Decoupling of static and dynamic criticality in a driven Mott insulator
Abstract
Dynamically driven interacting quantum many-body systems have the potential to exhibit properties that defy the laws of equilibrium statistical mechanics. A widely studied model is the impulsively driven antiferromagnetic Mott insulator, which is predicted to realize exotic transient phenomena including dynamical phase transitions into thermally forbidden states and highly non-thermal magnon distributions. However such far-from-equilibrium regimes, where conventional time-dependent Ginzburg-Landau descriptions fail, are experimentally challenging to prepare and to probe especially in solid state systems. Here we use a combination of time-resolved second harmonic optical polarimetry and coherent magnon spectroscopy to interrogate -type photo-doping induced ultrafast magnetic order parameter dynamics in the Mott insulator SrIrO. We uncover an unusual far-from-equilibrium critical regime in which the divergences of the magnetic correlation length and relaxation time are decoupled. This violation of conventional thermal critical behavior arises from the interplay of photo-doping and non-thermal magnon population induced demagnetization effects. Our findings, embodied in a non-equilibrium "phase diagram", provide a blueprint for engineering the out-of-equilibrium properties of quantum matter, with potential applications to terahertz spintronics technologies.
Keywords
Cite
@article{arxiv.2112.08397,
title = {Decoupling of static and dynamic criticality in a driven Mott insulator},
author = {A. de la Torre and K. L. Seyler and M. Buchhold and Y. Baum and G. Zhang and N. J. Laurita and J. W. Harter and L. Zhao and I. Phinney and X. Chen and S. D. Wilson and G. Cao and R. D. Averitt and G. Refael and D. Hsieh},
journal= {arXiv preprint arXiv:2112.08397},
year = {2022}
}
Comments
7 pages main text, 4 figures, 19 pages supplementary information