• DocumentCode
    1425244
  • Title

    Chemical Agent Detection Using GC-IMS: A Comparative Study

  • Author

    Kwan, Chiman ; Snyder, A. Peter ; Erickson, Richard P. ; Smith, Philip A. ; Maswadeh, Waleed M. ; Ayhan, Bulent ; Jensen, Janet L. ; Jensen, James O. ; Tripathi, Ashish

  • Author_Institution
    Signal Process., Inc., Rockville, MD, USA
  • Volume
    10
  • Issue
    3
  • fYear
    2010
  • fDate
    3/1/2010 12:00:00 AM
  • Firstpage
    451
  • Lastpage
    460
  • Abstract
    Low-cost and portable gas chromatography-ion mobility spectrometry (GC-IMS) has been used to identify chemicals. To accomplish this, two parameters are used. The first parameter relates to the GC retention time (RT), which is the residence time of an analyte as it passes through the column. Different chemicals have different RTs. The second parameter is the drift time of ionized species derived for a specific chemical in the IMS. Due to molecular cross section, mass, and chemical properties, different chemicals produce ionized species with different drift times. Combining these two parameters, GC-IMS has been shown to distinguish between different chemicals. Chemical detection and identification are not that easy in practice. First, the concentration of chemicals may be very low, and it may be difficult to determine the chromatographic RT and IMS drift time for chemicals under these conditions. Second, the specific ionized species produced in the IMS are concentration dependent and the IMS spectra obtained at different analyte concentrations are not easily predictable. For example, at low concentrations, chemicals seldom form dimers following atmospheric pressure ionization. The possible presence of either monomers or dimers in the IMS drift tube may confuse the chemical classification process. Third, it is important to estimate the concentration of chemicals, as this information will provide toxicity, and the linear dynamic range of typical IMS systems is relatively low In this study, an image processing approach to enhancing the GC-IMS signal quality is introduced. The key idea in this approach is to treat GC-IMS data as an image and then apply an anomaly detector to detect and enhance abnormal regions in the image. The results of a study that compares a conventional approach to chemical detection and the introduced image enhancement approach are presented. Receiver operating characteristics curves were used to compare the detection performances of the two approac- hes.
  • Keywords
    chemical engineering computing; chromatography; image enhancement; ion mobility; mass spectroscopic chemical analysis; GC retention time; GC-IMS spectra; atmospheric pressure ionization; chemical agent detection; chemical classification process; chemical concentration estimation; chromatographic IMS drift time; chromatographic RT drift; image enhancement; ion mobility spectrometry; ionized species; molecular cross section; portable gas chromatography; receiver operating characteristics curves; Biomedical engineering; Biomedical imaging; Chemical processes; Engineering in medicine and biology; Image edge detection; Image processing; Ionization; Spectroscopy; Toxic chemicals; Underwater vehicles; Gas chromatography (GC); image processing; ion mobility spectrometry (IMS); receiver operating characteristic (ROC);
  • fLanguage
    English
  • Journal_Title
    Sensors Journal, IEEE
  • Publisher
    ieee
  • ISSN
    1530-437X
  • Type

    jour

  • DOI
    10.1109/JSEN.2009.2038128
  • Filename
    5419285