论文标题

直接观察有吸引力的费米 - 哈伯气体中的非本地费疗配对

Direct observation of non-local fermion pairing in an attractive Fermi-Hubbard gas

论文作者

Hartke, Thomas, Oreg, Botond, Turnbaugh, Carter, Jia, Ningyuan, Zwierlein, Martin

论文摘要

费米子的配对是超导性的核心,核结合能的层次结构和中子星的超流量。 The Hubbard model of attractively interacting fermions provides a paradigmatic setting for fermion pairing, featuring a crossover between Bose-Einstein condensation (BEC) of tightly bound pairs and Bardeen-Cooper-Schrieffer (BCS) superfluidity of long-range Cooper pairs, and a "pseudo-gap" region where pairs form already above the superfluid critical temperature.我们在这里直接观察了哈伯德晶格气体中费米昂配对的非本地性质,并采用了$ \ sim $ 1000 fermionic $ {}^{40} $ k原子的自旋和密度分辨成像,在双层显微镜下。通过增加吸引力的全局自旋波动的消失,完整的费米对配对揭示了。在密切相关的方案中,发现费米对的大小在平均颗粒间距的顺序上。我们解决了单个自旋周围的极化相关性,这是由于非本地对波动的相互作用和电荷密度波顺序的相互作用所致。我们的技术打开了对哈伯德晶格气体中费米克超级流体的原位观察的大门。

Pairing of fermions lies at the heart of superconductivity, the hierarchy of nuclear binding energies and superfluidity of neutron stars. The Hubbard model of attractively interacting fermions provides a paradigmatic setting for fermion pairing, featuring a crossover between Bose-Einstein condensation (BEC) of tightly bound pairs and Bardeen-Cooper-Schrieffer (BCS) superfluidity of long-range Cooper pairs, and a "pseudo-gap" region where pairs form already above the superfluid critical temperature. We here directly observe the non-local nature of fermion pairing in a Hubbard lattice gas, employing spin- and density-resolved imaging of $\sim$1000 fermionic ${}^{40}$K atoms under a bilayer microscope. Complete fermion pairing is revealed by the vanishing of global spin fluctuations with increasing attraction. In the strongly correlated regime, the fermion pair size is found to be on the order of the average interparticle spacing. We resolve polaronic correlations around individual spins, resulting from the interplay of non-local pair fluctuations and charge-density-wave order. Our techniques open the door toward in-situ observation of fermionic superfluids in a Hubbard lattice gas.

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