School of Chemical Engineering, Anhui University of Science and Technology, Huainan, China.
J Mol Model. 2017 Dec 18;24(1):17. doi: 10.1007/s00894-017-3540-4.
To design new high-energy density compounds (HEDCs), a series of new bicyclo[2.2.1]heptane derivatives containing an aza nitrogen atom and nitro substituent were designed and studied theoretically. The density, heat of sublimation and impact sensitivity were estimated by electrostatic potential analysis of the molecular surface. Based on the designed isodesmic reaction, and the reliable heat of formation (HOF) of the reference compounds, HOFs were calculated and compared at B3LYP/6-311G(d,p) and B3P86/6-311G(d,p), respectively. The detonation performances, bond dissociation energies (BDE) and impact sensitivity were calculated to evaluate the designed compounds. The calculated results show that the number of aza nitrogen atoms and NO groups are two important factors for improving HOF, density and detonation properties. Thermal stability generally decreases with increasing nitro groups. And the N-NO bond is the trigger bond for all designed compounds except B8, whose trigger bond is C-NO. Importantly, the BDE values are between 86.95 and 179.71 kJ mol and meet the requirement for HEDCs. Detonation velocity and detonation pressure were found to be 5.77-9.65 km s and 12.30-43.64 GPa, respectively. After comprehensive consideration of thermal stability, impact sensitivity and detonation properties, A7, A8, B8, C8, D7, E7, F7 and G6 may be considered as potential HEDCs. Especially, A8, B8, C8, and D7 have better detonation properties than the famous caged nitramine CL-20 (D = 9.40 km/s, P = 42.00GPa). Besides, all the designed potential HEDCs have reasonable impact sensitivity. Graphical abstract New high-energy density compounds (HEDCs) with low impact sensitivity (A8, B8, C8 and D7 have better detonation properties than CL-20).
为了设计新型高能量密度化合物(HEDC),本文理论设计并研究了一系列新型含氮杂原子和硝基取代基的双环[2.2.1]庚烷衍生物。通过分子表面静电势分析估算了它们的密度、升华热和撞击感度。基于设计的等电子反应和参考化合物可靠的生成焓(HOF),分别在 B3LYP/6-311G(d,p)和 B3P86/6-311G(d,p)水平下计算并比较了 HOF。通过计算爆轰性能、键离解能(BDE)和撞击感度来评估设计化合物。计算结果表明,氮杂原子和 NO 基团的数量是提高 HOF、密度和爆轰性能的两个重要因素。热稳定性通常随硝基数量的增加而降低。并且除 B8 外,所有设计化合物的引发键均为 N-NO 键,B8 的引发键为 C-NO。重要的是,BDE 值在 86.95-179.71 kJ/mol 之间,满足 HEDC 的要求。爆速和爆压分别为 5.77-9.65 km/s 和 12.30-43.64 GPa。综合考虑热稳定性、撞击感度和爆轰性能,A7、A8、B8、C8、D7、E7、F7 和 G6 可能被认为是潜在的 HEDC。特别是 A8、B8、C8 和 D7 的爆轰性能优于著名的笼型硝胺 CL-20(D=9.40 km/s,P=42.00 GPa)。此外,所有设计的潜在 HEDC 都具有合理的撞击感度。