Light-induced insulator-metal transition in Sr$_2$IrO$_4$ reveals the nature of the insulating ground state

Fuente: arXiv
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Main Authors: Choi, Dongsung, Yue, Changming, Azoury, Doron, Porter, Zachary, Chen, Jiyu, Petocchi, Francesco, Baldini, Edoardo, Lv, Baiqing, Mogi, Masataka, Su, Yifan, Wilson, Stephen D., Eckstein, Martin, Werner, Philipp, Gedik, Nuh
Format: Preprint
Published: 2023
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author Choi, Dongsung
Yue, Changming
Azoury, Doron
Porter, Zachary
Chen, Jiyu
Petocchi, Francesco
Baldini, Edoardo
Lv, Baiqing
Mogi, Masataka
Su, Yifan
Wilson, Stephen D.
Eckstein, Martin
Werner, Philipp
Gedik, Nuh
author_facet Choi, Dongsung
Yue, Changming
Azoury, Doron
Porter, Zachary
Chen, Jiyu
Petocchi, Francesco
Baldini, Edoardo
Lv, Baiqing
Mogi, Masataka
Su, Yifan
Wilson, Stephen D.
Eckstein, Martin
Werner, Philipp
Gedik, Nuh
contents Sr$_2$IrO$_4$ has attracted a lot of attention due to its structural and electronic similarities to La$_2$CuO$_4$ which is the parent compound of high-T$_c$ superconducting cuprates. It was proposed to be a strong spin-orbit coupled J$_{eff}$ = 1/2 Mott insulator, but the Mott nature of its insulating ground state and the origin of the gap have not been conclusively established. Here, we use ultrafast laser pulses to realize an insulator-metal transition in Sr$_2$IrO$_4$ and probe the resulting dynamics using time- and angle-resolved photoemission spectroscopy. We observe a closing of the gap and the formation of weakly-renormalized electronic bands in the gap region. Comparing these observations to the expected temperature and doping evolution of Mott gaps and Hubbard bands provides clear evidence that the insulating state does not originate from Mott correlations. We instead propose a correlated band insulator picture, where antiferromagnetic correlations play a key role in the opening of the gap. More broadly, our results demonstrate that energy-momentum resolved nonequilibrium dynamics can be used to clarify the nature of equilibrium states in correlated materials.
format Preprint
id arxiv_https___arxiv_org_abs_2305_07619
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Light-induced insulator-metal transition in Sr$_2$IrO$_4$ reveals the nature of the insulating ground state
Choi, Dongsung
Yue, Changming
Azoury, Doron
Porter, Zachary
Chen, Jiyu
Petocchi, Francesco
Baldini, Edoardo
Lv, Baiqing
Mogi, Masataka
Su, Yifan
Wilson, Stephen D.
Eckstein, Martin
Werner, Philipp
Gedik, Nuh
Strongly Correlated Electrons
Sr$_2$IrO$_4$ has attracted a lot of attention due to its structural and electronic similarities to La$_2$CuO$_4$ which is the parent compound of high-T$_c$ superconducting cuprates. It was proposed to be a strong spin-orbit coupled J$_{eff}$ = 1/2 Mott insulator, but the Mott nature of its insulating ground state and the origin of the gap have not been conclusively established. Here, we use ultrafast laser pulses to realize an insulator-metal transition in Sr$_2$IrO$_4$ and probe the resulting dynamics using time- and angle-resolved photoemission spectroscopy. We observe a closing of the gap and the formation of weakly-renormalized electronic bands in the gap region. Comparing these observations to the expected temperature and doping evolution of Mott gaps and Hubbard bands provides clear evidence that the insulating state does not originate from Mott correlations. We instead propose a correlated band insulator picture, where antiferromagnetic correlations play a key role in the opening of the gap. More broadly, our results demonstrate that energy-momentum resolved nonequilibrium dynamics can be used to clarify the nature of equilibrium states in correlated materials.
title Light-induced insulator-metal transition in Sr$_2$IrO$_4$ reveals the nature of the insulating ground state
topic Strongly Correlated Electrons
url https://arxiv.org/abs/2305.07619