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Energetic Butterfly: Heat-Resistant Diaminodinitro trans-Bimane

Due to a significant and prolific activity in the field of design and synthesis of new energetic molecules, it becomes increasingly difficult to introduce new explosophore structures with attractive properties. In this work, we synthesized a trans-bimane-based energetic material—3,7-diamino-2,6-dini...

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Autores principales: Zhang, Pengcheng, Kumar, Dheeraj, Zhang, Lei, Shem-Tov, Daniel, Petrutik, Natan, Chinnam, Ajay Kumar, Yao, Chuang, Pang, Siping, Gozin, Michael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6930539/
https://www.ncbi.nlm.nih.gov/pubmed/31779257
http://dx.doi.org/10.3390/molecules24234324
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author Zhang, Pengcheng
Kumar, Dheeraj
Zhang, Lei
Shem-Tov, Daniel
Petrutik, Natan
Chinnam, Ajay Kumar
Yao, Chuang
Pang, Siping
Gozin, Michael
author_facet Zhang, Pengcheng
Kumar, Dheeraj
Zhang, Lei
Shem-Tov, Daniel
Petrutik, Natan
Chinnam, Ajay Kumar
Yao, Chuang
Pang, Siping
Gozin, Michael
author_sort Zhang, Pengcheng
collection PubMed
description Due to a significant and prolific activity in the field of design and synthesis of new energetic molecules, it becomes increasingly difficult to introduce new explosophore structures with attractive properties. In this work, we synthesized a trans-bimane-based energetic material—3,7-diamino-2,6-dinitro-1H,5H-pyrazolo-[1,2-a]pyrazole-1,5-dione (4), the structure of which was comprehensively analyzed by a variety of advanced spectroscopic methods and by X-ray crystallo-graphy (with density of 1.845 g·cm(−3) at 173 K). Although obtained crystals of 4 contained solvent molecules in their structure, state-of-the-art density functional theory (DFT) computational techniques allowed us to predict that solvent-free crystals of this explosive would preserve a similar tightly packed planar layered molecular arrangement, with the same number of molecules of 4 per unit cell, but with a smaller unit cell volume and therefore higher energy density. Explosive 4 was found to be heat resistant, with an onset decomposition temperature of 328.8 °C, and was calculated to exhibit velocity of detonation in a range of 6.88–7.14 km·s(−1) and detonation pressure in the range of 19.14–22.04 GPa, using for comparison both HASEM and the EXPLO 5 software. Our results indicate that the trans-bimane explosophore could be a viable platform for the development of new thermostable energetic materials.
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spelling pubmed-69305392019-12-26 Energetic Butterfly: Heat-Resistant Diaminodinitro trans-Bimane Zhang, Pengcheng Kumar, Dheeraj Zhang, Lei Shem-Tov, Daniel Petrutik, Natan Chinnam, Ajay Kumar Yao, Chuang Pang, Siping Gozin, Michael Molecules Article Due to a significant and prolific activity in the field of design and synthesis of new energetic molecules, it becomes increasingly difficult to introduce new explosophore structures with attractive properties. In this work, we synthesized a trans-bimane-based energetic material—3,7-diamino-2,6-dinitro-1H,5H-pyrazolo-[1,2-a]pyrazole-1,5-dione (4), the structure of which was comprehensively analyzed by a variety of advanced spectroscopic methods and by X-ray crystallo-graphy (with density of 1.845 g·cm(−3) at 173 K). Although obtained crystals of 4 contained solvent molecules in their structure, state-of-the-art density functional theory (DFT) computational techniques allowed us to predict that solvent-free crystals of this explosive would preserve a similar tightly packed planar layered molecular arrangement, with the same number of molecules of 4 per unit cell, but with a smaller unit cell volume and therefore higher energy density. Explosive 4 was found to be heat resistant, with an onset decomposition temperature of 328.8 °C, and was calculated to exhibit velocity of detonation in a range of 6.88–7.14 km·s(−1) and detonation pressure in the range of 19.14–22.04 GPa, using for comparison both HASEM and the EXPLO 5 software. Our results indicate that the trans-bimane explosophore could be a viable platform for the development of new thermostable energetic materials. MDPI 2019-11-26 /pmc/articles/PMC6930539/ /pubmed/31779257 http://dx.doi.org/10.3390/molecules24234324 Text en © 2019 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zhang, Pengcheng
Kumar, Dheeraj
Zhang, Lei
Shem-Tov, Daniel
Petrutik, Natan
Chinnam, Ajay Kumar
Yao, Chuang
Pang, Siping
Gozin, Michael
Energetic Butterfly: Heat-Resistant Diaminodinitro trans-Bimane
title Energetic Butterfly: Heat-Resistant Diaminodinitro trans-Bimane
title_full Energetic Butterfly: Heat-Resistant Diaminodinitro trans-Bimane
title_fullStr Energetic Butterfly: Heat-Resistant Diaminodinitro trans-Bimane
title_full_unstemmed Energetic Butterfly: Heat-Resistant Diaminodinitro trans-Bimane
title_short Energetic Butterfly: Heat-Resistant Diaminodinitro trans-Bimane
title_sort energetic butterfly: heat-resistant diaminodinitro trans-bimane
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6930539/
https://www.ncbi.nlm.nih.gov/pubmed/31779257
http://dx.doi.org/10.3390/molecules24234324
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