Switching speed limits in electrically driven VO2 structural Mott–Peierls transition

A Alexandre Pofelski (Condensed Matter Physics and Materials Science Department, Brookhaven National Laboratory, Upton, NY, USA.) C Chuhang Liu (Condensed Matter Physics and Materials Science Department, Brookhaven National Laboratory, Upton, NY, USA.) S Spencer A. Reisbick M Myung-Geun Han (Condensed Matter Physics and Materials Science Department) L Lijun Wu H Henry Navarro E Erbin Qiu (Physics Department, University of California, San Diego, La Jolla, CA, USA.) T Tianxing D. Wang S Shayan S. Mousavi M. D David J. Alspaugh M Marcelo Rozenberg S Shriram Ramanathan I Ivan K. Schuller (Physics Department, University of California, San Diego, La Jolla, CA, USA.) Y Yimei Zhu (Condensed Matter Physics and Materials Science Department, Brookhaven National Laboratory, Upton, NY, USA.)

Abstract

Abstract Mott materials are archetypal quantum systems actively explored as next-generation electronic and photonic platforms, with potential applications spanning non-Von Neumann computing, robotics, energy storage, and microwave technologies. Among these, vanadium dioxide (VO 2 ) has emerged as one of the most intensively studied compounds, owing to its sharp, near-room-temperature insulator-to-metal phase transition. VO 2 also serves as a benchmark system for testing cutting-edge theories and experimental techniques. Here, we directly visualize the electrically driven transition dynamics in VO 2 using a microwave-driven, frequency-tunable pulsed transmission electron microscope that combines nanometer spatial and picosecond temporal resolution. Under high-frequency (MHz–GHz) excitation, we capture the ultrafast nucleation, propagation, and dissolution of metallic domains within an operating device over millions of reversible cycles. We observe the ultrafast formation of consistent metallic nuclei beneath the electrodes, followed by the propagation of a structural phase front at 4.54 nm/ns. Our experiments show that phonon-mediated structural recovery ultimately limits reversible switching of VO 2 at GHz frequencies, and that a tunable regime for reversible operation spans from kHz to GHz through device engineering. Beyond VO 2 , our approach provides a powerful framework for probing non-equilibrium structural transformations in correlated and functional materials under realistic electrical stimuli.

Article Details

Volume / Issue Vol. 17, Issue 1
Published February 24, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (14)

A

Alexandre Pofelski

Condensed Matter Physics and Materials Science Department, Brookhaven National Laboratory, Upton, NY, USA.

C

Chuhang Liu

Condensed Matter Physics and Materials Science Department, Brookhaven National Laboratory, Upton, NY, USA.

S

Spencer A. Reisbick

M

Myung-Geun Han

Condensed Matter Physics and Materials Science Department

L

Lijun Wu

H

Henry Navarro

E

Erbin Qiu

Physics Department, University of California, San Diego, La Jolla, CA, USA.

T

Tianxing D. Wang

S

Shayan S. Mousavi M.

D

David J. Alspaugh

M

Marcelo Rozenberg

S

Shriram Ramanathan

I

Ivan K. Schuller

Physics Department, University of California, San Diego, La Jolla, CA, USA.

Y

Yimei Zhu

Condensed Matter Physics and Materials Science Department, Brookhaven National Laboratory, Upton, NY, USA.