Gigahertz-rate-switchable wavefront shaping through integration of metasurfaces with photonic integrated circuit

  • Haozong Zhong
  • , Yong Zheng
  • , Jiacheng Sun
  • , Zhizhang Wang
  • , Rongbo Wu
  • , Ling En Zhang
  • , Youting Liang
  • , Qinyi Hua
  • , Minghao Ning
  • , Jitao Ji
  • , Bin Fang
  • , Lin Li*
  • , Tao Li*
  • , Ya Cheng*
  • , Shining Zhu*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

31 Scopus citations

Abstract

Achieving spatiotemporal control of light at high speeds presents immense possibilities for various applications in communication, computation, metrology, and sensing. The integration of subwavelength metasurfaces and optical waveguides offers a promising approach to manipulate light across multiple degrees of freedom at high speed in compact photonic integrated circuit (PIC) devices. Here, we demonstrate a gigahertz-rate-switchable wavefront shaping by integrating metasurface, lithium niobate on insulator photonic waveguides, and electrodes within a PIC device. As proofs of concept, we showcase the generation of a focus beam with reconfigurable arbitrary polarizations, switchable focusing with lateral focal positions and focal length, orbital angular momentum light beams as well as Bessel beams. Our measurements indicate modulation speeds of up to the gigahertz rate. This integrated platform offers a versatile and efficient means of controlling the light field at high speed within a compact system, paving the way for potential applications in optical communication, computation, sensing, and imaging.

Original languageEnglish
Article number016005
JournalAdvanced Photonics
Volume6
Issue number1
DOIs
StatePublished - 1 Jan 2024
Externally publishedYes

Keywords

  • high-speed modulation
  • lithium niobate on insulator
  • metasurface
  • photonic integrated circuit

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