论文标题

Weyl Semimetal波导中的可调表面等离子体极化子

Tunable Surface Plasmon Polaritons in a Weyl Semimetal Waveguide

论文作者

Abdol, S. Oskoui, Vala, A. Soltani, Abdollahipour, B.

论文摘要

Weyl半法最近由于拓扑特性所表现出的异常带结构而引起了广泛的关注,这些特性带来了一些异常和独特的物理特性。我们研究了由两个半无限WEYL半法的插槽波导中表面等离子体极化的新特征。我们考虑在两个波导的两个接口中的对称的VOIGT-VOIGT和FARADAY-FARADAY配置,并表明所得的分散体是对称的,并且表面等离子体极化子的传播是双向的。我们引入了异国情调和新颖的不对称结构,以利用在VOIGT和FARADAY构型中两个Weyl半学中手性异常的差异。这些结构表现出巨大的非偏置色散和表面等离子体极化子的单向传播。此外,我们研究了波导两个接口中的表面等离子体polartions的Voigt-Faraday的混合构型。我们发现这种结构具有独特的未来。它显示了表面等离子体极化模式,其单向传播高于散装等离子体频率。此外,我们找到了一个表面等离子体偏振仪带,该带同时接纳了Voigt和Faraday特征。另外,我们表明,在这些结构中,Weyl半含量的波导厚度和化学势可以用作微调参数。我们的发现可以用于利用单向表面等离子体传播特征的光学设备。

Weyl semimetals have recently attracted extensive attention due to their anomalous band structure manifested by topological properties that lead to some unusual and unique physical properties. We investigate novel features of surface plasmon polaritons in a slot waveguide comprised from two semi-infinite Weyl semimetals. We consider symmetric Voigt-Voigt and Faraday-Faraday configurations for plasmon polaritons in two interfaces of waveguide and show that the resulting dispersion is symmetric and the propagation of surface plasmon polaritons is bidirectional. We introduce exotic and novel asymmetric structures making use of difference in magnitude or orientation of chiral anomalies in two Weyl semimetals in both Voigt and Faraday configurations. These structures show a tremendous nonreciprocal dispersion and unidirectional propagation of surface plasmon polaritons. Moreover, we study an hybrid configuration of Voigt-Faraday for surface plasmon polartions in two interfaces of the waveguide. We find that this structure possesses unique futures. It shows surface plasmon polariton modes with unidirectional propagation above the bulk plasmon frequency. Furthermore, we find a surface plasmon polariton band which admits the Voigt and Faraday features simultaneously. Also, we show that the waveguide thickness and the chemical potential of the Weyl semimetals can be used as a fine-tuning parameters in these structures. Our findings may be employed in optical devices which exploit the unidirectional surface plasmon propagation features.

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