Probing the pseudogap and beyond: examining single-particle properties of the hole- and electron-doped Hubbard model

Fuente: arXiv
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Main Authors: Wang, Wen O., Huang, Edwin W., Moritz, Brian, Devereaux, Thomas P.
Format: Preprint
Published: 2025
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author Wang, Wen O.
Huang, Edwin W.
Moritz, Brian
Devereaux, Thomas P.
author_facet Wang, Wen O.
Huang, Edwin W.
Moritz, Brian
Devereaux, Thomas P.
contents We compute high-resolution angle-resolved photoemission spectroscopy of the Hubbard model using the unbiased determinant quantum Monte Carlo algorithm, revealing an asymmetry between electron and hole doping. Electron doping exhibits more coherent quasiparticles and stronger antiferromagnetic correlations compared to hole doping. At low doping, a nodal-antinodal dichotomy on the Fermi surface is observed, similar to cuprate experiments. The dichotomy reflects the momentum dependence of the Mott gap, as manifested in both the spectral function and the self-energy. For hole doping, we observe a transition towards the pseudogap, without signature of pocket formation. The simulated nuclear magnetic resonance pseudogap temperatures do not necessarily agree with the temperature determined by spectroscopy. These findings collectively suggest the pseudogap is a smooth crossover driven by strong correlations.
format Preprint
id arxiv_https___arxiv_org_abs_2506_15770
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Probing the pseudogap and beyond: examining single-particle properties of the hole- and electron-doped Hubbard model
Wang, Wen O.
Huang, Edwin W.
Moritz, Brian
Devereaux, Thomas P.
Strongly Correlated Electrons
Superconductivity
We compute high-resolution angle-resolved photoemission spectroscopy of the Hubbard model using the unbiased determinant quantum Monte Carlo algorithm, revealing an asymmetry between electron and hole doping. Electron doping exhibits more coherent quasiparticles and stronger antiferromagnetic correlations compared to hole doping. At low doping, a nodal-antinodal dichotomy on the Fermi surface is observed, similar to cuprate experiments. The dichotomy reflects the momentum dependence of the Mott gap, as manifested in both the spectral function and the self-energy. For hole doping, we observe a transition towards the pseudogap, without signature of pocket formation. The simulated nuclear magnetic resonance pseudogap temperatures do not necessarily agree with the temperature determined by spectroscopy. These findings collectively suggest the pseudogap is a smooth crossover driven by strong correlations.
title Probing the pseudogap and beyond: examining single-particle properties of the hole- and electron-doped Hubbard model
topic Strongly Correlated Electrons
Superconductivity
url https://arxiv.org/abs/2506.15770