Hidden-fermion representation of self-energy in pseudogap and superconducting states of the two-dimensional Hubbard model
Shiro Sakai, Marcello Civelli, Masatoshi Imada
DOI 10.1103/PhysRevB.94.115130 · Physical Review B
Active bibliographic source — not scientific approval
Bibliographic access preserves source history; it does not approve extracted materials or validate reported claims. Review warnings on each occurrence separately.
Abstract
We study the frequency-dependent structure of electronic self-energy in the pseudogap and superconducting states of the two-dimensional Hubbard model. We present the self-energy calculated with the cellular dynamical mean-field theory systematically in the space of temperature, electron density, and interaction strength. We show that the low-frequency part of the self-energy is well represented by a simple equation, which describes the transitions of an electron to and from a hidden-fermionic state. By fitting the numerical data with this simple equation, we determine the parameters characterizing the hidden fermion and discuss its identity. The simple expression of the self-energy offers a way to organize numerical data of these uncomprehended superconducting and pseudogap states, as well as a useful tool to analyze spectroscopic experimental results. The successful description by the simple two-component fermion model supports the idea of “dark” and “bright” fermions emerging from a bare electron as bistable excitations in doped Mott insulators.
Similar papers
Hidden-Fermion Representation of Self-energy in Pseudogap and Superconducting States of Two-Dimensional Hubbard Model
similarity 0.93Shiro Sakai et al. · 2016 · arXiv:1605.05004
Source status unknown — claims are unverified
Hidden fermionic excitation in the superconductivity of the strongly attractive Hubbard model
similarity 0.92Shiro Sakai et al.
Source status unknown — claims are unverified
Manifestations of the pseudogap in the boson-fermion model for Bose-Einstein-condensation-driven superconductivity
similarity 0.87J. Ranninger & J. M. Robin
Source status unknown — claims are unverified