Cooper Condensation and Pair Wave Functions in Strongly Correlated Electrons
Hannes Karlsson, Johannes S. Hofmann, Alexander Wietek

TL;DR
This paper introduces a universal, unbiased framework based on the two-particle reduced density matrix to identify and analyze superconducting states, including exotic phases, in strongly correlated electron systems.
Contribution
It develops a novel Penrose-Onsager criterion-based method for diagnosing superconductivity directly from the 2RDM, applicable to various models and phases.
Findings
Successfully applied to the 2D Hubbard model with AFQMC and DMRG.
Revealed finite-size scaling of the condensate fraction.
Tracked Cooper pair structure across the BCS-BEC crossover.
Abstract
Identifying superconducting states of matter without prior assumptions is a central challenge in strongly correlated electron systems. We introduce a canonical framework for diagnosing the formation of Cooper pair condensates based on the Penrose-Onsager criterion, in which superconducting order is encoded in the spectral properties of the two-particle reduced density matrix (2RDM). Within this formulation, the symmetry and structure of the condensate are obtained by projecting the 2RDM onto irreducible representations of the underlying symmetry group, enabling an unbiased identification of both conventional and exotic superconducting states. We demonstrate the power and versatility of the approach through applications to the two-dimensional Hubbard model, using both auxiliary-field quantum Monte Carlo (AFQMC) and the density matrix renormalization group (DMRG). For attractive…
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Taxonomy
TopicsPhysics of Superconductivity and Magnetism · Iron-based superconductors research · Rare-earth and actinide compounds
