The SFS technology has already proved its analytical capabilities in a variety of industrial and environmental tasks. Recently it has been introduced for forensic applications. The key features of the SFS method - measuring a 3-dimensional spectrum of fluorescence of the sample (intensity versus excitation and emission wavelengths) with following recognition of specific spectral patterns of SFS responsible for individual drugs - provide an effective tool for the analysis of untreated seized samples, without any separation of the substance of interest from its mixture with accompanying cutting agents and diluents as a preparatory step. In such approach the chemical analysis of the sample is substituted by the analysis of SFS matrix visualized as an optical image. The SFS technology of drug detection is realized by NarTest® NTX2000 analyzer, compact device intended to measure suspicious samples in liquid, solid and powder forms. It simplifies the detection process due to fully automated procedures of SFS measuring and integrated expert system for recognition of spectral patterns. Presently the expert system of NTX2000 is able to detect marijuana, cocaine, heroin, MDMA, amphetamine and methamphetamine with the detection limit down to 5% of the drug concentration in various mixtures. The numerous tests with street samples confirmed that the use of SFS method provides reliable results with high sensitivity and selectivity for identification of drugs of abuse. More than 3000 street samples of the aforesaid drugs were analyzed with NTX2000 during validation process, and the correspondence of SFS results and conclusions of standard forensic analyses with GC/MS techniques was in 99.4% cases.
[1]
J. Christensen,et al.
Front-face fluorescence spectroscopy and chemometrics in analysis of yogurt: rapid analysis of riboflavin.
,
2003,
Journal of dairy science.
[2]
G. Blaschke,et al.
HPLC with laser-induced native fluorescence detection for morphine and morphine glucuronides from blood after immunoaffinity extraction
,
2005,
International Journal of Legal Medicine.
[3]
H. Kuosa,et al.
Spectral fluorescence signatures in the characterization of phytoplankton community composition
,
1994
.
[4]
G. Theodoridis,et al.
A new method for the HPLC determination of gamma-hydroxybutyric acid (GHB) following derivatization with a coumarin analogue and fluorescence detection: application in the analysis of biological fluids.
,
2008,
Talanta.
[5]
Jukka Seppälä,et al.
The use of spectral fluorescence methods to detect changes in the phytoplankton community
,
2004,
Hydrobiologia.
[6]
Rasmus Bro,et al.
Multivariate autofluorescence of intact food systems.
,
2006,
Chemical reviews.
[7]
S Babichenko,et al.
Fluorescent screening of phytoplankton and organic compounds in sea water.
,
2000,
Journal of environmental monitoring : JEM.
[8]
A. Alnajjar.
Capillary Electrophoresis with Fluorescence Detection for Sensitive Analysis of Morphine and 6-Acetylmorphine in Human Urine
,
2008
.
[9]
J. Christensen,et al.
Application of fluorescence spectroscopy and chemometrics in the evaluation of processed cheese during storage.
,
2003,
Journal of dairy science.