Coherent Imaging at 2.4 THz with a CW Quantum Cascade Laser Transmitter

Abstract

A coherent transceiver using a THz quantum cascade laser as the transmitter and an optically pumped molecular laser as the local oscillator has been used, with a pair of Schottky diode mixers in the receiver and reference channels, to acquire high-resolution images of fully illuminated targets, including scale models. Phase stability of the received signal sufficient to allow coherent image processing of the rotating target (in azimuth and elevation), was obtained by frequency-locking the TQCL to the free-running, highly stable optically pumped molecular laser. While the range to the target was limited by the available TQCL power (several hundred microwatts) and reasonably strong indoor atmospheric attenuation at 2.408 THz (2.0 dB/m at 40% RH), the coherence length of the QCL transmitter will allow coherent imaging over distances up to several hundred meters. In contrast to non-coherent heterodyne detection, coherent imaging allows signal integration over time intervals considerably longer than the reciprocal of the source, or signal bandwidth, with consequent improvement in the signal-to-noise ratio. Image data obtained with the system will be presented.

Open PDF

Document Details

Document Type
Technical Report
Publication Date
Jan 01, 2010
Accession Number
ADA528771

Entities

People

  • Andrew J. Gatesman
  • Andriy A. Danylov
  • Jerry Waldman
  • Krongtip Termkoa
  • Michael J. Coulombe
  • Neelima Chandrayan
  • Robert H. Giles
  • Shivashankar Vangala
  • Thomas M. Goyette
  • William D. Goodhue
  • William E. Nixon
  • Xifeng Qian

Tags

Communities of Interest

  • Advanced Electronics
  • Energy and Power Technologies

DTIC Thesaurus Topics

  • Bandwidth
  • Detection
  • Frequency
  • High Resolution
  • Lasers
  • Local Oscillators
  • Measurement
  • Molecular Lasers
  • Quantum Cascade Lasers
  • Radar
  • Radiation
  • Scale Models
  • Schottky Diodes
  • Synthetic Aperture Radar
  • Terahertz Radiation
  • Transmitters
  • Two Dimensional

Fields of Study

  • Physics

Readers

  • Optical Physics and Photonics.
  • Quantum Dot Semiconductor Device Photonics and Graphene Optoelectronic Materials and THz Physics.
  • Radar Systems Engineering.

Technology Areas

  • Directed Energy
  • Quantum Computing