Hole clustering and mutual interplay in three-band Hubbard model

Fuente: arXiv
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Main Authors: Jiang, Mi, Yang, Yi-feng, Zhang, Guang-Ming
Format: Preprint
Published: 2025
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author Jiang, Mi
Yang, Yi-feng
Zhang, Guang-Ming
author_facet Jiang, Mi
Yang, Yi-feng
Zhang, Guang-Ming
contents Recent scanning tunnelling spectroscopy (STS) experiments revealed remarkable role of a supercell consisting $4\times4$ CuO$_2$ unit cells in the emergence of local nematic state and preformed local Cooper pairs and phase coherent cuprate superconductivity. By employing the numerically exact determinant Quantum Monte Carlo simulations, we mimic the effects of experimental Ca vacancy by an external local potential to investigate the charge and spectral properties of the system hosting two doped holes. The model numerically support the role of the $4\times4$ supercell as the building block of hole doped cuprates via the hole density distribution and local spectra around the local potential. Our results might provide a theoretical support on the experimental observations and a platform for investigating local charge order and local Cooper pairs on the $4\times4$ supercell as the plausible route to understanding unconventional cuprate superconductivity.
format Preprint
id arxiv_https___arxiv_org_abs_2506_00787
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Hole clustering and mutual interplay in three-band Hubbard model
Jiang, Mi
Yang, Yi-feng
Zhang, Guang-Ming
Strongly Correlated Electrons
Recent scanning tunnelling spectroscopy (STS) experiments revealed remarkable role of a supercell consisting $4\times4$ CuO$_2$ unit cells in the emergence of local nematic state and preformed local Cooper pairs and phase coherent cuprate superconductivity. By employing the numerically exact determinant Quantum Monte Carlo simulations, we mimic the effects of experimental Ca vacancy by an external local potential to investigate the charge and spectral properties of the system hosting two doped holes. The model numerically support the role of the $4\times4$ supercell as the building block of hole doped cuprates via the hole density distribution and local spectra around the local potential. Our results might provide a theoretical support on the experimental observations and a platform for investigating local charge order and local Cooper pairs on the $4\times4$ supercell as the plausible route to understanding unconventional cuprate superconductivity.
title Hole clustering and mutual interplay in three-band Hubbard model
topic Strongly Correlated Electrons
url https://arxiv.org/abs/2506.00787