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1,7-二氨基-1,7-二硝基亚氨基-2,4,6-三硝基-2,4,6-三氮杂庚烷高能含氮衍生物的理论设计。

Theoretical design of energetic nitrogen-rich derivatives of 1,7-diamino-1,7-dinitrimino-2,4,6-trinitro-2,4,6-triazaheptane.

机构信息

Institute for Computation in Molecular and Materials Science and Department of Chemistry, Nanjing University of Science and Technology, Nanjing 210094, China.

出版信息

J Mol Model. 2013 Aug;19(8):2945-54. doi: 10.1007/s00894-013-1825-9. Epub 2013 Apr 5.

Abstract

The heats of formation (HOFs), energetic properties, and thermal stability of a series of 1,7-diamino-1,7-dinitrimino-2,4,6-trinitro-2,4,6-triazaheptane derivatives with different substituents, different numbers of substituents, and different original chains are found by using the DFT-B3LYP method. The results show that -NO2 or -NH2 is an effective substituent for increasing the gas-phase HOFs of the title compounds, especially -NO2 group. As the numbers of substitutents increase, their HOFs enhance obviously. Increasing the length of original chain is helpful for improving their HOFs. The substitution of -NO2 is useful for enhancing their detonation performances and the effects of the length of original chains on detonation properties are coupled with those of the substituents. An analysis of the BDE of the weakest bonds indicates that the substitution of the -NH2 groups and replacing the -NO2 groups of N-NO2 by the -NH2 groups are favorable for improving their thermal stability, while the substitution of -NO2 and increasing the length of original chain decrease their thermal stability. Considering the detonation performance and thermal stability, seven compounds may be considered as the potential candidates of high energy density compounds.

摘要

采用 DFT-B3LYP 方法研究了一系列具有不同取代基、不同取代基数量和不同原始链的 1,7-二氨基-1,7-二硝基亚氨基-2,4,6-三硝基亚氨基-2,4,6-三氮杂庚烷衍生物的生成热(HOFs)、能量性质和热稳定性。结果表明,-NO2 或-NH2 是增加标题化合物气相 HOFs 的有效取代基,尤其是-NO2 基团。随着取代基数量的增加,它们的 HOFs 明显增强。增加原始链的长度有助于提高它们的 HOFs。-NO2 的取代对提高其爆轰性能是有利的,而原始链长度对爆轰性能的影响与取代基的影响相耦合。对最弱键 BDE 的分析表明,-NH2 基团的取代以及用-NH2 基团取代 N-NO2 上的-NO2 基团有利于提高它们的热稳定性,而-NO2 的取代和原始链长度的增加则降低了它们的热稳定性。考虑到爆轰性能和热稳定性,七种化合物可能被认为是高能密度化合物的潜在候选物。

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