope (E-UTEM), we directly visualize the multi-scale electro-thermo-mechanical dynamics of the IMT in suspended VO2 devices. Our results reveal that electric-field-induced Poole-Frenkel (PF) emission, localized by patterned oxygen vacancies, plays a decisive role in redistributing the internal electric field to trigger a deterministic Mott transition. The extreme non-linearity of this PF effect enables the formation of dynamically reconfigurable connectivity topologies that bypass conventional thermal limits. Furthermore, we observe that the coupling of thermal and elastic energies governs a discrete domain evolution, characterized by step-wise and period-doubling configurational resets, which is a hallmark of non-equilibrium phase dynamics in constrained geometries. By integrating experimental imaging with phase-field simulations, we establish a comprehensive framework for the electrically-driven IMT and predict sub-100-ps switching kinetics. These findings provide a fundamental basis for the rational design of ultrafast, low-energy functional devices through nanoscale defect and strain engineering in correlated systems.
format Preprint
id arxiv_https___arxiv_org_abs_2604_19329
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Electrically steered conduction topologies and period-doubling phase dynamics in VO2
Huang, Siyuan
Sun, Shuaishuai
Shi, Yin
Wang, Wentao
Zhu, Chunhui
Tian, Huanfang
Yang, Huaixin
Li, Jun
Li, Jianqi
Materials Science
The insulator-to-metal transition (IMT) in strongly correlated materials, such as vanadium dioxide (VO2), offers a transformative platform for next-generation adaptive electronics and neuromorphic computing. However, harnessing this non-equilibrium phase transition for deterministic device operation is fundamentally hindered by the inability to disentangle electric-field effects from Joule heating, owing to a lack of operando techniques capable of resolving phase dynamics at nanoscale spatial and sub-nanosecond temporal scales. Here, using a newly developed electrical-pulse-pump ultrafast transmission electron microscope (E-UTEM), we directly visualize the multi-scale electro-thermo-mechanical dynamics of the IMT in suspended VO2 devices. Our results reveal that electric-field-induced Poole-Frenkel (PF) emission, localized by patterned oxygen vacancies, plays a decisive role in redistributing the internal electric field to trigger a deterministic Mott transition. The extreme non-linearity of this PF effect enables the formation of dynamically reconfigurable connectivity topologies that bypass conventional thermal limits. Furthermore, we observe that the coupling of thermal and elastic energies governs a discrete domain evolution, characterized by step-wise and period-doubling configurational resets, which is a hallmark of non-equilibrium phase dynamics in constrained geometries. By integrating experimental imaging with phase-field simulations, we establish a comprehensive framework for the electrically-driven IMT and predict sub-100-ps switching kinetics. These findings provide a fundamental basis for the rational design of ultrafast, low-energy functional devices through nanoscale defect and strain engineering in correlated systems.
title Electrically steered conduction topologies and period-doubling phase dynamics in VO2
topic Materials Science
url https://arxiv.org/abs/2604.19329