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Multistep pyrolysis behavior of core-shell type hyperbranched azide copolymer: Kinetics and reaction mechanism via experiment and simulation

机译:核-壳型超支化叠氮化物共聚物的多步热解行为:动力学与反应机理的实验与模拟

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摘要

As an attractive new energetic fuel, core-shell type hyperbranched azide copolymer (POG) have been investigated with regard to its pyrolysis kinetics and mechanism. Through Asymmetric Double Sigmoidal (Asym2sig) function deconvolution, POG pyrolysis profiles could be separated into two reactions well (the first and second step). Based on reasonable kinetics analysis methods, mechanism functions of the first and second step reactions were constructed to n-th order reaction model of f(1)(alpha(1))=(1 - alpha(1)) (1.05) and 3D diffusion model of f(2)(alpha(2))= 1.95(1 - alpha(2))(2/3)[1 - (1 - alpha(2))(1/3)](-0.54). The gaseous products and residual morphology in different pyrolytic steps are identified by TG-FTIR-MS and SEM. Through molecular simulation, the intermediate reactions between the first and second step were successfully captured, and then the detailed pyrolysis mechanism of POG was established. In the initial stage of POG pyrolysis, thermal cracking of -N-3 generates nitrenes and releases N-2 (fitting n-th order model). Next, the intermolecular crosslinking and intramolecular cyclization reactions of nitrenes form a new cross-linked layer on the outside of hyperbranched polyether core of POG (PEHO-c), delaying the decomposition of inner PEHO-c. Furthermore, pyrolysis of cross-linked layer and PEHO-c is gradually performed by 3D diffusion model from outside to inside, which is very suitable for 3D core-shell structure of POG.
机译:作为一种有吸引力的新型高能燃料,已经研究了核-壳型超支化叠氮化物共聚物(POG)的热解动力学和机理。通过非对称双S形(Asym2sig)函数反卷积,可以将POG热解谱很好地分为两个反应(第一步和第二步)。基于合理的动力学分析方法,将第一步和第二步反应的机理函数构建为f(1)(alpha(1))=(1-alpha(1))(1.05)和3D的n级反应模型f(2)(alpha(2))= 1.95(1- alpha(2))(2/3)[1-(1- alpha(2))(1/3)](-0.54)的扩散模型。通过TG-FTIR-MS和SEM鉴定了不同热解步骤中的气态产物和残余形态。通过分子模拟,成功地捕获了第一步和第二步之间的中间反应,从而建立了详细的POG热解机理。在POG热解的初始阶段,-N-3的热裂解会生成腈并释放​​N-2(拟合n阶模型)。接下来,腈的分子间交联和分子内环化反应在POG的超支化聚醚核(PEHO-c)的外侧形成新的交联层,从而延迟了内部PEHO-c的分解。此外,交联层和PEHO-c的热解是通过3D扩散模型从外到内逐步进行的,非常适合POG的3D核-壳结构。

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