Abstract:
Research and development activities are on in many laboratories to develop methods for detecting energetic materials at the trace level. Production or application of high-energy materials may also contaminate the natural environmental systems. Therefore, development of a simple, portable, and inexpensive device for determining explosives at the trace levels is highly desirable. In this study, a stripping voltammetry technique is used for their analytical determination. The study is conducted in an acetonitrile medium. Optimum conditions are obtained in stripping voltammetry for individual analytes. The stripping voltammetric method is compound-selective and can be used for determining a particular high-energy material in a mixture. In this paper, we report the development of an electro-analytical procedure for detecting conventional energetic materials such as Tetryl, TNT, PETN, RDX, and HMX, using the stripping voltammetric method.
Citation:
H. Gurumallesh Prabu, M. B. Talawar, T. Mukundan, S. N. Asthana, “Studies on the utilization of stripping voltammetry technique in the detection of high-energy materials”, Fizika Goreniya i Vzryva, 47:1 (2011), 99–107; Combustion, Explosion and Shock Waves, 47:1 (2011), 87–95
\Bibitem{GurTalMuk11}
\by H.~Gurumallesh Prabu, M.~B.~Talawar, T.~Mukundan, S.~N.~Asthana
\paper Studies on the utilization of stripping voltammetry technique in the detection of high-energy materials
\jour Fizika Goreniya i Vzryva
\yr 2011
\vol 47
\issue 1
\pages 99--107
\mathnet{http://mi.mathnet.ru/fgv1072}
\elib{https://elibrary.ru/item.asp?id=16232882}
\transl
\jour Combustion, Explosion and Shock Waves
\yr 2011
\vol 47
\issue 1
\pages 87--95
\crossref{https://doi.org/10.1134/S0010508211010126}
Linking options:
https://www.mathnet.ru/eng/fgv1072
https://www.mathnet.ru/eng/fgv/v47/i1/p99
This publication is cited in the following 15 articles:
Vinuta Kamat, N R Bhavya, Boja Poojary, Veerabhadragouda B Patil, Golla Ramesh, M Mahendra, “Emphasized DFT, DNA binding, and electrochemical studies of hybrid 1,3,4-thiadiazole-linked chalcone confined via a sulfur bridge”, J Chem Sci, 136:2 (2024)
Norayr G. Pogosyan, Vladimir K. Shormanov, Lekso L. Kvachakhiya, Vladimir A. Omelchenko, “Trinitroaromatic explosives: Modern application, toxicological characterization, and methods of determination”, Russian Journal of Forensic Medicine, 9:3 (2023), 309
Satish Ashok Ture, Shruthy D. Pattathil, Bertrand Zing Zing, Venkataraman Abbaraju, “Fluorescence Sensing of Some Important Nitroaromatic Compounds by Using Polyaniline Ag Composite”, Micro, 3:1 (2023), 224
Satish Ashok Ture, Shruthy D. Pattathil, Channabasaveshwar V. Yelamaggad, Abbaraju Venkataraman, “Exploring the Fluorescence Quenching of Sodium Dodecyl Sulfate Doped Polyaniline by Energetic Nitrocompounds”, ChemistrySelect, 8:45 (2023)
Satish A. Ture, Shruthy D. Pattathil, Veerabhadragouda B. Patil, Channabasaveshwar V. Yelamaggad, Ramón Martínez-Máñez, Venkataraman Abbaraju, “Synthesis and fluorescence sensing of energetic materials using benzenesulfonic acid-doped polyaniline”, J Mater Sci: Mater Electron, 33:11 (2022), 8551
Cristina Ariño, Craig E. Banks, Andrzej Bobrowski, Robert D. Crapnell, Anastasios Economou, Agnieszka Królicka, Clara Pérez-Ràfols, Dionysios Soulis, Joseph Wang, “Electrochemical stripping analysis”, Nat Rev Methods Primers, 2:1 (2022)
Satish A. Ture, Veerabhadragouda B. Patil, Channabasaveshwar V. Yelamaggad, Ramón Martínez‐Máñez, Venkataraman Abbaraju, “Understanding of mechanistic perspective in sensing of energetic nitro compounds through spectroscopic and electrochemical studies”, J of Applied Polymer Sci, 138:32 (2021)
Veerabhadragouda B. Patil, Mallikarjuna N. Nadagouda, Satish A. Ture, Channabasaveshwara V. Yelamaggad, Venkataraman Abbaraju, “Detection of energetic materials via polyaniline and its different modified forms”, Polymers for Advanced Techs, 32:12 (2021), 4663
Veerabhadragouda B. Patil, Satish A. Ture, Channabasaveshwar V. Yelamaggad, Mallikarjuna N. Nadagouda, Abbaraju Venkataraman, “Turn‐off Fluorescent Sensing of Energetic Materials using Protonic Acid doped Polyaniline: A Spectrochemical Mechanistic Approach”, Zeitschrift anorg allge chemie, 647:4 (2021), 331
Nicolas E. Holubowitch, Cameo Crabtree, Zachary Budimir, “Electroanalysis and Spectroelectrochemistry of Nonaromatic Explosives in Acetonitrile Containing Dissolved Oxygen”, Anal. Chem., 92:17 (2020), 11617
Lakshmidevi Venkatappa, Satish Ashok Ture, Channabasaveshwar V. Yelamaggad, Venkata Narayanan Naranammalpuram Sundaram, Ramón Martínez‐Máñez, Venkataraman Abbaraju, “Mechanistic Insight into the Turn‐Off Sensing of Nitroaromatic Compounds Employing Functionalized Polyaniline”, ChemistrySelect, 5:21 (2020), 6321
Sílvia V.F. Castro, Rafael M. Cardoso, Mário H.P. Santana, Eduardo M. Richter, Rodrigo A.A. Munoz, “Graphite sheet as a novel material for the collection and electrochemical sensing of explosive residues”, Talanta, 203 (2019), 106
Holly A. Yu, David A. DeTata, Simon W. Lewis, Debbie S. Silvester, “Recent developments in the electrochemical detection of explosives: Towards field-deployable devices for forensic science”, TrAC Trends in Analytical Chemistry, 97 (2017), 374
Colin Kang, Junqiao Lee, Debbie S. Silvester, “Electroreduction of 2,4,6-Trinitrotoluene in Room Temperature Ionic Liquids: Evidence of an EC2 Mechanism”, J. Phys. Chem. C, 120:20 (2016), 10997
Rebeca Jimenez-Perez, Mark Baron, LeonieElie, Jose-Gonzalez Rodriguez, “Design of a Virtual Sensor Data Array for the Analysis of RDX, HMX and DMNB Using Metal-Doped Screen Printed Electrodes and Chemometric Analysis”, International Journal of Electrochemical Science, 8:3 (2013), 3279