Molecular design of aminopolynitroazole-based high-energy materials

被引:0
作者
Vikas D. Ghule
Dharavath Srinivas
Radhakrishnan Sarangapani
Pandurang M. Jadhav
Surya P. Tewari
机构
[1] University of Hyderabad,Advanced Centre of Research in High Energy Materials (ACRHEM)
[2] High Energy Materials Research Laboratory (HEMRL),undefined
来源
Journal of Molecular Modeling | 2012年 / 18卷
关键词
Density functional theory; Nitrogen-rich azoles; Heat of formation; Density; Bond dissociation energy;
D O I
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中图分类号
学科分类号
摘要
The density functional theory (DFT) was employed to calculate the energetic properties of several aminopolynitroazoles. The calculations were performed to study the effect of amino and nitro substituents on the heats of formation, densities, detonation performances, thermal stabilities, and sensitivity characteristics of azoles. DFT-B3LYP, DFT-B3PW91, and MP2 methods utilizing the basis sets 6-31 G* and 6-311 G (2df, 3p) were adopted to predict HOFs via designed isodesmic reactions. All of the designed aminopolynitroazoles had heats of formation of >220 kJ mol−1. The crystal densities of the aminopolynitroazoles were predicted with the cvff force field. All of the energetic azoles had densities of >1.83 g/cm3. The detonation velocities and pressures were evaluated using the Kamlet–Jacobs equations, utilizing the predicted densities and heats of formation. It was found that aminopolynitroazoles have a detonation velocity of about 9.1 km/s and detonation pressure of 36 GPa. The bond dissociation energies for the C–NO2 and N–NO2 bonds were analyzed to investigate the stabilities of the designed molecules. The charge on the nitro group was used to assess impact sensitivity in the present study. The results obtained imply that the designed molecules are stable and are expected to be candidates for high-energy materials (HEMs).
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页码:3013 / 3020
页数:7
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