Pan Yong, Zhu Weihua
School of Chemical Engineering and Materials Science, Nanjing Polytechnic Institute , Nanjing 210048, China.
Institute for Computation in Molecular and Materials Science and Department of Chemistry, Nanjing University of Science and Technology , Nanjing 210094, China.
J Phys Chem A. 2017 Nov 30;121(47):9163-9171. doi: 10.1021/acs.jpca.7b10462. Epub 2017 Nov 20.
We designed four bicyclic nitramines and three cage nitramines by incorporating -N(NO)-CH-N(NO)-, -N(NO)-, and -O- linkages based on the HMX (1,3,5,7-tetranitro-1,3,5,7-tetrazocane) framework. Then, their electronic structure, heats of formation, energetic properties, strain energy, thermal stability, and impact sensitivity were systematically studied using density functional theory (DFT). Compared to the parent compound HMX, all the title compounds have much higher density, better detonation properties, and better oxygen balance. Among them, four compounds have extraordinary high detonation properties (D > 9.70 km/s and P > 44.30 GPa). Moreover, most of the title compounds exhibit better thermal stability and lower impact sensitivity than CL-20 2,4,6,8,10,12-hexanitro-2,4,6,8,10,12-hexaazaisowurtzitane) or HNHAA (hexanitrohexaazaadamantane). Thus, all of the seven new nitramine compounds are promising candidates for high energy density compounds. In particular, five compounds exhibit a best combination of better oxygen balance, good thermal stability, excellent detonation properties superior to or comparable to CL-20 or HNHAA, and lower impact sensitivity than CL-20 or HNHAA. The results indicate that our unusual design strategy that constructing bicyclic or cage nitramines based on the HMX framework by incorporating the intramolecular linkages is very useful for developing novel energetic compounds with excellent detonation performance and low sensitivity.
我们基于HMX(1,3,5,7-四硝基-1,3,5,7-四氮杂环辛烷)骨架,通过引入-N(NO)-CH-N(NO)-、-N(NO)-和-O-键,设计了四种双环硝胺和三种笼状硝胺。然后,使用密度泛函理论(DFT)系统地研究了它们的电子结构、生成热、能量性质、应变能、热稳定性和撞击感度。与母体化合物HMX相比,所有目标化合物都具有更高的密度、更好的爆轰性能和更好的氧平衡。其中,四种化合物具有极高的爆轰性能(D > 9.70 km/s且P > 44.30 GPa)。此外,大多数目标化合物表现出比CL-20(2,4,6,8,10,12-六硝基-2,4,6,8,10,12-六氮杂异伍兹烷)或HNHAA(六硝基六氮杂金刚烷)更好的热稳定性和更低的撞击感度。因此,这七种新型硝胺化合物都是高能密度化合物的有前途的候选物。特别是,五种化合物展现出了更好的氧平衡、良好的热稳定性、优于或与CL-20或HNHAA相当的优异爆轰性能以及比CL-20或HNHAA更低的撞击感度的最佳组合。结果表明,我们通过引入分子内键基于HMX骨架构建双环或笼状硝胺的独特设计策略,对于开发具有优异爆轰性能和低感度的新型含能化合物非常有用。