Standoff detection of high explosive materials at 50 meters in ambient light conditions using a small Raman instrument

被引:213
作者
Carter, JC
Angel, SM
Lawrence-Snyder, M
Scaffidi, J
Whipple, RE
Reynolds, JG
机构
[1] Lawrence Livermore Natl Lab, Div M, Forens Sci Ctr, Livermore, CA 94550 USA
[2] Univ S Carolina, Dept Chem & Biochem, Columbia, SC 29208 USA
关键词
standoff Raman; energetic materials; TNT; RDX; PETN;
D O I
10.1366/0003702054280612
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
We have designed and demonstrated a standoff Raman system for detecting high explosive materials at distances up to 50 meters in ambient light conditions. In the system, light is collected using an 8-in. Schmidt-Cassegrain telescope fiber-coupled to an f/1.8 spectrograph with a gated intensified charge-coupled device (ICCD) detector. A frequency-doubled Nd:YAG (532 nm) pulsed (10 Hz) laser is used as the excitation source for measuring remote spectra of samples containing up to 8% explosive materials. The explosives RDX, TNT, and PETN as well as nitrate- and chlorate-containing materials were used to evaluate the performance of the system with samples placed at distances of 27 and 50 meters. Laser power studies were performed to determine the effects of laser heating and photodegradation on the samples. Raman signal levels were found to increase linearly with increasing laser energy up to similar to 3 x 10(6) W/cm(2) for all samples except TNT, which showed some evidence of photo- or thermal degradation at higher laser power densities. Detector gate width studies showed that Raman spectra could be acquired in high levels of ambient light using a 10 microsecond gate width.
引用
收藏
页码:769 / 775
页数:7
相关论文
共 46 条
  • [1] Field-deployable sniffer for 2,4-dinitrotoluene detection
    Albert, KJ
    Myrick, ML
    Brown, SB
    James, DL
    Milanovich, FP
    Walt, DR
    [J]. ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2001, 35 (15) : 3193 - 3200
  • [2] High-speed fluorescence detection of explosives-like vapors
    Albert, KJ
    Walt, DR
    [J]. ANALYTICAL CHEMISTRY, 2000, 72 (09) : 1947 - 1955
  • [3] REMOTE-RAMAN SPECTROSCOPY AT INTERMEDIATE RANGES USING LOW-POWER CW LASERS
    ANGEL, SM
    KULP, TJ
    VESS, TM
    [J]. APPLIED SPECTROSCOPY, 1992, 46 (07) : 1085 - 1091
  • [4] Photodissociation followed by laser-induced fluorescence at atmospheric pressure and 24 °C:: a unique scheme for remote detection of explosives
    Arusi-Parpar, T
    Heflinger, D
    Lavi, R
    [J]. APPLIED OPTICS, 2001, 40 (36) : 6677 - 6681
  • [5] CARTER JC, 2005, IN PRESS SPECTROCH A
  • [6] SPECTROSCOPIC STUDIES OF EXPLOSIVES .1. DETECTION OF NITRO-COMPOUNDS ON SILICA-GEL AND CARBON BY NON-RESONANT RAMAN-SPECTROSCOPY
    CARVER, FWS
    SINCLAIR, TJ
    [J]. JOURNAL OF RAMAN SPECTROSCOPY, 1983, 14 (06) : 410 - 414
  • [7] Fluorescent conjugated polymer films as TNT chemosensors
    Chang, CP
    Chao, CY
    Huang, JH
    Li, AK
    Hsu, CS
    Lin, MS
    Hsieh, BR
    Su, AC
    [J]. SYNTHETIC METALS, 2004, 144 (03) : 297 - 301
  • [8] CHENG C, 1995, J FORENSIC SCI, V40, P31
  • [9] Interpretation of Raman spectra of nitro-containing explosive materials. Part II: The implementation of neural, fuzzy, and statistical models for unsupervised pattern recognition
    Daniel, NW
    Lewis, IR
    Griffiths, PR
    [J]. APPLIED SPECTROSCOPY, 1997, 51 (12) : 1868 - 1879
  • [10] Fell NF, 1996, J RAMAN SPECTROSC, V27, P97, DOI 10.1002/(SICI)1097-4555(199602)27:2<97::AID-JRS931>3.0.CO