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March 5, 2026Proceedings of the National Academy of Sciences0 citations

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

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JLJae-Mo LihmDKDominik KieseSLSeung‐Sup B. Lee

Key Points

  • This research aims to enhance the accuracy of two-particle correlation approaches in electron systems through a novel method.
  • Developed the finite-difference parquet method to improve interaction modeling in electron systems.
  • Incorporated nonperturbative local physics from a reference solution.
  • Analyzed various fluctuation mechanisms and their contributions to the pseudogap.
  • Successfully reproduced the strong-coupling pseudogap in the underdoped Hubbard model.
  • Identified a significant spin-fluctuation mechanism leading to energy-dependent scattering amplitudes.
  • Demonstrated the importance of vertex corrections in capturing the pseudogap behavior.

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.

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Cite This Study

Lihm et al. (2026) studied this question.

synapsesocial.com/papers/69a91da8d6127c7a504c0a1chttps://doi.org/10.1073/pnas.2525308123
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