Active manipulation of the spin and orbital angular momentums in a Terahertz graphene-based hybrid plasmonic waveguide

  • Ziang Wang
  • , Qilong Tan
  • , Yong Liang
  • , Xia Zhou
  • , Wen Zhou
  • , Xuguang Huang

Research output: Contribution to journalArticlepeer-review

7 Scopus citations

Abstract

Angular momentums (AMs) of photons are crucial physical properties exploited in many fields such as optical communication, optical imaging, and quantum information processing. However, the active manipulation (generation, switching, and conversion) of AMs of light on a photonic chip remains a challenge. Here, we propose and numerically demonstrate a reconfigurable graphene-based hybrid plasmonic waveguide (GHPW) with multiple functions for on-chip AMs manipulation. Its physical mechanism lies in creating a switchable phase delay of ±π/2 between the two orthogonal and decomposed linear-polarized waveguide modes and the spin-orbit coupling in the GHPW. For the linear-polarized input light with a fixed polarization angle of 45°, we can simultaneously switch the chirality (with −ћ/+ћ) of the transverse component and the spirality (topological charge ℓ = −1/+1) of the longitudinal component of the output terahertz (THz) light. With a switchable phase delay of ±π in the GHPW, we also developed the function of simultaneous conversion of the charity and spirality for the circular-polarized input light. In addition, a selective linear polarization filtering with a high extinction ratio can be realized. With the above multiple functions, our proposed GHPWs are a promising platform in AMs generation, switching, conversion, and polarization filtering, which will greatly expand its applications in the THz photonic integrated circuits.

Original languageEnglish
Article number2436
Pages (from-to)1-12
Number of pages12
JournalNanomaterials
Volume10
Issue number12
DOIs
StatePublished - Dec 2020
Externally publishedYes

Keywords

  • Graphene plasmonic waveguides
  • Orbital angular momentum
  • Spin angular momentum

Fingerprint

Dive into the research topics of 'Active manipulation of the spin and orbital angular momentums in a Terahertz graphene-based hybrid plasmonic waveguide'. Together they form a unique fingerprint.

Cite this