Dynamical Scaling Reveals Topological Defects and Anomalous Evolution of a Photoinduced Phase Transition

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Abstract

Nonequilibrium states of quantum materials can exhibit exotic properties and enable unprecedented functionality and applications. These transient states are inherently inhomogeneous, characterized by the formation of topologically protected structures, requiring nanometer spatial resolution on femtosecond timescales to resolve their evolution. Using ultrafast total x-ray scattering at a free electron laser and a sophisticated scaling analysis, we gain unique access to the dynamics on the relevant mesoscopic length scales. Our results provide direct evidence that ultrafast excitation of LaTe3 leads to formation of topological vortex strings of the charge density wave. These dislocations of the charge density wave exhibit anomalous, subdiffusive dynamics, slowing the equilibration process, providing rare insight into the nonequilibrium mesoscopic response in a quantum material. Our findings establish a general framework to investigate properties of topological defects, which are expected to be ubiquitous in nonequilibrium phase transitions and may arrest equilibration and enhance competing orders.

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Orenstein, G., Duncan, R. A., De la Peña Muñoz, G. A., Huang, Y., Krapivin, V., Le Nguyen, Q., … Trigo, M. (2025). Dynamical Scaling Reveals Topological Defects and Anomalous Evolution of a Photoinduced Phase Transition. Physical Review X, 15(3). https://doi.org/10.1103/w9v5-rwjr

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