论文标题
非交互捕获费米斯系统中的杂质
Impurities in systems of noninteracting trapped fermions
论文作者
论文摘要
我们研究了被困在一个维度限制潜力的无旋转非交互的费用的特性,但在存在以三角洲功能电位建模的一个或多个杂质的情况下。我们使用基于单个粒子绿色函数的方法。对于散装中的单个杂质,我们计算杂质附近的费米气体的密度。我们的结果除了恢复与杂质远距离的Friedel振荡外,还可以在短距离时进行确切的密度计算。我们还展示了当将杂质放置在陷阱边缘附近的区域中,在空气中描述了不受干扰的系统的区域中,费米气体的密度是如何修饰的。我们的方法还使我们能够计算散装和边缘的杂质所感受到的有效潜力。在整体中,这种有效电位仅是局部费米波载体的通用函数,或等于局部费米的密度。当将杂质放置在费米气体边缘附近时,可以用通风的功能表示有效电位。为了使远远超出费米密度的支撑,我们表明发生了一个有趣的过渡,其中将单个费米亚从费米海中撤出并与杂质形成结合状态。这是众所周知的Baik-Ben唤醒(BBP)过渡的量子类似物,这是在尖刺随机矩阵理论中已知的。杂质位置的密度起着顺序参数的作用。我们还考虑了大容量中的两种杂质,并精确地计算了由背景费用气体介导的有效力。
We study the properties of spin-less non-interacting fermions trapped in a confining potential in one dimension but in the presence of one or more impurities which are modelled by delta function potentials. We use a method based on the single particle Green's function. For a single impurity placed in the bulk, we compute the density of the Fermi gas near the impurity. Our results, in addition to recovering the Friedel oscillations at large distance from the impurity, allow the exact computation of the density at short distances. We also show how the density of the Fermi gas is modified when the impurity is placed near the edge of the trap in the region where the unperturbed system is described by the Airy gas. Our method also allows us to compute the effective potential felt by the impurity both in the bulk and at the edge. In the bulk this effective potential is shown to be a universal function only of the local Fermi wave vector, or equivalently of the local fermion density. When the impurity is placed near the edge of the Fermi gas, the effective potential can be expressed in terms of Airy functions. For an attractive impurity placed far outside the support of the fermion density, we show that an interesting transition occurs where a single fermion is pulled out of the Fermi sea and forms a bound state with the impurity. This is a quantum analogue of the well-known Baik-Ben Arous-Péché (BBP) transition, known in the theory of spiked random matrices. The density at the location of the impurity plays the role of an order parameter. We also consider the case of two impurities in the bulk and compute exactly the effective force between them mediated by the background Fermi gas.