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Fluorescence Analysis as an Effective Method Used in Micro/Trace Explosive Detection

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
There are many kinds of explosives, and their detection methods vary. Nitroaromatic compound is one of the composition of the explosives commonly used. The fuorescence will be quenched when they touch the fuorescent conjugated polymers. General methods for explosives detection have been summarized in this paper, in addition the application of novel fuorescence analysis technique in explosives detection has been introduced. Fluorescent conjugated polymer as chemical sensing material for explosive detection has been reviewed in detail, also a novel fuorescent sensing flm self-assembled by fuorescent small molecule pyrene and homogeneous fuoroimmunoassay have been presented briefy. The development of fuorescence analysis used in the area of determining explosives has been prospected.
Rocznik
Strony
303--311
Opis fizyczny
Bibliogr. 26 poz.
Twórcy
autor
autor
autor
autor
  • Graduate School of CAEP, Mianyang 621900, China Institute of Chemical Materials, CAEP, Mianyang 621900, China, shuyjie@yahoo.com
Bibliografia
  • [1] Meng X.C., Explosives and Narcotic Detection Technologies, Nuclear Electronics & Detection Technology, 2003, 23(4), 371-379.
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  • [3] Chen X.W., Master Degree Thesis, Northwestern Polytechnical University, 2007.
  • [4] Woltman S.J., Even W.R., Weber S.G., et al., Chromatographic Detection of Nitroaromatic and Nitramine Compounds by Electrochemical Reduction Combined with Photoluminescence following Electron Transfer, Anal.Chem., 2000 , 72, 4928- 4933.
  • [5] Shriver-Lake L., Brestin K., Charles P., et al., Detection of TNT in Water Using an Evanescent Wave Fiber-Optic Biosensor, Anal. Chem., 1995 , 67, 2431-2435.
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  • [8] Bratin K., Kissinger P.T., Briner R.C., et al., Determination of Nitroaromatic, Nitramine, and Nitrate Ester Explosive Compounds in Explosive Mixtures and Gunshot Residue by Liquid Chromatography and Reductive Electrochemical Detection, Anal. Chim. Acta, 1981, 130, 295-311.
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  • [10] Kim T., Elsenbanmer R.L., Synthesis, Characterization, and Electrical Properties of Poly(1-alkyl-2,5-pyrrylene vinylenes), New Low Band Gap Conducting Polymers, Macromolecules, 2000, 33(17), 6404-6411.
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  • [13] Basabe-Desmonts L., Reinhoudt D.N., Crego-Calama M., Design of Fluorescent Materials for Chemical Sensing, Chem. Soc. Rev., 2007, 36, 993-1017.
  • [14] Mcquade D.T., Pullen A.E., Swager T.M., Conjugated Polymer-Based Chemical Sensors, Chem. Rev., 2000, 100, 2537-2574.
  • [15] Gao L.N., Lv F.T., Fang Y., Progress in the Studies of Fluorescent Film Sensors, Acta. Phys. –Chim. Sin., 2007, 23(2), 274-284.
  • [16] Chang C.P., Chao C.Y., Huang J.H., et al., Fluorescent Conjugated Polymer Films as TNT Chemosensors, Synth. Met., 2004, 144, 297-301.
  • [17] Hsieh B.R., Yu Y., Vanlaeken A.C., et al., General Methodology toward Soluble Poly(p-phenylenevinylene) Derivatives, Macromolecules, 1997, 30(25), 8094- 8095.
  • [18] Hsieh B.R., Yu Y., Forsythe Y.E., et al., A New Family of Highly Emissive Soluble Poly(p-phenylene vinylene) Derivatives. A Step toward Fully Conjugated Blue- Emitting Poly(p-phenylene vinylenes), J. Am. Chem. Soc., (Communication), 1998, 120(1), 231-232.
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Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BAT1-0034-0039
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