Electronic properties, correlated topology and Green's function zeros

Fuente: arXiv
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Main Authors: Setty, Chandan, Xie, Fang, Sur, Shouvik, Chen, Lei, Vergniory, Maia G., Si, Qimiao
Format: Preprint
Published: 2023
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_version_ 1866914935281287168
author Setty, Chandan
Xie, Fang
Sur, Shouvik
Chen, Lei
Vergniory, Maia G.
Si, Qimiao
author_facet Setty, Chandan
Xie, Fang
Sur, Shouvik
Chen, Lei
Vergniory, Maia G.
Si, Qimiao
contents There is extensive current interest about electronic topology in correlated settings. In strongly correlated systems, contours of Green's function zeros may develop in frequency-momentum space, and their role in correlated topology has increasingly been recognized. However, whether and how the zeros contribute to electronic properties is a matter of uncertainty. Here we address the issue in an exactly solvable model for Mott insulator. We show that the Green's function zeros contribute to several physically measurable correlation functions, in a way that does not run into inconsistencies. In particular, the physical properties remain robust to chemical potential variations up to the Mott gap as it should be based on general considerations. Our work sets the stage for further understandings on the rich interplay among topology, symmetry and strong correlations.
format Preprint
id arxiv_https___arxiv_org_abs_2309_14340
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Electronic properties, correlated topology and Green's function zeros
Setty, Chandan
Xie, Fang
Sur, Shouvik
Chen, Lei
Vergniory, Maia G.
Si, Qimiao
Strongly Correlated Electrons
Mesoscale and Nanoscale Physics
There is extensive current interest about electronic topology in correlated settings. In strongly correlated systems, contours of Green's function zeros may develop in frequency-momentum space, and their role in correlated topology has increasingly been recognized. However, whether and how the zeros contribute to electronic properties is a matter of uncertainty. Here we address the issue in an exactly solvable model for Mott insulator. We show that the Green's function zeros contribute to several physically measurable correlation functions, in a way that does not run into inconsistencies. In particular, the physical properties remain robust to chemical potential variations up to the Mott gap as it should be based on general considerations. Our work sets the stage for further understandings on the rich interplay among topology, symmetry and strong correlations.
title Electronic properties, correlated topology and Green's function zeros
topic Strongly Correlated Electrons
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2309.14340