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A Study of the Shock Sensitivity of Energetic Single Crystals by Large-Scale Ab Initio Molecular Dynamics Simulations

机译:大规模从头算分子动力学模拟研究高能单晶的冲击敏感性

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摘要

Understanding the reaction initiation of energetic single crystals under external stimuli is a long-term challenge in the field of high energy density materials. Herewith, we developed an ab initio molecular dynamics method based on the multiscale shock technique (MSST) and reported the reaction initiation mechanism by performing large-scale simulations for the sensitive explosive benzotrifuroxan (BTF), insensitive explosive triaminotrinitrobenzene (TATB), four polymorphs of hexanitrohexaazaisowurtzitane (CL-20) pristine crystals and five novel CL-20 cocrystals. A theoretical indicator, tinitiation, the delay of decomposition reaction under shock, was proposed to characterize the shock sensitivity of energetic single crystal, which was proved to be reliable and satisfactorily consistent with experiments. We found that it was the coupling of heat and pressure that drove the shock reaction, wherein the vibrational spectra, the specific heat capacity, as well as the strength of the trigger bonds were the determinants of the shock sensitivity. The intermolecular hydrogen bonds were found to effectively buffer the system from heating, thereby delaying the decomposition reaction and reducing the shock sensitivity of the energetic single crystal. Theoretical rules for synthesizing novel energetic materials with low shock sensitivity were given. Our work is expected to provide a useful reference for the understanding, certifying and adjusting of the shock sensitivity of novel energetic materials.
机译:在高能量密度材料领域,了解高能单晶在外部刺激下的反应引发是一项长期的挑战。因此,我们开发了一种基于多尺度冲击技术(MSST)的从头算分子动力学方法,并通过对敏感爆炸性苯并三呋喃(BTF),不敏感爆炸性三氨基三硝基苯(TATB),四种多晶型物进行了大规模模拟,报道了反应引发机理。六硝基六氮杂异纤锌矿型结构烷烃(CL-20)原始晶体和五个新颖的CL-20共晶体。提出了一种理论指标,即冲击作用下的缩合反应的延迟,即着色作用,来表征高能单晶的冲击敏感性,并被证明是可靠的,并且与实验令人满意。我们发现是热和压力的耦合推动了震动反应,其中振动光谱,比热容以及触发键的强度是震动敏感性的决定因素。发现分子间氢键可有效地缓冲系统免受加热,从而延迟了分解反应并降低了高能单晶的震动敏感性。给出了合成低冲击敏感性新型含能材料的理论规则。我们的工作有望为理解,验证和调整新型高能材料的冲击敏感性提供有用的参考。

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