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October 9, 20252 citationsOpen Access

Neural Network-Augmented Pfaffian Wave-functions for Scalable Simulations of Interacting Fermions

ACAo ChenZWZhou‐Quan WanASAnirvan M. Sengupta

Key Points

  • HFPS achieves state-of-the-art variational accuracy in simulating interacting fermions, enhancing insights into superconductivity.
  • Utilizing neural quantum states, HFPS represents both unpaired and superconducting phases with efficient scaling for large systems.
  • This work highlights the importance of accurately modeling fermionic quasiparticle orbitals using Pfaffian wave-functions.
  • Numerical experiments successfully validate HFPS in both attractive and repulsive Hubbard model regimes, capturing critical pairing symmetries.

Abstract

Developing accurate numerical methods for strongly interacting fermions is crucial for improving our understanding of various quantum many-body phenomena, especially unconventional superconductivity. Recently, neural quantum states have emerged as a promising approach for studying correlated fermions, highlighted by the hidden fermion and backflow methods, which use neural networks to model corrections to fermionic quasiparticle orbitals. In this work, we expand these ideas to the space of Pfaffians, a wave-function that naturally expresses superconducting pairings, and propose the hidden fermion Pfaffian state (HFPS), which flexibly represents both unpaired and superconducting phases and scales to large systems with favorable asymptotic complexity. In our numerical experiments, HFPS provides state-of-the-art variational accuracy in different regimes of both the attractive and repulsive Hubbard models. We show that the HFPS is able to capture both s-wave and d-wave pairing, and therefore may be a useful tool for modeling phases with unconventional superconductivity.

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Cite This Study

Chen et al. (2025) studied this question.

synapsesocial.com/papers/68e8439a9989581a2fd4e333https://doi.org/10.48550/arxiv.2507.10705
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