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基于分子动力学模拟的CL-20/DNDAP共晶体与复合材料的结构、敏感性及力学性能对比研究

Comparative studies on structure, sensitivity and mechanical properties of CL-20/DNDAP cocrystal and composite by molecular dynamics simulation.

作者信息

Duan Binghui, Shu Yuanjie, Liu Ning, Lu Yingying, Wang Bozhou, Lu Xianming, Zhang Jiaoqiang

机构信息

Xi'an Modern Chemistry Research Institute Xi'an 710065 People's Republic of China

State Key Laboratory of Fluorine & Nitrogen Chemicals Xi'an 710065 People's Republic of China.

出版信息

RSC Adv. 2018 Oct 9;8(60):34690-34698. doi: 10.1039/c8ra07387b. eCollection 2018 Oct 4.

Abstract

Molecular dynamics simulation was performed on 2,4,6,8,10,12-hexanitro-2,4,6,8,10,12-hexaazaisowurtzitane (CL-20), 2,4-dinitro-2,4-diazapentane (DNDAP), and CL-20/DNDAP cocrystal and composite under COMPASS force field at different temperatures. The binding energy ( ), radial distribution function (RDF), trigger bond length, cohesive energy density (CED) and mechanical properties were studied and compared. The results show that the binding energy of the cocrystal is evidently higher than that of the composite at the same temperature. RDF analysis reveals that hydrogen bonds and vdW forces between CL-20 and DNDAP exist in both CL-20/DNDAP cocrystal and composite, and the interactions in the cocrystal are stronger than those in the composite. The maximum trigger bond length decreases in the order ε-CL-20 > CL-20/DNDAP composite > CL-20/DNDAP cocrystal. Moreover, the rigidity and stiffness of the cocrystal and composite decrease compared to that of CL-20, while the ductility and elasticity are better than that of the two pure components. These results demonstrate that CL-20/DNDAP cocrystal might be very promising in explosive applications.

摘要

在COMPASS力场下,于不同温度对2,4,6,8,10,12-六硝基-2,4,6,8,10,12-六氮杂异伍兹烷(CL-20)、2,4-二硝基-2,4-二氮杂戊烷(DNDAP)以及CL-20/DNDAP共晶体和复合材料进行了分子动力学模拟。研究并比较了结合能( )、径向分布函数(RDF)、引发键长度、内聚能密度(CED)和力学性能。结果表明,在相同温度下,共晶体的结合能明显高于复合材料。RDF分析表明,CL-20/DNDAP共晶体和复合材料中均存在CL-20与DNDAP之间的氢键和范德华力,且共晶体中的相互作用强于复合材料中的相互作用。最大引发键长度按ε-CL-20 > CL-20/DNDAP复合材料 > CL-20/DNDAP共晶体的顺序减小。此外,与CL-20相比,共晶体和复合材料的刚性和硬度降低,而延展性和弹性优于两种纯组分。这些结果表明,CL-20/DNDAP共晶体在爆炸应用中可能非常有前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/083b/9087360/1a224f92a1d5/c8ra07387b-f1.jpg

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