论文标题

hartree-fock-Bogoliubov被困的一维失效系统的理论

Hartree-Fock-Bogoliubov theory of trapped one-dimensional imbalanced Fermi systems

论文作者

Patton, Kelly R., Sheehy, Daniel E.

论文摘要

基态Hartree-fock-Bogoliubov(HFB)理论应用于不平衡的自旋1/2一维费米系统,这些系统在空间上被谐波或硬壁捕获势限制。希望可以使用超速原子气体实现的这种系统能够表现出长期久经考验的Fulde-Ferrell-ferrell-larkin-ovchinnikov(FFLO)超级流体相。 HFB形式主义通过允许在所有可能的单粒子状态之间存在Cooper配对来概括标准的Bogoliubov准粒子转化,并解释了不均匀的诱捕势能以及平均田野Hartree的影响。这提供了一个无偏的框架来描述在受约束1D气体的FFLO状态下的不及时密度和配对相关性。在谐波陷阱中,HFB基态能的数值最小化产生了空间振荡的阶参数,让人联想到FFLO状态。但是,我们发现该状态在局部费米度密度上几乎没有烙印(与未发现FFLO阶段证据的实验一致)。相反,对于硬壁几何形状,我们发现了反射在局部原位密度中的FFLO配对振幅的空间振荡的强烈特征。在硬壁案例中,多余的旋转在配对振幅中有一个节点的区域附近强烈局限,从而产生了密度无关的晶体调制。

Ground state Hartree-Fock-Bogoliubov (HFB) theory is applied to imbalanced spin-1/2 one-dimensional Fermi systems that are spatially confined by either a harmonic or a hard-wall trapping potential. It has been hoped that such systems, which can be realized using ultracold atomic gases, would exhibit the long-sought-after Fulde-Ferrell-Larkin-Ovchinnikov (FFLO) superfluid phase. The HFB formalism generalizes the standard Bogoliubov quasi-particle transformation, by allowing for Cooper pairing to exist between all possible single-particle states, and accounts for the effects of the inhomogeneous trapping potential as well as the mean-field Hartree potential. This provides an unbiased framework to describe inhomgenous densities and pairing correlations in the FFLO state of a confined 1D gas. In a harmonic trap, numerical minimization of the HFB ground state energy yields a spatially oscillating order parameter reminiscent of the FFLO state. However, we find that this state has almost no imprint in the local fermion densities (consistent with experiments that found no evidence of the FFLO phase). In contrast, for a hard-wall geometry, we find a strong signature of the spatial oscillations of the FFLO pairing amplitude reflected in the local in situ densities. In the hard wall case, the excess spins are strongly localized near regions where there is a node in the pairing amplitude, creating an unmistakeable crystalline modulation of the density.

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