Raman Spectroscopy for Homeland Security Applications

Author:

Mogilevsky Gregory1,Borland Laura1,Brickhouse Mark1,Fountain III Augustus W.2

Affiliation:

1. Booz Allen Hamilton Inc., 4692 Millennium Dr., Suite 200, Belcamp, MD 21017, USA

2. Research and Technology Directorate, Edgewood Chemical Biological Center, 5183 Blackhawk Road, Aberdeen Proving Ground, MD 21010-5224, USA

Abstract

Raman spectroscopy is an analytical technique with vast applications in the homeland security and defense arenas. The Raman effect is defined by the inelastic interaction of the incident laser with the analyte molecule’s vibrational modes, which can be exploited to detect and identify chemicals in various environments and for the detection of hazards in the field, at checkpoints, or in a forensic laboratory with no contact with the substance. A major source of error that overwhelms the Raman signal is fluorescence caused by the background and the sample matrix. Novel methods are being developed to enhance the Raman signal’s sensitivity and to reduce the effects of fluorescence by altering how the hazard material interacts with its environment and the incident laser. Basic Raman techniques applicable to homeland security applications include conventional (off-resonance) Raman spectroscopy, surface-enhanced Raman spectroscopy (SERS), resonance Raman spectroscopy, and spatially or temporally offset Raman spectroscopy (SORS and TORS). Additional emerging Raman techniques, including remote Raman detection, Raman imaging, and Heterodyne imaging, are being developed to further enhance the Raman signal, mitigate fluorescence effects, and monitor hazards at a distance for use in homeland security and defense applications.

Publisher

Hindawi Limited

Subject

Rehabilitation,Physical Therapy, Sports Therapy and Rehabilitation,General Medicine

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