Shen Cheng, Wang Pengcheng, Lu Ming
School of Chemical Engineering, Nanjing University of Science and Technology, Nanjing, 210094, China.
J Mol Model. 2018 Jan 11;24(1):40. doi: 10.1007/s00894-017-3574-7.
In this paper, four series of benzoheterocycle based energetic materials (EMs) have been designed to plan out a strategy to improve the density and safety of EMs, such as combining the insensitive group with aminobenzene ring and the high energetic nitramine explosives, benzo-heterocycle mother ring, designing multi-nitrogen heterocycles with a conjugated system containing N-N and C-N high energy bonds, and hydrogen bonding. Their optimized structure and detonation properties were first calculated and discussed using DFT methods. After calculation, these designed explosives all showed good detonation from 7352 m/s to 8788 m/s. Among them, the compounds with six nitro groups, 1c, 2c, 3c, and 4c, exhibit better performance and rather poor impact sensitivity. However, we found that the compounds with five nitro groups and one amino group have a limited performance reduction and a rapid stability improvement. These four compounds, 1b, 2b, 3b, and 4b, have good detonation performance and better stability. Moreover, the synthesis routes for these four compounds were also designed. The precursor 4-0 and mononitro product 4-1 were successfully synthesized. Their 1H NMR, single crystal, and elemental analysis were also done to verify the structures.
在本文中,设计了四类基于苯并杂环的含能材料(EMs),以规划出一种提高含能材料密度和安全性的策略,例如将钝感基团与氨基苯环和高能硝胺炸药、苯并杂环母环相结合,设计具有包含N-N和C-N高能键的共轭体系的多氮杂环,以及氢键。首先使用密度泛函理论(DFT)方法计算并讨论了它们的优化结构和爆轰性能。计算后,这些设计的炸药爆速均在7352米/秒至8788米/秒之间,表现良好。其中,含六个硝基的化合物1c、2c、3c和4c表现出较好的性能,但撞击感度较差。然而,我们发现含五个硝基和一个氨基的化合物性能降低有限,稳定性迅速提高。这四种化合物1b、2b、3b和4b具有良好的爆轰性能和较好的稳定性。此外,还设计了这四种化合物的合成路线。成功合成了前体4-0和单硝基产物4-1。还对它们进行了¹H NMR、单晶和元素分析以验证结构。