The finite-difference parquet method: Enhanced electron–paramagnon scattering opens a pseudogap

J Jae-Mo Lihm (European Theoretical Spectroscopy Facility) D Dominik Kiese (Center for Computational Quantum Physics) S Seung-Sup B. Lee (Department of Physics and Astronomy) F Fabian B. Kugler (Center for Computational Quantum Physics, Flatiron Institute)

Abstract

We present the finite-difference parquet method that greatly improves the applicability and accuracy of two-particle correlation approaches to interacting electron systems. This method incorporates the nonperturbative local physics from a reference solution and builds all parquet diagrams while circumventing potentially divergent irreducible vertices. Its unbiased treatment of different fluctuations is crucial for reproducing the strong-coupling pseudogap in the underdoped Hubbard model, consistent with diagrammatic Monte Carlo calculations. We reveal a strong-coupling spin-fluctuation mechanism of the pseudogap with decisive vertex corrections that encode the enhanced, energy-dependent scattering amplitude between electrons and antiferromagnetic spin fluctuations.

Article Details

Volume / Issue Vol. 123, Issue 10
Published March 10, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (4)

J

Jae-Mo Lihm

European Theoretical Spectroscopy Facility

D

Dominik Kiese

Center for Computational Quantum Physics

S

Seung-Sup B. Lee

Department of Physics and Astronomy

F

Fabian B. Kugler

Center for Computational Quantum Physics, Flatiron Institute