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Aminotetryls: Synthesis, spectral characterization, thermal decomposition and explosive properties

机译:胺基三醇:合成、光谱表征、热分解和爆炸特性

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AbstractThis paper describes the synthesis and spectral investigations of two amino derivatives of N‐methyl‐N‐(2,4,6‐trinitrophenyl)nitramine (tetryl). Also discussed are the results from thermal decomposition studies on the three explosives, viz. tetryl, 3‐aminotetryl (3 AT) and 3,5‐diaminotetryl (3,5 DAT) and preliminary work on the explosive properties of the last two compounds. The aminotetryls have been prepared by the amination of the corresponding chlorotetryls. The yield was 87 for 3 AT, but was only 33 for 3,5 DAT, probably due to steric crowding around the benzene nucleus. The mass spectra show interesting differences in the electron impact fragmentation patterns of the three tetryls with the M+ion relative intensities following the order 3,5 DAT>3 AT>tetryl, which could be due to (a) resonance stabilization and (b) hydrogen bonding effects. Evidence for the latter is also found in the infrared spectra of these compounds. Arrhenius kinetic parameters derived from thermal decomposition studies of the three compounds are presented and show that 3,5 DAT is thermally less stable than 3 AT. Explosive sensitiveness tests indicate that the diamino compound is the most sensitive, the trend being 3,5 DAT>3 AT>tetryl. This is contrary to the generally found desensitizing influence of NH2groups on the thermal stability and explosive sensitiveness of trinitroaromatic energetic molecules. Mechanisms to account for the observed thermal decomposition behaviour and explosive sensitiveness patterns ar
机译:摘要介绍了N-甲基-N-(2,4,6-三硝基苯基)硝胺(四甲基)的两种氨基衍生物的合成及光谱研究。还讨论了对三种炸药的热分解研究结果,即四苯丙胺、3-氨基三醇(3 AT)和3,5-二胺三烯基(3,5 DAT)以及最后两种化合物爆炸性能的初步工作。酰胺三醇是通过相应的叶绿三醇的胺化制备的。3 AT 的收率为 87%,但 3,5 DAT 的收率仅为 33%,这可能是由于苯核周围的空间拥挤。质谱图显示,M+离子相对强度的3个四聚体的电子冲击碎裂模式存在有趣的差异,其相对强度为3,5 DAT>3 AT>四聚体,这可能是由于(a)共振稳定和(b)氢键效应。后者的证据也存在于这些化合物的红外光谱中。给出了从三种化合物的热分解研究中得出的Arrhenius动力学参数,表明3,5 DAT的热稳定性不如3 AT。爆炸敏感性测试表明,二氨基化合物是最敏感的,趋势是 3,5 DAT>3 AT>tetryl。这与通常发现的NH2基团对三硝基芳香族高能分子的热稳定性和爆炸敏感性的脱敏影响相反。解释观察到的热分解行为和爆炸敏感模式的机制

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