论文标题
各向异性金属中非本地电动力反应的动力学理论:2D系统中的皮肤效应
Kinetic theory of the non-local electrodynamic response in anisotropic metals: skin effect in 2D systems
论文作者
论文摘要
在低温下,超色材料的电动力响应在空间上是非本地的。这种非本地性产生了现象,例如传输中的流体动力流以及光学中的异常皮肤效应。在以各向异性电子分散为特征的系统中,非本地动力学取决于样品相对于所应用场的相对方向,其方式超出了通常的,均匀的响应。这种定向依赖性不仅应在运输实验中表现出来,而且在光谱方面也应表现出来。在本文中,我们开发了一种具有各向异性电子色散的二维和三维费米系统的分布函数和横向电导率的动力学理论。通过将碰撞积分扩展到碰撞运算符的本本基曲,我们包括动量 - 重新延伸的散射以及稳定动量的碰撞。我们将各向同性2D病例作为参考,以及各向异性的六角形和方形的Fermi-Surface形状。在所有皮肤效应方案中,我们将理论应用于皮肤深度和表面阻抗的定量计算。我们发现各向同性和各向异性系统中阻抗的频率依赖性之间存在质量差异。即使对于更复杂的2D费米表面,这些差异也可以持续存在,包括“超圈”的几何形状和PDCOO $ _2 $的实验参数化,它们偏离了理想的多边形形状。我们研究了由于费米 - 表面各向异性引起的皮肤效应的定向依赖性,从而为非本地光学效应的实验研究提供了指导。
The electrodynamic response of ultra-pure materials at low temperatures becomes spatially non-local. This non-locality gives rise to phenomena such as hydrodynamic flow in transport and the anomalous skin effect in optics. In systems characterized by an anisotropic electronic dispersion, the non-local dynamics becomes dependent on the relative orientation of the sample with respect to the applied field, in ways that go beyond the usual, homogeneous response. Such orientational dependence should manifest itself not only in transport experiments, as recently observed, but also in optical spectroscopy. In this paper we develop a kinetic theory for the distribution function and the transverse conductivity of two- and three-dimensional Fermi systems with anisotropic electronic dispersion. By expanding the collision integral into the eigenbasis of a collision operator, we include momentum-relaxing scattering as well as momentum-conserving collisions. We examine the isotropic 2D case as a reference, as well as anisotropic hexagonal and square Fermi-surface shapes. We apply our theory to the quantitative calculation of the skin depth and the surface impedance, in all regimes of skin effect. We find qualitative differences between the frequency dependence of the impedance in isotropic and anisotropic systems. Such differences are shown to persist even for more complex 2D Fermi surfaces, including the ''supercircle'' geometry and an experimental parametrization for PdCoO$_2$, which deviate from an ideal polygonal shape. We study the orientational dependence of skin effect due to Fermi-surface anisotropy, thus providing guidance for the experimental study of non-local optical effects.