In search of exotic pairing in the Hubbard model: Many-body computation and quantum gas microscopy
В поисках экзотического парообразования в модели Хаббарда: многие-частичное вычисление и микроскопия квантовых газов
2025-09-02
SCID: 54.1/mrmybbha
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FFLO statesattractive Hubbard modelconstrained-path auxiliary-field quantum Monte Carlofinite-momentum pairingquantum gas microscopy
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Abstract (AI)
Finite-momentum pairing, exemplified by Fulde–Ferrell–Larkin–Ovchinnikov (FFLO) states, represents a paradigmatic form of unconventional superfluidity driven by Fermi-surface mismatch, but its detection in two-dimensional systems has remained elusive. Here we study a doped, spin-imbalanced attractive Hubbard model using a combined experimental and computational approach, based on quantum gas microscopy and constrained-path auxiliary-field quantum Monte Carlo, with direct comparisons showing quantitative agreement for short-range correlations at experimentally accessible temperatures. We identify broad regimes in density and magnetization where FFLO correlations emerge, and establish their finite-temperature evolution, with clear signatures of finite-momentum pairing already appearing at experimentally accessible temperatures. Spin–XY correlations are identified as a robust, directly measurable proxy for FFLO physics. Quantitative characterizations are obtained on the temperature dependence of a variety of observables and correlations, which elucidate the interplay of pairing with competing orders.
Key Findings
1
Clear signatures of finite-momentum pairing appear already at experimentally accessible finite temperatures, and their finite-temperature evolution is established.
2
Combined quantum gas microscopy experiments and constrained-path auxiliary-field quantum Monte Carlo show quantitative agreement for short-range correlations at experimentally accessible temperatures in the doped, spin-imbalanced attractive Hubbard model.
3
FFLO (finite-momentum) pairing correlations emerge across broad regimes of density and magnetization in the two-dimensional doped, spin-imbalanced attractive Hubbard model.
4
Quantitative characterization of temperature dependence for multiple observables elucidates the interplay between pairing and competing orders.
5
Spin–XY correlations act as a robust, directly measurable proxy for FFLO physics in the studied system.
Research Object
Doped, spin-imbalanced attractive Hubbard model in two dimensions (studied via quantum gas microscopy and constrained-path auxiliary-field QMC)
Research Subject
Finite-momentum (FFLO) pairing correlations and their finite-temperature evolution, including signatures in spin-XY and other short-range correlations and interplay with competing orders
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2025-09-02
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