English

Diamagnetic response and phase stiffness for interacting isolated narrow bands

Strongly Correlated Electrons 2023-03-14 v2 Mesoscale and Nanoscale Physics Superconductivity

Abstract

A platform that serves as an ideal playground for realizing ``high'' temperature superconductors are materials where the electrons' kinetic energy is completely quenched, and interactions provide the only energy scale in the problem for TcT_c. However, when the non-interacting bandwidth for a set of isolated bands is small compared to the scale of the interactions, the problem is inherently non-perturbative and requires going beyond the traditional mean-field theory of superconductivity. In two spatial dimensions, TcT_c is controlled by the superconducting phase stiffness. Here we present a general theoretical framework for computing the electromagnetic response for generic model Hamiltonians, which controls the maximum possible superconducting phase stiffness and thereby TcT_c, without resorting to any mean-field approximation. Importantly, our explicit computations demonstrate that the contribution to the phase stiffness arises from (i) ``integrating out'' the remote bands that couple to the microscopic current operator, and (ii) the density-density interactions projected onto the isolated narrow bands. Our framework can be used to obtain an upper bound on the phase stiffness, and relatedly the superconducting transition temperature, for a range of physically inspired models involving both topological and non-topological narrow bands with arbitrary density-density interactions. We discuss a number of salient aspects of this formalism by applying it to a specific model of interacting flat bands and compare it against the known TcT_c from independent numerically exact computations.

Keywords

Cite

@article{arxiv.2209.06817,
  title  = {Diamagnetic response and phase stiffness for interacting isolated narrow bands},
  author = {Dan Mao and Debanjan Chowdhury},
  journal= {arXiv preprint arXiv:2209.06817},
  year   = {2023}
}

Comments

7 + 4 pages, 3 figures, new results added

R2 v1 2026-06-28T01:18:30.319Z