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Quantum-chemical Investigation of Substituted s-Tetrazine Derivatives as Energetic Materials

机译:取代的s-四嗪衍生物作为含能材料的量子化学研究

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s-Tetrazine is the essential candidate of many energetic compounds due to its high nitrogen content, enthalpy of formation and thermal stability. The present study explores the design of s-tetrazine derivatives in which different -NO2, -NH2 and -N3 substituted azoles are attached to the tetrazine ring via C-N linkage. The density functional theory (DFT) is used to predict the geometries, heats of formation (HOFs) and other energetic properties. The predicted results show that azide group plays a very important role in increasing HOF values of the s-tetrazine derivatives. The densities for designed molecules were predicted by using the crystal packing calculations. The introduction of -NO2 group improves the density as compared to -N3, and -NH2 groups and hence the detonation performance. Bond dissociation energy analysis and insensitivity correlations revealed that amino derivatives are better candidates considering insensitivity and stability.
机译:s-四嗪因其高氮含量,形成焓和热稳定性而成为许多高能化合物的必要候选者。本研究探索了s-四嗪衍生物的设计,其中不同的-NO2,-NH2和-N3取代的唑通过C-N键连接到四嗪环上。密度泛函理论(DFT)用于预测几何形状,地层热(HOF)和其他高能性质。预测结果表明,叠氮化物基团在增加s-四嗪衍生物的HOF值中起非常重要的作用。通过使用晶体堆积计算来预测设计分子的密度。与-N3和-NH2基团相比,引入-NO2基团可提高密度,从而提高爆震性能。键解离能分析和不敏感性相关性表明,考虑到不敏感性和稳定性,氨基衍生物是更好的候选者。

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