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arXiv · 2609.05747

Ultrafast electron crystallography reveals the atomic pathway of a light-driven correlated insulator-to-metal transition

Abstract

Ultrafast phase transitions in correlated materials are often inferred from selected diffraction peak intensities or diffraction peak displacements, leaving the underlying three-dimensional atomic trajectories elusive. Resolving these trajectories is essential for identifying which atomic motions drive changes in electronic properties and how they couple to electronic degrees of freedom. We address this challenge in vanadium dioxide (VO2), a correlated oxide with a near-room-temperature transition between the insulating monoclinic (M1) phase and metallic rutile (R) phase. For this purpose, we introduce ultrafast three-dimensional electron diffraction, which enables refinement of the transient unit cell and internal V and O coordinates, revealing the V-V dimerization and zigzag motion during the phase transition. The refined atomic coordinates follow a linear trajectory in real space during the transition, in contrast to nonlinear or sequential transformation pathways inferred from more indirect observables in earlier work. Quantum many-body calculations treating each V-V pair as a correlated unit show that dimerization creates the level splitting responsible for the electronic gap, which is further enhanced by nonlocal electronic interactions between the paired V atoms. The gap collapses when dimerization is lost. This work turns time-resolved diffraction from order-parameter tracking into transient crystallography, directly connecting atomic trajectories to electronic mechanisms in correlated materials.

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Arthur Niedermayr, Hongyi Xu, Chin Shen Ong, Patrik Thunström, Michael Yannai, Jianyu Wu, Gaolong Cao, Lior Kornblum, Ido Kaminer, Oscar Grånäs, Xiaodong Zou, Jonas Weissenrieder. 2026-09-04. Ultrafast electron crystallography reveals the atomic pathway of a light-driven correlated insulator-to-metal transition. https://arxiv.org/abs/2609.05747

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