Skip to main navigation Skip to search Skip to main content

Bridging the 100 GHz - 10 THz domain with unipolar quantum optoelectronics

  • Frédéric Grillot
  • , Pierre Didier
  • , Olivier Spitz
  • , Livia Del Balzo
  • , Hyunah Kim
  • , Hamza Dely
  • , Thomas Bonazzi
  • , Etienne Rodriguez
  • , Djamal Gacemi
  • , Angela Vasanelli
  • , Carlo Sirtori
  • University of New Mexico
  • Institut Polytechnique de Paris
  • Centre d'intégration NanoInnov
  • University of Central Florida
  • Center for Atomic-scale Materials Physics (CAMP)

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

5 Citations (Scopus)

Abstract

The challenge of Unipolar Quantum Optoelectronics (UQO) is to bring reliable technology in the mid-infrared and terahertz domains with dozens of GHz bandwidth and room-temperature operation. The semiconductor devices based on this novel technology rely on two-dimensional electronic states localized in the conduction band, which implies that electrons are the only charge carriers involved. Though UQO technology has been proven useful for emission (quantum cascade lasers) and detection (quantum cascade detectors), it is still underdeveloped for other applications, like high-speed modulation. In this paper, we will review our recent results with a full transmission system UQO in the 8 to 14 μm atmospheric window, composed of a quantum cascade (QC) laser, an external modulator and a QC detector, all optimized for operation at 33 THz optical wavelength. Dynamics down to a few dozens of picoseconds are observed, which allow us demonstrating data rate transmission of 10 Gbps without any signal processing. In addition, the paper aims at discussing further applications of UQO in particular for radio over free-space. The basic principle for producing microwave carriers is based on an optical heterodyne beating technique taking advantage of the high-bandwidth potential of QC detectors. Then, the microwave signal is transmitted through a point-to-point wireless link by using radiofrequency antennas. With UQO, microwave signals of dozens of GHz can be achieved. To sum, this paper highlights the importance of using UQO devices operating at a few dozens of THz optical wavelength for both free-space optics and microwave photonics targeting 100 GHz radiofrequencies.

Original languageEnglish
Title of host publicationTerahertz Emitters, Receivers, and Applications XIII
EditorsManijeh Razeghi, Alexei N. Baranov
PublisherSPIE
ISBN (Electronic)9781510654440
DOIs
Publication statusPublished - 1 Jan 2022
EventTerahertz Emitters, Receivers, and Applications XIII 2022 - San Diego, United States
Duration: 21 Aug 202222 Aug 2022

Publication series

NameProceedings of SPIE - The International Society for Optical Engineering
Volume12230
ISSN (Print)0277-786X
ISSN (Electronic)1996-756X

Conference

ConferenceTerahertz Emitters, Receivers, and Applications XIII 2022
Country/TerritoryUnited States
CitySan Diego
Period21/08/2222/08/22

Keywords

  • data transmission
  • free-space communication
  • mid-infrared photonics
  • quantum cascade laser

Fingerprint

Dive into the research topics of 'Bridging the 100 GHz - 10 THz domain with unipolar quantum optoelectronics'. Together they form a unique fingerprint.

Cite this