Wang Tianzhi, Yan Fei, Wang Ruoxing, Tian Fengjun, Li Li
Appl Opt. 2020 Aug 20;59(24):7179-7185. doi: 10.1364/AO.399286.
We present a tunable plasmon-induced transparency (PIT) structure that is composed of dielectric grating and a graphene system to manipulate terahertz (THz) waves. The graphene system consists of a graphene sheet and a graphene ribbon layer, with a spacer between them. By exploiting the diffraction coupling of THz wave with dielectric grating, graphene plasmonic resonance is efficiently excited on both graphene sheet and graphene ribbons. This leads to the surface plasmon mode of the graphene sheet and the localized plasmon mode of the graphene ribbons. The coupling between the two-plasmon modes via near-field destructive interference generates a strong PIT effect with slowing the group velocity of THz waves. A group delay over 0.2 ps and group index beyond 170 can be achievable. The group slowing effect is dynamically tunable with varying the Fermi level of graphene. The work suggests a promising scheme for on-chip graphene slow-wave devices at the THz regime.
我们展示了一种由介质光栅和石墨烯系统组成的可调谐等离子体诱导透明(PIT)结构,用于操控太赫兹(THz)波。该石墨烯系统由一个石墨烯片和一个石墨烯带层组成,它们之间有一个间隔层。通过利用太赫兹波与介质光栅的衍射耦合,石墨烯片和石墨烯带上都能有效地激发石墨烯等离子体共振。这导致了石墨烯片的表面等离子体模式和石墨烯带的局域等离子体模式。通过近场相消干涉,两种等离子体模式之间的耦合产生了强烈的PIT效应,使太赫兹波的群速度减慢。可以实现超过0.2 ps的群延迟和超过170的群折射率。通过改变石墨烯的费米能级,群速度减慢效应是动态可调的。这项工作为太赫兹波段的片上石墨烯慢波器件提出了一个有前景的方案。