论文标题

磁光kerr效应在静脉折叠和时反转对称性的Weyl半法中

Magneto-optical Kerr effect in Weyl semimetals with broken inversion and time-reversal symmetries

论文作者

Trépanier, Olivier, Duchesne, Rémi N., Boudreault, Jérémie J., Côté, René

论文摘要

Weyl半学的带结构的拓扑性质导致许多独特的传输和光学特性。例如,例如,在Weyl半含量中电磁波传播的描述,例如,时间逆转和反转对称性,需要通过Axion Field $θ\ left(\ MathBf {r},t \ right)对Maxwell方程进行修改(\ MathBf {r},t \ right) \ Mathbf {r} -2b_ {0} t,$ $ 2%\ Mathbf {B} $是在两个相反手性的Weyl节点和$ 2 \ hslash B_ {0} $之间的波矢量空间中的分离。在本文中,我们从理论上研究了轴,轴法术语$ b_ {0} $和$ \ bf {b} $修改了kerr旋转和椭圆方角的频率行为$θ_{k} \ left(K} \ left(ω\ oright)$和$ψ_{k} {k} \ left(k} \ left(ω\ weft(ω\ firt) Faraday和Voigt配置都被考虑,因为它们提供了有关电子过渡和等离子体激发的不同信息。我们首先在没有外部磁场的情况下得出KERR角度,即极化的旋转仅是由于轴突项造成的,其次是在强磁场中,这些术语与磁场的回旋效应竞争。在后一种情况下,我们专注于费米水平位于手性Landau水平的超量子极限,而Kerr和椭圆角的频率和磁场行为更为复杂。

The topological nature of the band structure of a Weyl semimetal leads to a number of unique transport and optical properties. For example, the description of the propagation of an electromagnetic wave in a Weyl semimetal with broken time-reversal and inversion symmetry, for example, requires a modification of the Maxwell equations by the axion field $θ\left( \mathbf{r},t\right) =2\mathbf{b}\cdot \mathbf{r}-2b_{0}t,$ where $2% \mathbf{b}$ is the separation in wave vector space between two Weyl nodes of opposite chiralities and $2\hslash b_{0}$ is their separation in energy. In this paper, we study theoretically how the axion terms $b_{0}$ and $\bf{b}$ modify the frequency behavior of the Kerr rotation and ellipticity angles $θ_{K}\left( ω\right) $ and $ψ_{K}\left( ω\right) $ in a Weyl semimetal. Both the Faraday and Voigt configurations are considered since they provide different information on the electronic transitions and plasmon excitation. We derive the Kerr angles firstly without an external magnetic field where the rotation of the polarization is only due to the axion terms and secondly in a strong magnetic field where these terms compete with the gyration effect of the magnetic field. In this latter case, we concentrate on the ultra-quantum limit where the Fermi level lies in the chiral Landau level and the Kerr and ellipticity angles have more complex frequency and magnetic field behaviors.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源