Comparative thermal research on tetraazapentalene-derived heat-resistant energetic structures

Abstract Organic inner salt structures are ideal backbones for heat-resistant energetic materials and systematic studies towards the thermal properties of energetic organic inner salt structures are crucial to their applications. Herein, we report a comparative thermal research of two energetic orga...

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Main Authors: Jing Zhou, Li Ding, Yong Zhu, Bozhou Wang, Xiangzhi Li, Junlin Zhang
Format: Article
Language:English
Published: Nature Publishing Group 2020-12-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-020-78980-1
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spelling doaj-e0d5794bc4984697939f20f68ee3a3a82020-12-13T12:33:29ZengNature Publishing GroupScientific Reports2045-23222020-12-0110111010.1038/s41598-020-78980-1Comparative thermal research on tetraazapentalene-derived heat-resistant energetic structuresJing Zhou0Li Ding1Yong Zhu2Bozhou Wang3Xiangzhi Li4Junlin Zhang5State Key Laboratory of Fluorine and Nitrogen Chemical, Xi’an Modern Chemistry Research InstituteState Key Laboratory of Fluorine and Nitrogen Chemical, Xi’an Modern Chemistry Research InstituteState Key Laboratory of Fluorine and Nitrogen Chemical, Xi’an Modern Chemistry Research InstituteState Key Laboratory of Fluorine and Nitrogen Chemical, Xi’an Modern Chemistry Research InstituteState Key Laboratory of Fluorine and Nitrogen Chemical, Xi’an Modern Chemistry Research InstituteState Key Laboratory of Fluorine and Nitrogen Chemical, Xi’an Modern Chemistry Research InstituteAbstract Organic inner salt structures are ideal backbones for heat-resistant energetic materials and systematic studies towards the thermal properties of energetic organic inner salt structures are crucial to their applications. Herein, we report a comparative thermal research of two energetic organic inner salts with different tetraazapentalene backbones. Detailed thermal decomposition behaviors and kinetics were investigated through differential scanning calorimetry and thermogravimetric analysis (DSC-TG) methods, showing that the thermal stability of the inner salts is higher than most of the traditional heat-resistant energetic materials. Further studies towards the thermal decomposition mechanism were carried out through condensed-phase thermolysis/Fourier-transform infrared (in-situ FTIR) spectroscopy and the combination of differential scanning calorimetry-thermogravimetry-mass spectrometry-Fourier-transform infrared spectroscopy (DSC-TG-MS-FTIR) techniques. The experiment and calculation results prove that the arrangement of the inner salt backbones has great influence on the thermal decompositions of the corresponding energetic materials. The weak N4-N5 bond in “y-” pattern tetraazapentalene backbone lead to early decomposition process and the “z-” pattern tetraazapentalene backbone exhibits more concentrated decomposition behaviors.https://doi.org/10.1038/s41598-020-78980-1
collection DOAJ
language English
format Article
sources DOAJ
author Jing Zhou
Li Ding
Yong Zhu
Bozhou Wang
Xiangzhi Li
Junlin Zhang
spellingShingle Jing Zhou
Li Ding
Yong Zhu
Bozhou Wang
Xiangzhi Li
Junlin Zhang
Comparative thermal research on tetraazapentalene-derived heat-resistant energetic structures
Scientific Reports
author_facet Jing Zhou
Li Ding
Yong Zhu
Bozhou Wang
Xiangzhi Li
Junlin Zhang
author_sort Jing Zhou
title Comparative thermal research on tetraazapentalene-derived heat-resistant energetic structures
title_short Comparative thermal research on tetraazapentalene-derived heat-resistant energetic structures
title_full Comparative thermal research on tetraazapentalene-derived heat-resistant energetic structures
title_fullStr Comparative thermal research on tetraazapentalene-derived heat-resistant energetic structures
title_full_unstemmed Comparative thermal research on tetraazapentalene-derived heat-resistant energetic structures
title_sort comparative thermal research on tetraazapentalene-derived heat-resistant energetic structures
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2020-12-01
description Abstract Organic inner salt structures are ideal backbones for heat-resistant energetic materials and systematic studies towards the thermal properties of energetic organic inner salt structures are crucial to their applications. Herein, we report a comparative thermal research of two energetic organic inner salts with different tetraazapentalene backbones. Detailed thermal decomposition behaviors and kinetics were investigated through differential scanning calorimetry and thermogravimetric analysis (DSC-TG) methods, showing that the thermal stability of the inner salts is higher than most of the traditional heat-resistant energetic materials. Further studies towards the thermal decomposition mechanism were carried out through condensed-phase thermolysis/Fourier-transform infrared (in-situ FTIR) spectroscopy and the combination of differential scanning calorimetry-thermogravimetry-mass spectrometry-Fourier-transform infrared spectroscopy (DSC-TG-MS-FTIR) techniques. The experiment and calculation results prove that the arrangement of the inner salt backbones has great influence on the thermal decompositions of the corresponding energetic materials. The weak N4-N5 bond in “y-” pattern tetraazapentalene backbone lead to early decomposition process and the “z-” pattern tetraazapentalene backbone exhibits more concentrated decomposition behaviors.
url https://doi.org/10.1038/s41598-020-78980-1
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AT yongzhu comparativethermalresearchontetraazapentalenederivedheatresistantenergeticstructures
AT bozhouwang comparativethermalresearchontetraazapentalenederivedheatresistantenergeticstructures
AT xiangzhili comparativethermalresearchontetraazapentalenederivedheatresistantenergeticstructures
AT junlinzhang comparativethermalresearchontetraazapentalenederivedheatresistantenergeticstructures
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