Antiferromagnetic phase transition in a 3D fermionic Hubbard model.
basic_science · Level V
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- Record sourced from PubMed, PMID 38987606.
- Also identified by DOI 10.1038/s41586-024-07689-2.
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Abstract
The fermionic Hubbard model (FHM)<sup>1</sup> describes a wide range of physical phenomena resulting from strong electron-electron correlations, including conjectured mechanisms for unconventional superconductivity. Resolving its low-temperature physics is, however, challenging theoretically or numerically. Ultracold fermions in optical lattices<sup>2,3</sup> provide a clean and well-controlled platform offering a path to simulate the FHM. Doping the antiferromagnetic ground state of a FHM simulator at half-filling is expected to yield various exotic phases, including stripe order<sup>4</sup>, pseudogap<sup>5</sup>, and d-wave superfluid<sup>6</sup>, offering valuable insights into high-temperature superconductivity<sup>7-9</sup>. Although the observation of antiferromagnetic correlations over short<sup>10</sup> and extended distances<sup>11</sup> has been obtained, the antiferromagnetic phase has yet to be realized as it requires sufficiently low temperatures in a large and uniform quantum simulator. Here we report the observation of the antiferromagnetic phase transition in a three-dimensional fermionic Hubbard system comprising lithium-6 atoms in a uniform optical lattice with approximately 800,000 sites. When the interaction strength, temperature and doping concentration are finely tuned to approach their respective critical values, a sharp increase in the spin structure factor is observed. These observations can be well described by a power-law divergence, with a critical exponent of 1.396 from the Heisenberg universality class<sup>12</sup>. At half-filling and with optimal interaction strength, the measured spin structure factor reaches 123(8), signifying the establishment of an antiferromagnetic phase. Our results provide opportunities for exploring the low-temperature phase diagram of the FHM.