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In search of exotic pairing in the Hubbard model: many-body computation and quantum gas microscopy
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In search of exotic pairing in the Hubbard model: many-body computation and quantum gas microscopy
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Pair density waves and exotic superconductivity have long been of strong interest, and have attracted much recent attention. We present a joint theoretical and experimental exploration of possible signatures of fermion pairing with finite center-of-mass momentum, or the Fulde-Ferrell-Larkin-Ovchinnikov (FFLO) order. Experimentally a doped and spin-imbalanced attractive two-dimensional Hubbard model is realized with a cold atomic gas in an optical lattice, and quantum gas microscopy is used to probe its properties. Computationally we study the same model with state-of-the-art constrained-path (CP) auxiliary field quantum Monte Carlo (AFQMC). Direct comparisons between experiment and computation on various short-range magnetic and charge correlations show excellent agreement. We then investigate these correlations, as well as pairing correlation functions, systematically to low temperatures with CP-AFQMC, and determine parameter regimes in density and magnetization where signatures of FFLO order may be observed. We show that the temperature at which precursors of such orders appear is already within reach of the current experiment. We discuss routes for direct experimental detection and measurements of such states.
Forward citations
Cited by 3 Pith papers
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Revealing Hidden Correlations in a Fermi-Hubbard system via Interaction Ramps
Interaction ramp in attractive Fermi-Hubbard cold atoms enhances visibility of nonlocal pair CDW correlations and distinguishes Fermi liquid from pseudogap phase via atom-resolved spin-charge correlations.
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The SU(N) Holstein Model
DQMC simulations of the SU(N) Holstein Hamiltonian at half-filling show a CDW phase with N-dependent critical temperatures, higher for N=3 than N=2 at fixed omega0 and alpha.
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Revealing Hidden Correlations in a Fermi-Hubbard system via Interaction Ramps
Interaction ramps enhance visibility of nonlocal pair correlations in attractive Hubbard systems, distinguishing pseudogap from Fermi liquid phases via spin-charge measurements.
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