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Thermochemistry, Tautomerism, and Thermal Stability of 5,7-Dinitrobenzotriazoles

Nitro derivatives of benzotriazoles are safe energetic materials with remarkable thermal stability. In the present study, we report on the kinetics and mechanism of thermal decomposition for 5,7-dinitrobenzotriazole (DBT) and 4-amino-5,7-dinitrobenzotriazole (ADBT). The pressure differential scannin...

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Autores principales: Melnikov, Igor N., Kiselev, Vitaly G., Dalinger, Igor L., Starosotnikov, Alexey M., Muravyev, Nikita V., Pivkina, Alla N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10049112/
https://www.ncbi.nlm.nih.gov/pubmed/36982405
http://dx.doi.org/10.3390/ijms24065330
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author Melnikov, Igor N.
Kiselev, Vitaly G.
Dalinger, Igor L.
Starosotnikov, Alexey M.
Muravyev, Nikita V.
Pivkina, Alla N.
author_facet Melnikov, Igor N.
Kiselev, Vitaly G.
Dalinger, Igor L.
Starosotnikov, Alexey M.
Muravyev, Nikita V.
Pivkina, Alla N.
author_sort Melnikov, Igor N.
collection PubMed
description Nitro derivatives of benzotriazoles are safe energetic materials with remarkable thermal stability. In the present study, we report on the kinetics and mechanism of thermal decomposition for 5,7-dinitrobenzotriazole (DBT) and 4-amino-5,7-dinitrobenzotriazole (ADBT). The pressure differential scanning calorimetry was employed to study the decomposition kinetics of DBT experimentally because the measurements under atmospheric pressure are disturbed by competing evaporation. The thermolysis of DBT in the melt is described by a kinetic scheme with two global reactions. The first stage is a strong autocatalytic process that includes the first-order reaction (E(a1)(I) = 173.9 ± 0.9 kJ mol(−1), log(A(1)(I)/s(−)(1)) = 12.82 ± 0.09) and the catalytic reaction of the second order with E(a2)(I) = 136.5 ± 0.8 kJ mol(−1), log(A(2)(I)/s(−)(1)) = 11.04 ± 0.07. The experimental study was complemented by predictive quantum chemical calculations (DLPNO-CCSD(T)). The calculations reveal that the 1H tautomer is the most energetically preferable form for both DBT and ADBT. Theory suggests the same decomposition mechanisms for DBT and ADBT, with the most favorable channels being nitro-nitrite isomerization and C–NO(2) bond cleavage. The former channel has lower activation barriers (267 and 276 kJ mol(−1) for DBT and ADBT, respectively) and dominates at lower temperatures. At the same time, due to the higher preexponential factor, the radical bond cleavage, with reaction enthalpies of 298 and 320 kJ mol(−1), dominates in the experimental temperature range for both DBT and ADBT. In line with the theoretical predictions of C–NO(2) bond energies, ADBT is more thermally stable than DBT. We also determined a reliable and mutually consistent set of thermochemical values for DBT and ADBT by combining the theoretically calculated (W1-F12 multilevel procedure) gas-phase enthalpies of formation and experimentally measured sublimation enthalpies.
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spelling pubmed-100491122023-03-29 Thermochemistry, Tautomerism, and Thermal Stability of 5,7-Dinitrobenzotriazoles Melnikov, Igor N. Kiselev, Vitaly G. Dalinger, Igor L. Starosotnikov, Alexey M. Muravyev, Nikita V. Pivkina, Alla N. Int J Mol Sci Article Nitro derivatives of benzotriazoles are safe energetic materials with remarkable thermal stability. In the present study, we report on the kinetics and mechanism of thermal decomposition for 5,7-dinitrobenzotriazole (DBT) and 4-amino-5,7-dinitrobenzotriazole (ADBT). The pressure differential scanning calorimetry was employed to study the decomposition kinetics of DBT experimentally because the measurements under atmospheric pressure are disturbed by competing evaporation. The thermolysis of DBT in the melt is described by a kinetic scheme with two global reactions. The first stage is a strong autocatalytic process that includes the first-order reaction (E(a1)(I) = 173.9 ± 0.9 kJ mol(−1), log(A(1)(I)/s(−)(1)) = 12.82 ± 0.09) and the catalytic reaction of the second order with E(a2)(I) = 136.5 ± 0.8 kJ mol(−1), log(A(2)(I)/s(−)(1)) = 11.04 ± 0.07. The experimental study was complemented by predictive quantum chemical calculations (DLPNO-CCSD(T)). The calculations reveal that the 1H tautomer is the most energetically preferable form for both DBT and ADBT. Theory suggests the same decomposition mechanisms for DBT and ADBT, with the most favorable channels being nitro-nitrite isomerization and C–NO(2) bond cleavage. The former channel has lower activation barriers (267 and 276 kJ mol(−1) for DBT and ADBT, respectively) and dominates at lower temperatures. At the same time, due to the higher preexponential factor, the radical bond cleavage, with reaction enthalpies of 298 and 320 kJ mol(−1), dominates in the experimental temperature range for both DBT and ADBT. In line with the theoretical predictions of C–NO(2) bond energies, ADBT is more thermally stable than DBT. We also determined a reliable and mutually consistent set of thermochemical values for DBT and ADBT by combining the theoretically calculated (W1-F12 multilevel procedure) gas-phase enthalpies of formation and experimentally measured sublimation enthalpies. MDPI 2023-03-10 /pmc/articles/PMC10049112/ /pubmed/36982405 http://dx.doi.org/10.3390/ijms24065330 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Melnikov, Igor N.
Kiselev, Vitaly G.
Dalinger, Igor L.
Starosotnikov, Alexey M.
Muravyev, Nikita V.
Pivkina, Alla N.
Thermochemistry, Tautomerism, and Thermal Stability of 5,7-Dinitrobenzotriazoles
title Thermochemistry, Tautomerism, and Thermal Stability of 5,7-Dinitrobenzotriazoles
title_full Thermochemistry, Tautomerism, and Thermal Stability of 5,7-Dinitrobenzotriazoles
title_fullStr Thermochemistry, Tautomerism, and Thermal Stability of 5,7-Dinitrobenzotriazoles
title_full_unstemmed Thermochemistry, Tautomerism, and Thermal Stability of 5,7-Dinitrobenzotriazoles
title_short Thermochemistry, Tautomerism, and Thermal Stability of 5,7-Dinitrobenzotriazoles
title_sort thermochemistry, tautomerism, and thermal stability of 5,7-dinitrobenzotriazoles
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10049112/
https://www.ncbi.nlm.nih.gov/pubmed/36982405
http://dx.doi.org/10.3390/ijms24065330
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