Tang Yongxing, Yin Zhaoyang, Chinnam Ajay Kumar, Staples Richard J, Shreeve Jean'ne M
Nanjing University of Science and Technology, Nanjing 210094, China.
Department of Chemistry, University of Idaho, Moscow, Idaho 83844-2343, United States.
Inorg Chem. 2020 Dec 7;59(23):17766-17774. doi: 10.1021/acs.inorgchem.0c03014. Epub 2020 Nov 16.
The triazole moiety with a high heat of formation and a high nitrogen content has been investigated for decades in combination with other nitrogen-rich heterocyclic rings in the field of energetic materials. A novel strategy for the construction of both thermally stable and mechanically insensitive energetic materials using a multi-aminotriazole system is now described. Using this methodology, two series of energetic materials were created on the basis of a duo of triazoles, 5-amino-3-(3,4-diamino-1,2,4-triazol-5-yl)-1-1,2,4-triazole (), and a trio of triazoles, 4,5-di(3,4-diamino-1,2,4-triazol-5-yl)-2-1,2,3-triazole (). Their nitrogen-rich salts were also synthesized. Compound exhibits an excellent onset decomposition temperature ( = 341 °C), which is superior to that of the conventional heat-resistant explosive hexanitrostilbene (HNS) ( = 318 °C). The nitrogen-rich salt 4,5-di(3,4-diamino-1,2,4-triazol-5-yl)-2-1,2,3-triazolium 3,4,5-trinitropyrazol-1-ide () exhibits both remarkable detonation properties and low sensitivities ( = 8715 m s; = 32.6 GPa; IS > 40 J; FS > 360 N), which are superior to those of the traditional explosive LLM-105 ( = 8639 m s; = 31.7 GPa; IS = 20 J; FS = 360 N). Therefore, this methodology of building a multi-aminotriazole system could effectively assist in the design of thermally stable and mechanically insensitive energetic materials in future exploration.
具有高生成热和高氮含量的三唑部分,在含能材料领域已与其他富氮杂环结合研究了数十年。现在描述一种使用多氨基三唑体系构建热稳定且机械不敏感含能材料的新策略。利用该方法,基于两种三唑,即5-氨基-3-(3,4-二氨基-1,2,4-三唑-5-基)-1,2,4-三唑(),以及三种三唑,即4,5-二(3,4-二氨基-1,2,4-三唑-5-基)-2,1,2,3-三唑(),制备了两个系列的含能材料。还合成了它们的富氮盐。化合物表现出优异的起始分解温度(= 341℃),优于传统耐热炸药六硝基芪(HNS)(= 318℃)。富氮盐4,5-二(3,4-二氨基-1,2,4-三唑-5-基)-2,1,2,3-三唑鎓3,4,5-三硝基吡唑-1-化物()兼具显著的爆轰性能和低感度(= 8715 m s;= 32.6 GPa;IS > 40 J;FS > 360 N),优于传统炸药LLM-105(= 8639 m s;= 31.7 GPa;IS = 20 J;FS = 360 N)。因此,这种构建多氨基三唑体系的方法能够在未来探索中有效助力热稳定且机械不敏感含能材料的设计。