A Colorimetric Sensor Array for Detection of Triacetone Triperoxide Vapor

被引:232
作者
Lin, Hengwei [1 ]
Suslick, Kenneth S. [1 ]
机构
[1] Univ Illinois, Dept Chem, Urbana, IL 61801 USA
关键词
ELECTROCHEMICAL DETECTION; PEROXIDE EXPLOSIVES; TATP; CHROMATOGRAPHY; SPECTROMETRY;
D O I
10.1021/ja107419t
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Triacetone triperoxide (TATP), one of the most dangerous primary explosives, has emerged as an explosive of choice for terrorists in recent years. Owing to the lack of UV absorbance, fluorescence, or facile ionization, TATP is extremely difficult to detect directly. Techniques that are able to detect generally require expensive instrumentation, need extensive sample preparation, or cannot detect TATP in the gas phase. Here we report a simple and highly sensitive colorimetric sensor for the detection of TATP vapor with semiquantitative analysis from 50 ppb to 10 ppm. By using a solid acid catalyst to pretreat a gas stream, we have discovered that a colorimetric sensor array of redox sensitive dyes can detect even very low levels of TATP vapor from its acid decomposition products (e.g., H2O2) with limits of detection (LOD) below 2 ppb (i.e., <0.02% of its saturation vapor pressure). Common potential interferences (e.g., humidity, personal hygiene products, perfume, laundry supplies, volatile organic compounds, etc.) do not generate an array response, and the array can also differentiate TATP from other chemical oxidants (e.g., hydrogen peroxide, bleach, tert-butylhydroperoxide, peracetic acid).
引用
收藏
页码:15519 / 15521
页数:3
相关论文
共 34 条
[1]  
[Anonymous], 2002, Principal components analysis
[2]  
APBLETT A, 2005, CERAM T, V172, P29
[3]   Gas chromatography/mass spectrometry analysis of triacetone triperoxide (TATP) degradation products [J].
Armitt, David ;
Zimmermann, Peter ;
Ellis-Steinborner, Simon .
RAPID COMMUNICATIONS IN MASS SPECTROMETRY, 2008, 22 (07) :950-958
[4]   Potentials and limits of mid-infrared laser spectroscopy for the detection of explosives [J].
Bauer, C. ;
Sharma, A. K. ;
Willer, U. ;
Burgmeier, J. ;
Braunschweig, B. ;
Schade, W. ;
Blaser, S. ;
Hvozdara, L. ;
Mueller, A. ;
Holl, G. .
APPLIED PHYSICS B-LASERS AND OPTICS, 2008, 92 (03) :327-333
[5]   Current trends in the detection of peroxide-based explosives [J].
Burks, Raychelle M. ;
Hage, David S. .
ANALYTICAL AND BIOANALYTICAL CHEMISTRY, 2009, 395 (02) :301-313
[6]  
COOPER RT, 2001, LOS ANGELES TIM 1229, pA12
[7]   In situ trace detection of peroxide explosives by desorption electrospray ionization and desorption atmospheric pressure chemical ionization [J].
Cotte-Rodriguez, Ismael ;
Hernandez-Soto, Heriberto ;
Chen, Hao ;
Cooks, R. Graham .
ANALYTICAL CHEMISTRY, 2008, 80 (05) :1512-1519
[8]   Novel approach to the detection of triacetone triperoxide (TATP): Its structure and its complexes with ions [J].
Dubnikova, F ;
Kosloff, R ;
Zeiri, Y ;
Karpas, Z .
JOURNAL OF PHYSICAL CHEMISTRY A, 2002, 106 (19) :4951-4956
[9]   A Simple and Highly Sensitive Colorimetric Detection Method for Gaseous Formaldehyde [J].
Feng, Liang ;
Musto, Christopher J. ;
Suslick, Kenneth S. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2010, 132 (12) :4046-+
[10]   A colorimetric sensor array for identification of toxic gases below permissible exposure limits [J].
Feng, Liang ;
Musto, Christopher J. ;
Kemling, Jonathan W. ;
Lim, Sung H. ;
Suslick, Kenneth S. .
CHEMICAL COMMUNICATIONS, 2010, 46 (12) :2037-2039