论文标题
Hofstadter-Fermi-Hubbard模型中的铁磁和天际
Ferromagnetism and Skyrmions in the Hofstadter-Fermi-Hubbard Model
论文作者
论文摘要
强烈相互作用的费米子系统具有各种有趣的量子多体状态,具有异国情调。例如,强烈相互作用和保利排除原则的相互作用可能导致斯通纳铁磁性,但是该状态的命运何时添加动力学术语何时尚不清楚。尽管在许多晶格中,费米子的分散剂导致铁磁体的离域和不稳定,但平坦的频段可以恢复强烈的相互作用效应和铁磁相关性。为了揭示这种相互作用,我们在这里建议使用Ultracold Atoms研究Hofstadter-Fermi-Hubbard模型。我们通过执行大规模DMRG模拟来证明该模型在磁性填充因子$ν= 1 $处表现出量子霍尔铁磁体的晶格类似物。我们揭示了低能旋转单元在$ν\ of1 $左右的性质,发现它们具有准单粒子和准孔,表现出旋转旋转相关性,使人联想到Skyrmions。最后,我们预测大型田野上平流频带铁磁性的崩溃。我们的工作铺平了晶格量子霍尔铁磁性实验研究的道路,包括研究相互作用的天空状态的前景,并探索与高$ t _ {\ rm c} $超导性的关系。
Strongly interacting fermionic systems host a variety of interesting quantum many-body states with exotic excitations. For instance, the interplay of strong interactions and the Pauli exclusion principle can lead to Stoner ferromagnetism, but the fate of this state remains unclear when kinetic terms are added. While in many lattice models the fermions' dispersion results in delocalization and destabilization of the ferromagnet, flat bands can restore strong interaction effects and ferromagnetic correlations. To reveal this interplay, here we propose to study the Hofstadter-Fermi-Hubbard model using ultracold atoms. We demonstrate, by performing large-scale DMRG simulations, that this model exhibits a lattice analog of the quantum Hall ferromagnet at magnetic filling factor $ν=1$. We reveal the nature of the low energy spin-singlet states around $ν\approx1$ and find that they host quasi-particles and quasi-holes exhibiting spin-spin correlations reminiscent of skyrmions. Finally, we predict the breakdown of flat-band ferromagnetism at large fields. Our work paves the way towards experimental studies of lattice quantum Hall ferromagnetism, including prospects to study many-body states of interacting skyrmions and explore the relation to high-$T_{\rm c}$ superconductivity.