He Piao, Mei Hao-Zheng, Wu Le, Yang Jun-Qing, Zhang Jian-Guo, Cohen Adva, Gozin Michael
State Key Laboratory of Explosion Science and Technology , Beijing Institute of Technology , Beijing 100081 , P. R. China.
School of Chemistry, Faculty of Exact Science , Tel Aviv University , Tel Aviv , 69978 , Israel.
J Phys Chem A. 2018 Mar 29;122(12):3320-3327. doi: 10.1021/acs.jpca.8b01555. Epub 2018 Mar 15.
The density functional theory method was employed to calculate three-dimensional structures for a series of novel explosophores. The design of new molecules (DA1-DA12) was based on the bridge-ring structures that could be formed via Diels-Alder (DA) reaction of selected nitrogen-rich dienes and tetranitroethylene dienophile. The feasibility of the proposed DA reactions was predicted on the basis of the molecular orbital theory. The strong interactions between the HOMO of dienes, with electron-donating groups (Diene2, Diene6, and Diene8), and the LUMO of tetranitroethylene dienophile suggested thermodynamically favorable formation of the desired DA reaction products. In addition to molecular structures of the explored DA compounds, their physicochemical and energetic properties were also calculated in detail. Due to compact bridge-ring structures, new energetic molecules have highly positive heats of formation (up to 1124.90 kJ·mol) and high densities (up to 2.04 g·cm). Also, as a result of all-right ratios of nitrogen and oxygen, most of the new compounds possess high detonation velocities (8.28-10.02 km·s) and high detonation pressures (30.87-47.83 GPa). Energetic compounds DA1, DA4, and DA12 exhibit a superior detonation performance over widely used HMX explosive, and DA5, DA7, and DA10 could be comparable to the state-of-the-art CL-20 and ONC explosives. Our proposed designs and synthetic methodology should provide a platform for the development of novel energetic materials with superior performance.
采用密度泛函理论方法计算了一系列新型爆炸基团的三维结构。新分子(DA1 - DA12)的设计基于桥环结构,该结构可通过选定的富氮二烯与四硝基乙烯亲双烯体的狄尔斯 - 阿尔德(DA)反应形成。基于分子轨道理论预测了所提出的DA反应的可行性。带有供电子基团的二烯(二烯2、二烯6和二烯8)的最高已占分子轨道(HOMO)与四硝基乙烯亲双烯体的最低未占分子轨道(LUMO)之间的强相互作用表明,所需的DA反应产物在热力学上易于形成。除了所研究的DA化合物的分子结构外,还详细计算了它们的物理化学和能量性质。由于紧凑的桥环结构,新型含能分子具有高度正的生成热(高达1124.90 kJ·mol)和高密度(高达2.04 g·cm)。此外,由于氮和氧的比例合适,大多数新化合物具有高爆速(8.28 - 10.02 km·s)和高爆压(30.87 - 47.83 GPa)。含能化合物DA1、DA4和DA12表现出优于广泛使用的HMX炸药的爆轰性能,而DA5、DA7和DA10可与最先进的CL - 20和ONC炸药相媲美。我们提出的设计和合成方法应为开发具有优异性能的新型含能材料提供一个平台。