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首页> 外文期刊>Journal of molecular modeling >Prediction of explosive properties of newly synthesized amino nitroguanidine-based energetic complexes via density functional theory
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Prediction of explosive properties of newly synthesized amino nitroguanidine-based energetic complexes via density functional theory

机译:密度函数理论预测新合成氨基硝基胍基能量复合物的爆炸性特性

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摘要

Density functional theory calculations were performed to explore four octahedral energetic complexes including [CoCl2 (ANQ)(2)], [Co (ANQ)(2)(H2O)(2)](2+), [CuCl2 (ANQ)(2)], and [Cu(NO3)(2) (ANQ)(2)], (ANQ = amino nitroguanidine). In this work, an attempt has been made to present useful structural data in order to investigate and predict the explosive properties of these complexes. In this regard, interaction energy (IE), natural bond orbital (NBO), atoms in a molecule (AIM) as well as the three-dimensional Hirshfeld surface analysis and the two-dimensional fingerprint plots, charge transfers, HUMO-LUMO gap, oxygen balance (%OB) amounts, and molecular electrostatic potential (MEP) maps were utilized to assign intermolecular interactions, bond lengths, the nature of metal-ligand bonds, and energies in subject compounds. The results reveal that among the five applied levels of theory, interaction energies obtaining from M06-2X/Def2TZVP were in excellent compliance with the experiments. Additionally, the NMIDLINE HORIZONTAL ELLIPSISO interaction, oxygen balance, density, and HOMO-LUMO gap were the most contributing factors in assigning sensitivity and detonation properties. In general, the sensitivity and detonation properties are increased in the following order: ANQ < complex1 < complex3 < complex2 < complex4.
机译:进行密度函数理论计算以探索四个八面体能量复合物,包括[COCl2(ANQ)(2)],[CO(ANQ)(2)(2)(2)(2)(2+),[CUCL2(ANQ)(2 )]和[Cu(NO 3)(2)(2)(ANQ)(2)],(ANQ =氨基硝基胍)。在这项工作中,已经尝试呈现有用的结构数据,以便研究和预测这些配合物的爆炸性。在这方面,相互作用(IE),天然键(NBO),分子中的原子(AIM)以及三维HIRSHFELD表面分析和二维指纹图,电荷转移,HUMO-LUMO间隙,利用氧平衡(%OB)量和分子静电电位(MEP)地图分配分子间相互作用,粘合长度,金属配体键的性质,以及对象化合物中的能量。结果表明,在五个应用水平的理论中,获得M06-2X / DEF2TZVP获得的相互作用能量与实验相同。此外,Nmidline水平椭圆型相互作用,氧气平衡,密度和同性恋差距是分配敏感性和爆轰性能的最大因素。通常,敏感性和爆轰属性按以下顺序增加:ANQ <复合体1 <复合3 <复合体2 <复合物4。

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