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Molecular design of prismane-based potential energetic materials with high detonation performance and low impact sensitivity

机译:具有高爆震性能和低冲击敏感性的基于三氮烷的潜在含能材料的分子设计

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To develop new energetic materials, the eleven nitroester substitution derivatives of prismane were investigated at the B3LYP/6-311G** level of density functional theory (DFT). The gas phase heats of formation were calculated by isodesmic reactions and the solid-state heats of formation were obtained by the Politzer approach using the heats of sublimation for the designed compounds. The detonation velocities and pressures of all molecules were calculated by Kamlet-Jacobs equations based on molecular density and heat of detonation. The results show that the nitroester group in prismane is helpful for enhancing molecular detonation properties and power index. Among all molecules, 1,2,3,4-tetrnitroesterprismane has excellent detonation properties (detonation pressure = 40.05 GPa, detonation velocity = 9.28 km/s) and large power index value. The molecular stabilities were evaluated by calculating bond dissociation energies and characteristic heights (H-50). The results indicate that the bond dissociation energies of all molecules are above 80 kJ/mol, and all molecules have a larger H-50 value than hexanitrohexaazaisowurtzitane (CL-20, 12 cm). The obtained structure-property relationships may provide basic information for the molecular design of novel high-energy materials. (C) 2015 Academie des sciences. Published by Elsevier Masson SAS. All rights reserved.
机译:为了开发新的高能材料,在密度泛函理论(DFT)的B3LYP / 6-311G **水平研究了十一烷的硝酸酯取代衍生物。通过等渗反应计算了气相的地层热,并使用所设计化合物的升华热,通过Politzer方法获得了固态的地层热。基于分子密度和爆炸热,通过Kamlet-Jacobs方程计算所有分子的爆炸速度和压力。结果表明,三prism烷中的硝基酯基有助于增强分子的爆轰性能和功率指数。在所有分子中,1,2,3,4-四硝基酯基ism庚烷具有优异的起爆性能(起爆压力= 40.05 GPa,起爆速度= 9.28 km / s)和大功率指数值。通过计算键解离能和特征高度(H-50)评估分子稳定性。结果表明,所有分子的键解离能均高于80 kJ / mol,并且所有分子的H-50值均大于六硝基六氮杂异纤锌矿型结构烷烃(CL-20,12 cm)。所获得的结构-性质关系可以为新型高能材料的分子设计提供基础信息。 (C)2015年科学研究院。由Elsevier Masson SAS发布。版权所有。

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