Charge and spin gaps of the ionic Hubbard model with density-dependent hopping

Fuente: arXiv
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Autores principales: Segura, Oscar A. Moreno, Hallberg, Karen, Aligia, Armando A.
Formato: Preprint
Publicado: 2023
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author Segura, Oscar A. Moreno
Hallberg, Karen
Aligia, Armando A.
author_facet Segura, Oscar A. Moreno
Hallberg, Karen
Aligia, Armando A.
contents We calculate the charge gap $ΔE_C$ and the spin gap $ΔE_S$ of the ionic Hubbard chain including electron-hole symmetric density-dependent hopping. The vanishing of $ΔE_C$ ($ΔE_S$) signals a quantum critical point (QCP) in the charge (spin) sector. Between both critical points, the system is a fully gapped spontaneously dimerized insulator (SDI). We focus our study in this region. Including alternation in the hopping, it is possible to perform an adiabatic Thouless pump of one charge per cycle, but with a velocity limited by the size of the gaps.
format Preprint
id arxiv_https___arxiv_org_abs_2309_10126
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Charge and spin gaps of the ionic Hubbard model with density-dependent hopping
Segura, Oscar A. Moreno
Hallberg, Karen
Aligia, Armando A.
Strongly Correlated Electrons
We calculate the charge gap $ΔE_C$ and the spin gap $ΔE_S$ of the ionic Hubbard chain including electron-hole symmetric density-dependent hopping. The vanishing of $ΔE_C$ ($ΔE_S$) signals a quantum critical point (QCP) in the charge (spin) sector. Between both critical points, the system is a fully gapped spontaneously dimerized insulator (SDI). We focus our study in this region. Including alternation in the hopping, it is possible to perform an adiabatic Thouless pump of one charge per cycle, but with a velocity limited by the size of the gaps.
title Charge and spin gaps of the ionic Hubbard model with density-dependent hopping
topic Strongly Correlated Electrons
url https://arxiv.org/abs/2309.10126