Li Yong-Xiang, Chen Shu-Sen, Ren Fu-de
School of Materials Science and Engineering, Beijing Institute of Technology, Beijing, 100081, China,
J Mol Model. 2015 Sep;21(9):245. doi: 10.1007/s00894-015-2790-2. Epub 2015 Aug 29.
Molecular dynamics (MD) methods were employed to study the binding energies and mechanical properties of selected crystal planes of 1,3,5,7-tetranitro-1,3,5,7-tetrazacyclooctane (HMX)/nitroguanidine (NQ) cocrystals at different molecular molar ratios. The densities and detonation velocities of the cocrystals at different molar ratios were estimated. The intermolecular interaction and bond dissociation energy (BDE) of the N-NO2 bond in the HMX:NQ (1:1) complex were calculated using the B3LYP, MP2(full) and M06-2X methods with the 6-311++G(d,p) and 6-311++G(2df,2p) basis sets. The results indicated that the HMX/NQ cocrystal prefers cocrystalizing in a 1:1 molar ratio, and the cocrystallization is dominated by the (0 2 0) and (1 0 0) facets. The K, G, and E values of the ratio of 1:1 are smaller than those of the other ratios, and the 1:1 cocrystal has the best ductility. The N-NO2 bond becomes stronger upon the formation of the intermolecular H-bonding interaction and the sensitivity of HMX decreases in the cocrystal. This sensitivity change in the HMX/NQ cocrystal originates not only from the formation of the intermolecular interaction but also from the increment of the BDE of N-NO2 bond in comparison with isolated HMX. The HMX/NQ (1:1) cocrystal exhibits good detonation performance. Reduced density gradient (RDG) reveals the nature of cocrystallization. Analysis of the surface electrostatic potential further confirmed that the sensitivity decreases in complex (or cocrystal) in comparison with that in isolated HMX.
采用分子动力学(MD)方法研究了1,3,5,7 - 四硝基 - 1,3,5,7 - 四氮杂环辛烷(HMX)/硝基胍(NQ)共晶体在不同分子摩尔比下选定晶面的结合能和力学性能。估算了不同摩尔比共晶体的密度和爆速。使用B3LYP、MP2(全)和M06 - 2X方法以及6 - 311++G(d,p)和6 - 311++G(2df,2p)基组计算了HMX:NQ(1:1)络合物中N - NO₂键的分子间相互作用和键解离能(BDE)。结果表明,HMX/NQ共晶体更倾向于以1:1的摩尔比共结晶,且共结晶以(0 2 0)和(1 0 0)晶面为主导。1:1比例的K、G和E值小于其他比例的值,且1:1共晶体具有最佳的延展性。分子间氢键相互作用形成后,N - NO₂键变强,且共晶体中HMX的感度降低。HMX/NQ共晶体中这种感度变化不仅源于分子间相互作用的形成,还源于与孤立HMX相比N - NO₂键的BDE增加。HMX/NQ(1:1)共晶体表现出良好的爆轰性能。密度降低梯度(RDG)揭示了共结晶的本质。表面静电势分析进一步证实,与孤立HMX相比,络合物(或共晶体)中的感度降低。