2016-954 Tunable THz Generation in Chip-Scale Graphene

SUMMARY

UCLA researchers in the Department of Electrical Engineering have developed a novel tunable and efficient terahertz (THz) plasmon generation on-chip via graphene monolayers.

BACKGROUND

Generating, confining, and controlling graphene plasmons on optoelectronic chips would be groundbreaking but remains elusive to date. Recently, graphene plasmons have been generated via optical nonlinearity. However, it is still challenging to achieve graphene plasmons in chip-scale integrated photonics and optoelectronics because of the complicated nanofabrication, sensitive free-space calibration, and lack of specific source and detectors.

INNOVATION

Researchers led by Professor Chee Wei Wong have developed a novelgraphene heterostructure semiconductor chip, where single THz surface plasmons are generated using ‘C+L’ light sources.The THz frequency and intensity is tunable via external gate voltage and the optical-to-THz conversion is at least an order of magnitude more efficient than prior THz sources. By controlling the optical and electrical conditions, the photon efficiency of the graphene plasmons reaches ~10-4, with a Q factor approaching 60. This innovative platform will lead to chip-scale room-temperature THz sources, switches, modulators, detectors, lasers, polarizers, and sensors based on graphene.

POTENTIAL APPLICATIONS

  • Optoelectronic devices
  • Photonic devices 

ADVANTAGES

  • Tunable THz plasmon generation
  • Tunable gate
  • All-optically generated
  • On-chip plasmon generation
  • Highly efficient
  • ‘C+L’ light sources 

STATE OF DEVELOPMENT

Prototype graphene-based semiconductor chips have been fabricated and extensively tested.

PATENT STATUS

United States Of America       Issued Patent       10,901,243       01/26/2021

Patent Information:
For More Information:
Nikolaus Traitler
Business Development Officer (BDO)
nick.traitler@tdg.ucla.edu
Inventors:
Chee Wei Wong
Baicheng Yao
Yuan Liu
Xiangfeng Duan