Sign-Free Evidence for a d-Wave Superfluid Stiffness Dome in the Doped Hubbard Model
Xidi Wang, H. Q. Lin

TL;DR
This paper introduces a sign-problem-free effective Hamiltonian derived from Monte Carlo data that reveals a d-wave superfluid stiffness dome in the doped Hubbard model, aligning with cuprate phenomenology.
Contribution
The authors develop a sign-free effective Hamiltonian from Monte Carlo data that captures the correlated spectrum and reveals a superfluid stiffness dome in the Hubbard model.
Findings
The effective Hamiltonian accurately reproduces the correlated single-particle spectrum.
A superfluid stiffness dome is observed, exceeding the BKT threshold at the peak.
The pseudogap and superfluid density behaviors mirror cuprate phenomenology.
Abstract
We construct an effective single-particle Hamiltonian from Monte Carlo--averaged matrix logarithms of the imaginary-time propagator in determinant quantum Monte Carlo (DQMC). The logarithm maps the multiplicative sign problem into an additive framework where the central limit theorem guarantees convergence, rendering sign-problem-free: both sign sectors yield identical dispersions to . captures the exact correlated single-particle spectrum, incorporating all self-energy effects non-perturbatively. Applied to the Hubbard model (, ), reveals a -wave pseudogap with strong nodal-antinodal dichotomy below a computational phase transition at . Three sign-free observables provide evidence consistent with spin-fluctuation pairing: (i) the gap ratio confirms -wave…
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