首页> 外文期刊>Acta crystallographica. Section C, Structural chemistry. >Synthesis, crystal structure and thermal properties of an unsymmetrical 1,2,4,5‐tetrazine energetic derivative
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Synthesis, crystal structure and thermal properties of an unsymmetrical 1,2,4,5‐tetrazine energetic derivative

机译:非对称1,2,4,5-四嗪能量衍生物的合成,晶体结构和热性能

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摘要

A new unsymmetrical s‐tetrazine derivative, namely 4‐({2‐[6‐(3,5‐dimethyl‐1 H ‐pyrazol‐1‐yl)‐1,2,4,5‐tetrazin‐3‐yl]hydrazin‐1‐ylidene}methyl)phenol (DPHM), C 14 H 14 N 8 O, was synthesized based on 3‐(3,5‐dimethylpyrazol‐1‐yl)‐6‐hydrazinyl‐s‐tetrazine (DPHT). The structure was characterized by elemental analysis and single‐crystal X‐ray diffraction. Crystal structure determination shows that DPHM crystallizes in the monoclinic P 2 1 / c space group with high coplanarity and a zigzag layered structure. In addition, its thermal behaviour was investigated by DSC and TG–DTG methods. The thermal safety of DPHM was evaluated by self‐accelerating decomposition temperature ( T SADT ), critical temperature of thermal explosion ( T b ), entropy of activation (Δ S ), enthalpy of activation (Δ H ) and free energy of activation (Δ G ). Meanwhile, the kinetic parameters and specific heat capacity of DPHM were also determined. The results show that DPHM has better stability and detonation properties than 3‐(2‐benzylidenehydrazin‐1‐yl)‐6‐(3,5‐dimethylpyrazol‐1‐yl)‐s‐tetrazine (DAHBTz), due to the introduction of a hydroxy group, which increases the number of hydrogen‐bond interactions and improves the stability and density of DPHM. This study demonstrates that the performance of an explosive can be optimized through structural modification.
机译:一种新的非对称的S-四嗪衍生物,即4 - ({2- [6-(3,5-二甲基-1h-Pylazol-1-基)-1,2,4,5-四嗪-3-基-3-基]肼基于3-(3,5-二甲基吡唑-1-基)-6-肼基-4-四嗪(DPHT)合成-1- ylidene}甲基)苯酚(DPHM),C 14H 14 N 8 O.该结构的特征在于元素分析和单晶X射线衍射。晶体结构测定表明,DPHM在具有高共面的单斜晶型P 2 1 / C空间组中结晶和Z字形分层结构。此外,通过DSC和TG-DTG方法研究其热行为。通过自我加速分解温度(T SADT),热爆炸(T B)的临界温度,激活熵(δS),激活焓(δh)和活化的自由能量(δ)来评估Dphm的热安全性。 G )。同时,也确定了动力学参数和特异性的DPHM热容量。结果表明,由于引入羟基增加氢键相互作用的数量,提高DPHM的稳定性和密度。本研究表明,可以通过结构修改优化爆炸性的性能。

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