4.5 Article

Omnidirectional terahertz photonic band gap broaden effect in one-dimensional photonic crystal containing few-layer graphene

Journal

OPTICS COMMUNICATIONS
Volume 490, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.optcom.2021.126898

Keywords

Omnidirectional photonic band gaps; One-dimensional photonic crystals; Few-layer graphene

Categories

Funding

  1. National Natural Science Foundation of China [11104086]
  2. Special Project in Key Fields of Artificial Intelligence in Colleges and Universities of Guangdong Province [2019KZDZX1042]
  3. Special Innovation Project of Department of Education of Guangdong Province [2018KTSCX123]
  4. Science and Technology Program of Guangzhou, China [201804010175]

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The study found that introducing few-layer graphene into one-dimensional photonic crystals can significantly broaden the bandwidth of omnidirectional photonic band gaps, with a stronger effect as the number of graphene layers increases. Few-layer graphene acts like an ultrathin metal layer within the frequency range of the OPBG, allowing for dynamic tuning of the bandwidth by the gate voltage of the graphene. This provides a practical way to promote various applications based on tunable terahertz OPBGs.
We study the influence of few-layer graphene on omnidirectional photonic band gap (OPBG) in onedimensional photonic crystal (1DPC) at terahertz frequencies. By periodically introducing few-layer graphene into 1DPC, the width of OPBG can be greatly broadened. As the layer number of introduced graphene increases, the broaden effect of the OPBG becomes stronger. The physical reason behind the broaden effect is that the few-layer graphene acts like an ultrathin metal layer within the frequency range of the OPBG. Besides, the width of the OPBG can be dynamically tuned by the gate voltage of graphene. Compared to 1DPCs containing metal layers, 1DPCs containing few-layer graphene possess lower absorptive loss and more flexible tunability. Our works provides a route and practical way to promote various applications based on tunable terahertz OPBGs.

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