English

Coupled First-Order Transitions In A Fermi-Bose Mixture

Strongly Correlated Electrons 2020-07-01 v2 Quantum Physics

Abstract

A model of a mixture of spinless fermions and spin-zero hardcore bosons, with filling fractions ρF\rho_F and ρB\rho_B, respectively, on a two-dimensional square lattice with {\em composite} hopping tt is presented. In this model, hopping swaps the locations of a fermion and a boson at nearest-neighbor sites. When ρF+ρB=1\rho_F+\rho_B=1, the fermion hopping amplitude ϕ\phi and boson superfluid amplitude ψ\psi are calculated in the ground state within a mean-field approximation. The Fermi sector is insulating (ϕ=0\phi=0) and the Bose sector is normal (ψ=0\psi=0) for 0ρF<ρc0 \le \rho_F < \rho_c. The model has {\em coupled first-order} transitions at ρF=ρc0.3\rho_F = \rho_c \simeq 0.3 where both ϕ\phi and ψ\psi are discontinuous. The Fermi sector is metallic (ϕ>0\phi>0) and the Bose sector is superfluid (ψ>0\psi>0) for ρc<ρF<1\rho_c < \rho_F < 1. At ρF=1/2\rho_F=1/2, fermion density of states ρ\rho has a van Hove singularity, the bulk modulus κ\kappa displays a cusp-like singularity, the system has a density wave (DW) order, and ϕ\phi and ψ\psi are maximum. At ρF=ρκ0.81\rho_F=\rho_{\kappa} \simeq 0.81, κ\kappa vanishes, becoming {\em negative} for ρκ<ρF<1\rho_{\kappa}<\rho_F<1. The role of composite hopping in the evolution of Fermi band dispersions and Fermi surfaces as a function of ρF\rho_F is highlighted. The estimate for BEC critical temperature is in the subkelvin range for ultracold atom systems and several hundred kelvins for possible solid-state examples of the model.

Keywords

Cite

@article{arxiv.1912.00132,
  title  = {Coupled First-Order Transitions In A Fermi-Bose Mixture},
  author = {K. Sheshadri and A. Chainani},
  journal= {arXiv preprint arXiv:1912.00132},
  year   = {2020}
}

Comments

9 pages, 9 figures

R2 v1 2026-06-23T12:31:45.651Z