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多氮杂环化合物的联盟:基于新型高能二氧化四嗪-羟基四唑的材料

An Alliance of Polynitrogen Heterocycles: Novel Energetic Tetrazinedioxide-Hydroxytetrazole-Based Materials.

作者信息

Bystrov Dmitry M, Pivkina Alla N, Fershtat Leonid L

机构信息

N. D. Zelinsky Institute of Organic Chemistry, Russian Academy of Sciences 47 Leninsky Prosp., 119991 Moscow, Russia.

N. N. Semenov Federal Research Center for Chemical Physics, Russian Academy of Sciences, 3 Kosygin Str., 119991 Moscow, Russia.

出版信息

Molecules. 2022 Sep 11;27(18):5891. doi: 10.3390/molecules27185891.

Abstract

Energetic materials constitute one of the most important subtypes of functional materials used for various applications. A promising approach for the construction of novel thermally stable high-energy materials is based on an assembly of polynitrogen biheterocyclic scaffolds. Herein, we report on the design and synthesis of a new series of high-nitrogen energetic salts comprising the C-C linked 6-aminotetrazinedioxide and hydroxytetrazole frameworks. Synthesized materials were thoroughly characterized by IR and multinuclear NMR spectroscopy, elemental analysis, single-crystal X-ray diffraction and differential scanning calorimetry. As a result of a vast amount of the formed intra- and intermolecular hydrogen bonds, prepared ammonium and amino-1,2,4-triazolium salts are thermally stable and have good densities of 1.75-1.78 g·cm. All synthesized compounds show high detonation performance, reaching that of benchmark RDX. At the same time, as compared to RDX, investigated salts are less friction sensitive due to the formed net of hydrogen bonds. Overall, reported functional materials represent a novel perspective subclass of secondary explosives and unveil further opportunities for an assembly of biheterocyclic next-generation energetic materials.

摘要

含能材料是用于各种应用的最重要的功能材料亚型之一。构建新型热稳定高能材料的一种有前景的方法是基于多氮双杂环支架的组装。在此,我们报告了一系列新的高氮含能盐的设计与合成,这些盐包含碳 - 碳连接的6 - 氨基四嗪二氧化物和羟基四唑骨架。通过红外光谱、多核核磁共振光谱、元素分析、单晶X射线衍射和差示扫描量热法对合成的材料进行了全面表征。由于形成了大量的分子内和分子间氢键,制备的铵盐和氨基 - 1,2,4 - 三唑鎓盐具有热稳定性,密度良好,为1.75 - 1.78 g·cm 。所有合成化合物均表现出高爆轰性能,达到基准炸药黑索今(RDX)的水平。同时,与RDX相比,由于形成了氢键网络,所研究的盐对摩擦不太敏感。总体而言,所报道的功能材料代表了一类新型的二级炸药子类,并为组装下一代双杂环含能材料揭示了更多机会。

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