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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Toward reliable characterization of energetic materials: interplay of theory and thermal analysis in the study of the thermal stability of tetranitroacetimidic acid (TNAA)
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Toward reliable characterization of energetic materials: interplay of theory and thermal analysis in the study of the thermal stability of tetranitroacetimidic acid (TNAA)

机译:朝着能量材料的可靠特征:理论的相互作用和热分析研究,在四丙酮酸酸的热稳定性研究中(TNAA)

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摘要

The thermal stability of energetic materials, being of the utmost importance for safety issues, is often considered in terms of kinetics, e.g., the Arrhenius parameters of the decomposition rate constant. The latter, in turn, are commonly determined using conventional thermoanalytical procedures with the use of simple Kissinger or Ozawa methods for kinetic data processing. However, thermal decomposition of energetic materials typically occurs via numerous exo- and endothermal processes including fast parallel reactions, phase transitions, autocatalysis, etc. This leads to numerous drawbacks of simple approaches. In this paper, we proposed a new methodology for characterization of the thermochemistry and thermal stability of melt-cast energetic materials, which is comprised of a complementary set of experimental and theoretical techniques in conjunction with a suitable kinetic model. With the aid of the proposed methodology, we studied in detail a novel green oxidizer, tetranitroacetimidic acid (TNAA). The experimental mass loss kinetics in the melt was perfectly fitted with a model comprised of zero-order reaction (sublimation or evaporation) and first-order thermal decomposition of TNAA with the effective Arrhenius parameters E-a = 41.0 +/- 0.2 kcal mol(-1) and log(A/s(-1)) = 20.2 +/- 0.1. We rationalized the experimental findings on the basis of highly accurate CCSD(T)-F12 quantum chemical calculations. Computations predict that thermolysis of TNAA involves an intricate interplay of multiple decomposition channels of the three tautomers, which are equilibrated via either monomolecular reactions or concerted double hydrogen atom transfer in the H-bonded dimers; the calculated Arrhenius parameters of the effective rate constant coincide well with experiment. Most importantly, calculations provide detailed mechanistic evidence missing in the thermoanalytical experiment and explain formation of the experimentally observed primary products N2O and NO2. Along with the kinetics and mechanism of decomposition, the proposed approach yields accurate thermochemistry and phase change data of TNAA.
机译:能量材料的热稳定性,最重要的是安全问题,通常考虑动力学,例如动力学,例如,分解率恒定的Arrhenius参数。反过来,后者通常使用常规的热分析程序使用简单的基辛格或ozawa方法进行动力学数据处理。然而,高能量材料的热分解通常通过许多外部和吸热过程发生,包括快照并行反应,相转变,自催化等。这导致了简单方法的许多缺点。在本文中,我们提出了一种新的方法,用于表征熔融能量材料的热化学和热稳定性,其包括与合适的动力学模型结合的互补实验和理论技术。借助所提出的方法,我们详细研究了一种新型绿色氧化剂,四丙基丙酮酸(TNAA)。熔体中的实验质量损失动力学完美地配备了由零级反应(升华或蒸发)组成的模型,以及TNAA的一阶热分解,具有有效的Arhenius参数EA = 41.0 +/- 0.2 kcal摩尔(-1 )和日志(a / s(-1))= 20.2 +/- 0.1。我们基于高精度的CCSD(T)-F12量子化学计算来合理化实验结果。计算预测TNAA的热解涉及三个互变异构体的多个分解通道的复杂相互作用,其通过单分子反应或由H键合二聚体中的齐齐齐全的双氢原子转移平衡;有效速率的计算出的Arrhenius参数与实验相一致。最重要的是,计算提供了在热分析实验中缺失的详细机制证据,并解释了实验观察到的初级产品N2O和NO2的形成。随着动力学和分解机制,所提出的方法产生准确的TNAA热化学和相变数据。

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