Showing posts with label Svetlana A. Varentsova. Show all posts
Showing posts with label Svetlana A. Varentsova. Show all posts

Sunday, August 12, 2018

Abstract-Conservative finite-difference scheme for the problem of THz pulse interaction with multilevel layer covered by disordered structure based on the density matrix formalism and 1D Maxwell’s equation


Vyacheslav A. Trofimov,  Svetlana A. Varentsova, Irina G. Zakharova, Dmitry Yu. Zagursky

http://journals.plos.org/plosone/article?id=10.1371/journal.pone.0201572

On the basis of the Crank-Nicolson method, we develop a conservative finite-difference scheme for investigation of the THz pulse interaction with a multilevel medium, covered by a disordered layered structure, in the framework of the Maxwell-Bloch equations, describing the substance evolution and the electromagnetic field evolution. For this set of the partial differential equations, the conservation laws are derived and proved. We generalize the Bloch invariant with respect to the multilevel medium. The approximation order of the developed finite-difference scheme is investigated and its conservatism property is also proved. To solve the difference equations, which are nonlinear with respect to the electric field strength, we propose an iteration method and its convergence is proved. To increase the computer simulation efficiency, we use the well-known solution of Maxwell’s equations in 1D case as artificial boundary condition. It is approximated using Cabaret scheme with the second order of an accuracy. On the basis of developed finite-difference scheme, we investigate the broadband THz pulse interaction with a medium covered by a disordered structure. This problem is of interest for the substance detection and identification. We show that the disordered structure dramatically induces an appearance of the substance false absorption frequencies. We demonstrate also that the spectrum for the transmitted and reflected pulses becomes broader due to the cascade mechanism of the high energy levels excitation of molecules. It leads to the substance emission at the frequencies, which are far from the frequency range for the incident pulse spectrum. Time-dependent spectral intensities at these frequencies are weakly disturbed by the disordered cover and, hence, they can be used for the substance identification. 

Saturday, September 2, 2017

Abstract-Substance identification by pulsed THz spectroscopy in the presence of disordered structure


Vyacheslav A. TrofimovIrina G. ZakharovaDmitry Yu. ZagurskySvetlana A. Varentsova


https://www.spiedigitallibrary.org/conference-proceedings-of-spie/10383/103830H/Substance-identification-by-pulsed-THz-spectroscopy-in-the-presence-of/10.1117/12.2275317.short


We discuss an effective method for the detection and identification of a substance, covered by a disordered structure, using the pulsed THz signal. The insufficiency of the standard THz-TDS method, based on the comparison of substance absorption spectra from database with the absorption spectrum of the substance under investigation, is demonstrated. To explain a physical mechanism of false absorption lines appearance in the signal we make a computer simulation on the base of 1D Maxwell's equations and density matrix formalism. For the detection and identification of substance we propose to utilize substance emission at high frequencies corresponding to the high energy levels excitation under the THz pulse action due to the cascade mechanism. In the case of a non-resonant medium we also discuss second harmonic generation and a possibility of its application to the substance detection and identification. The proposed method of the substance detection and identification is based on time-dependent integral correlation criteria calculated with the help of the spectral dynamics of medium response. A new type of the integral correlation criterion, which is less dependent on spectral characteristics of the noisy signal under investigation, is used for the identification.
© (2017) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.

Friday, November 18, 2016

Abstract-Detection and identification of drugs under real conditions by using noisy terahertz broadband pulse



Vyacheslav A. Trofimov and Svetlana A. Varentsova

https://www.osapublishing.org/ao/abstract.cfm?uri=ao-55-33-9605

We discuss an effective method for detecting and identifying drugs using a high-noise terahertz (THz) signal. We add a noisy THz signal obtained in real conditions to the THz signal transmitted through a sample with the illicit drug methamphetamine. The insufficiency of the standard THz time-domain spectroscopy method is demonstrated, showing that this method detects the spectral features of neutral substances and explosives in a noisy THz signal. The method discussed is based upon time-dependent integral correlation criteria calculated using spectral dynamics of the medium response. We propose a modification of the integral correlation criterion that is less dependent on the spectral characteristics of a noisy signal under investigation.
© 2016 Optical Society of America
Full Article  |  PDF Article

Monday, June 6, 2016

Abstract-Essential Limitations of the Standard THz TDS Method for Substance Detection and Identification and a Way of Overcoming Them




Faculty of Computational Mathematics and Cybernetics, Lomonosov Moscow State University, Leninskiye Gory, Moscow 119992, Russia
* Author to whom correspondence should be addressed. Academic Editors: Vincenzo Spagnolo and Dragan Indjin
Low efficiency of the standard THz TDS method of the detection and identification of substances based on a comparison of the spectrum for the signal under investigation with a standard signal spectrum is demonstrated using the physical experiments conducted under real conditions with a thick paper bag as well as with Si-based semiconductors under laboratory conditions. In fact, standard THz spectroscopy leads to false detection of hazardous substances in neutral samples, which do not contain them. This disadvantage of the THz TDS method can be overcome by using time-dependent THz pulse spectrum analysis. For a quality assessment of the standard substance spectral features presence in the signal under analysis, one may use time-dependent integral correlation criteria.

Saturday, October 10, 2015

Abstract-High effective algorithm of the detection and identification of substance using the noisy reflected THz pulse


 Vyacheslav A. TrofimovSvetlana A. Varentsova; Vladislav V. Trofimov; Vasily V. Tikhomirov

http://spie.org/Publications/Proceedings/Paper/10.1117/12.2189303

Principal limitations of the standard THz-TDS method for the detection and identification are demonstrated under real conditions (at long distance of about 3.5 m and at a high relative humidity more than 50%) using neutral substances thick paper bag, paper napkins and chocolate. We show also that the THz-TDS method detects spectral features of dangerous substances even if the THz signals were measured in laboratory conditions (at distance 30-40 cm from the receiver and at a low relative humidity less than 2%); silicon-based semiconductors were used as the samples. However, the integral correlation criteria, based on SDA method, allows us to detect the absence of dangerous substances in the neutral substances. The discussed algorithm shows high probability of the substance identification and a reliability of realization in practice, especially for security applications and non-destructive testing.

Saturday, February 12, 2011

2D terahertz signatures for substance identification

SPIE - The International Society of Optics and Photonics
http://spie.org/x44323.xml?highlight=x2412&ArticleID=x44323
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MY NOTE: THIS IS A VERY INTERESTING ARTICLE. IT SHOWS THERE APPEAR TO BE LIMITATIONS ON TIME-DOMAIN THz, THAT I WAS UNAWARE OF. (READ THE BOLDED PORTIONS, IN PARTICULAR. WE ALSO NEED TO ADD, SPECTRAL DYNAMIC ANALYSIS TO OUR THz, LEXICON.




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Vyacheslav A. Trofimov and Svetlana A. Varentsova
By studying the time evolution of substances' responses to terahertz radiation, materials of interest can be differentiated in a way not permitted by frequency domain analysis alone.
9 February 2011, SPIE Newsroom. DOI: 10.1117/2.1201009.003303

One of the most promising potential technologies for the detection and identification of explosives, drugs, and other dangerous substances is based on terahertz (THz) radiation.1–5 Terahertz time-domain spectroscopy (TDS) technology is based on analysis of absorption or reflection spectra in the terahertz range. Substances are detected and identified by comparing the spectrum of a pulse transmitted through the substance with a database of spectra.

However, we believe that this approach has at least three essential disadvantages. The first is related to the identification of simulants, substances with similar Fourier spectra at terahertz frequencies. THz-TDS does not allow, for example, identification of a substance hidden under a simulant cover or mixed with simulant material. The second is the lack of analysis of spectral lines that are absent in the initial pulse. Information about these spectral lines can be very important for finding explosives mixed with simulants. The third is the need to use a reference signal.

An alternative method of reliable identification uses estimates of terahertz pulse interaction with a medium over time. For this purpose, we proposed a few algorithms for dynamic analysis of the medium's response spectrum under the action of a pulse with a few cycles, that is, the spectral dynamics analysis (SDA) method.6–13 This technique allows us to obtain the unique 2D signature of a substance at terahertz and gigahertz frequencies. The algorithms allow us to reconstruct the pulse shape on the basis of single value decomposition (SVD), for example, and to obtain the dynamics of many spectral lines on the time-frequency plane—the spectrogram—by one set of integral measurements. For long time intervals (100ps and more), the SDA method provides an opportunity to define the relaxation time for excited energy levels of molecules. This information can provide a new way to identify substances because the relaxation time differs for molecules of different substances. In comparison with autocorrelation or correlation functions and their spectra, the SDA method has better resolvability and provides much more accurate information about substances.

We used SDA to analyze experimental data for explosives, for mixtures of explosive with a neutral medium, and for explosives under an opaque substance, as well as for a mixture of a neutral substance with a small amount of simulant. Our investigations showed that the spectrograms and dynamics of spectral lines in reflected and reference signals have fewer individual features (signatures) than in the case of identification using a signal transmitted through the substance. Nevertheless, we could determine the distinctions characterizing the presence of an additional substance in the sample and compare the transmitted and reflected signals. Therefore, the SDA method can be very effective for defense and security applications and also for quality control in the pharmaceutical industry. The following examples demonstrate its potential for substance detection and identification.

First, we examine explosives hidden under an opaque simulant cover. Pellets of RDX and HMX were covered with 1mm-thick cotton or plastic. The Fourier spectra of terahertz signals transmitted through the pellets are shown in Figure 1. The locations of extremes are similar in the spectra of RDX with cotton and of cotton alone in Figure 1(a) and those of HMX with plastic and plastic alone in Figure 1(b). Thus, cotton and plastic can be considered simulants for RDX and HMX, respectively, at terahertz frequencies. Considering both the fluctuations introduced by a real measurement system and the use of the autocorrelation function for calculating spectra in practice, direct comparison of spectra, even very detailed ones, does not allow us to distinguish explosives covered by these substances from the pure substance with high probability.


Figure 1. Fourier spectra of terahertz signals transmitted through explosives (RDX and HMX) and opaque simulant covers: (a) RDX under a cotton cover (RDX_Cot_Air) and pure cotton (Cot_air) and (b) HMX under a plastic cover (HMX_Plastic) and plastic alone.
Another technique for reliable identification using SDA consists of constructing and analyzing a spectrogram and the dynamics of spectral lines. Figure 2 shows the spectrograms for the signals RDX_Cot, Cot_Air, HMX_Plastic, and plastic. The first two are quite distinctive: a pronounced dark wide absorption band appears at the frequency ν = 0.8THz in Figure 2(a) and is absent in Figure 2(b). Other distinctions are found in the re-radiation dynamics after the end of the pulse. Differences between the spectrograms for other two signals are also clear. In Figure 2(c), a dark absorption band appears at ν = 1.8THz, whereas in Figure 2(d), the absorption band appears at ν = 1.7THz.







Figure 2. Spectrograms for the signals of (a) RDX covered with cotton, (b) cotton, (c) HMX covered with plastic, and (d) plastic at terahertz frequencies.
As an example, we examine the use of this technique on a mixture containing 5% L-tartaric acid and 5% sucrose within a polytetrafluoroethylene (PTFE) pellet (LTA5+Sucrose5). Figure 3 shows the Fourier spectra of signals from LTA5+Sucrose5 transmitted through the pellet and of pure PTFE, both measured over a long time interval (−10≤t≤ 390ps). The spectra are quite similar. A few differences appear only at ν> 1THz. Specifically, we see two local minima at ν = 1.1 and 1.8THz in Figure 3(a) that do not appear in Figure 3(b). Note that if we apply the autocorrelation function to calculate the spectra, these differences disappear.




Figure 3. Fourier spectra of (a) 5% L-tartaric acid and 5% sucrose within a polytetrafluoroethylene (PTFE) pellet (LTA5+Sucrose5) and (b) PTFE signals.
In Figure 4, spectrograms for the LTA5+Sucrose5 and PTFE signals are shown for the frequency interval 0.8 <ν< 3.6THz. In Figure 4(a), two dark bands appear, one at the characteristic absorption frequency of L-tartaric acid (ν = 1.1THz) and the other at that of sucrose (ν = 1.8THz). Moreover, other absorption bands at ν = 2.64 and 3.0THz for L-tartaric acid and at ν = 2.56 and 3.4THz for sucrose are also apparent. In Figure 4 (c) and (d), the spectral line dynamics at ν = 1.1 and 1.8THz are depicted for the LTA5+Sucrose5 and PTFE signals. In Figure 4(c), the behavior of the spectral lines confirms that absorption occurs in the LTA+Sucrose5 medium, whereas in Figure 4(d) the behavior is typical of transparency.





Figure 4. Spectrograms of signals from (a) LTA5+Sucrose and (b) PTFE and (c, d) the dynamics of their spectral lines at ν = 1.1, 1.8 THz.
Next, we demonstrate the identification of L-tartaric acid by a reflected terahertz pulse. The signal reflected from a PTFE pellet containing a 10% concentration of L-tartaric acid (LTA_Refl) was measured over long time interval of about 320ps. Figure 5 shows the spectrograms of LTA_Refl and a reference signal over a long time interval of 500 ≤t≤ 820ps. A high-intensity subpulse appears in both spectrograms after the main pulse, and two less intense subpulses are visible before the main pulse. The spectrograms differ during the main pulse: a dark absorption band occurs at ν =1.2THz in Figure 5(a) but not in Figure 5(b). Moreover, they also differ during the bright subpulse, which is more intense in Figure 5(a) than in Figure 5(b). The evolution of spectral lines at low frequencies (ν = 0.23 and 0.41THz) also appears in Figure 5. We can see very intense re-radiation of the terahertz energy before and after the main pulse action for the LTA_Refl signal in Figure 5(c), whereas in the reference signal in Figure 5(d) the re-radiation is several times less intense.





Figure 5. Spectrograms of the (a) LTA_Refl and (b) reference signals over a long time interval (500 ≤t≤820ps) and (c, d) the dynamics of their spectral lines at ν= 0.23, 0.41THz.
The SDA method is a very effective tool for detecting and identifying substances by using a terahertz pulse reflected from or transmitted through them. It can be very effective for security applications and for remote quality control. To increase the accuracy of identification, we plan to make further simultaneous measurements of a signal over a wide angular range. This would also provide information about a substance's absorption characteristics.

Vyacheslav A. Trofimov, Svetlana A. Varentsova
Lomonosov Moscow State University
Moscow, Russia
Vyacheslav A.Trofimov is the author of 350 scientific papers and many scientific reports at conferences. He is a professor with a doctorate of sciences in physics and math.

References:
1. C. Konek, J. Wilkinson, O. Esenturk, E. Heilweil, M. Kemp, Terahertz spectroscopy of explosives and simulants: RDX, PETN, sugar, and L-tartaric acid, Proc. SPIE 7311, pp. 73110K, 2009. doi:10.1117/12.817913
2. http://www.zomega-terahertz.com Zomega Terahertz Corporation web site.
3. http://www.teraview.com TeraView Corporation web site.
4. http://www.riken.jp Web site for Tera-photonics Laboratory, RIKEN Sendai.
5. Culin Zhang, Kaijun Mu, Xue Jiang, Yueying Jiao, Liangliang Zhang, Qingli Zhou, Yan Zhang, Jingling Shen, Guozhong Zhao, X.-C. Zhang, Identification of explosives and drugs and inspection of material defects with THz radiation, Proc. SPIE 6840, pp. 68400S, 2008. doi:10.1117/12.760133
6. V. A. Trofimov, S. A. Varentsova, New method for analysis of temporal dynamics of medium spectrum under the action of terahertz pulse, Proc. SPIE 6537, pp. 653703, 2007. doi:10.1117/12.753907
7. V. A. Trofimov, S. A. Varentsova, About efficiency of identification of materials using spectrum dynamics of medium response under the action of THz radiation, Proc. SPIE 7311, pp. 73110U, 2009. doi:10.1117/12.818340
8. V. A. Trofimov, S. A. Varentsova, J. Chen, X.-C. Zhang, Identification of explosive media using spectrum dynamics under the action of THz pulse, Proc. SPIE 7486, pp. 74860A, 2009. doi:10.1117/12.830162
9. V. A. Trofimov, S. A. Varentsova, Multichannel system for restoration of signal and for the identification of a medium, Proc. SPIE 7486, pp. 74860M, 2009. doi:10.1117/12.830166
10. V. A. Trofimov, S. A. Varentsova, 2D THz signature for substance identification, Proc. SPIE 7687, pp. 768707, 2010. doi:10.1117/12.849977
11. V. A. Trofimov, S. A. Varentsova, J. Chen, Method of THz spectrum dynamics analysis for identification of compound medium, Proc. SPIE 7671, pp. 76710G, 2010. doi:10.1117/12.849983
12. V. A. Trofimov, S. A. Varentsova, A. Krotkus, G. Molis, Identification of substance in complicated mixture of simulants under the action of THz radiation on the base of SDA (spectral dynamics analysis) method, Proc. SPIE 7838, pp. 78380B, 2010. doi:10.1117/12.864871
13. V. A. Trofimov, S. A. Varentsova, J. Chen, Identification of explosive using the spectrum dynamics of reflected THz and GHz radiation, Proc. SPIE 7837, pp. 78370G, 2010. doi:10.1117/12.864873