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Enhanced nanoplasmonic heating in standoff sensing of explosive residues with infrared reflection-absorption spectroscopy

  • Nicholas Simin
  • , Yangkyu Park
  • , Dongkyu Lee
  • , Thomas Thundat
  • , Seonghwan Kim
  • University of Calgary
  • Korea Institute of Machinery and Materials

Research output: Contribution to journalArticlepeer-review

4 Scopus citations

Abstract

Various standoff sensing techniques employing optical spectroscopy have been developed to address challenges in safely identifying trace amounts of explosives at a distance.A flexible anodic aluminum oxide (AAO) microcantilever and a high-power quantum cascade laser utilized as the infrared (IR) source are used for standoff IR reflection-absorption spectroscopy to detect explosive residues on a metal surface. Standoff sensing of trinitrotoluene (TNT) is demonstrated by exploiting the high thermomechanical sensitivity of a bimetallic AAO microcantilever. Moreover, sputtering gold onto the fabricated AAO nanowells generates a strong scattering and absorption of IR light in the wavelength range of 5.18 μm to 5.85 μm resulting in enhanced nanoplasmonic heating. Utilizing the IR absorption enhancement in this wavelength range, the plasmonic AAO cantilever could detect TNT molecules 7 times better than could the bimetallicAAOcantilever.

Original languageEnglish
Pages (from-to)2144-2147
Number of pages4
JournalOptics Letters
Volume45
Issue number8
DOIs
StatePublished - Apr 15 2020

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