A Double Resonance Approach to Submillimeter/Terahertz Remote Sensing at Atmospheric Pressure

Abstract

The remote sensing of gases in complex mixtures at atmospheric pressure is a challenging problem and much attention has been paid to it. The most fundamental difference between this application and highly successful astrophysical and upper atmospheric remote sensing is the line width associated with atmospheric pressure broadening, 5 GHz in all spectral regions. In this paper, we discuss quantitatively a new approach that would use a short pulse infrared laser to modulate the submillimeter/terahertz (SMM/THz) spectral absorptions on the time scale of atmospheric relaxation. We show that such a scheme has three important attributes. 1) The time resolved pump makes it possible and efficient to separate signal from atmospheric and system clutter, thereby gaining as much as a factor of 10 6 in sensitivity. 2) The 3-D information matrix (infrared pump laser frequency, SMM/THz probe frequency, and time resolved SMM/THz relaxation) can provide orders of magnitude greater specificity than a sensor that uses only one of these three dimensions. 3) The congested and relatively weak spectra associated with large molecules can actually be an asset because the usually deleterious effect of their overlapping spectra can be used to increase signal strength.

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Document Details

Document Type
Technical Report
Publication Date
Feb 01, 2009
Accession Number
ADA534981

Entities

People

  • Douglas T. Petkie
  • Frank C. De Lucia
  • Henry O. Everitt

Organizations

  • Ohio State University

Tags

Communities of Interest

  • Advanced Electronics
  • Energy and Power Technologies
  • Materials and Manufacturing Processes
  • Sensors
  • Space

DTIC Thesaurus Topics

  • 5G Wireless Networks
  • Barometric Pressure
  • Detection
  • Detectors
  • Frequency
  • Laser Beams
  • Lasers
  • Molecules
  • Production Engineering
  • Quantum Electronics
  • Relaxation Time
  • Remote Sensing
  • Scattering
  • Spectra
  • Spectroscopy
  • Tea Lasers
  • Three Dimensional

Fields of Study

  • Physics

Readers

  • Ocean-Atmosphere Mesoscale Modeling, Data Assimilation, and Flux Boundary Layers
  • Optical Physics and Photonics.
  • Systems Analysis and Design

Technology Areas

  • Directed Energy
  • Directed Energy - Lasers
  • Space