Structural, mechanical, electronic, vibrational properties and hydrogen bonding of a novel energetic ionic 5, 5'-dinitroamino-3, 3'-azo-oxadiazole 4, 7-diaminopyridazino [4, 5-c] furoxan salt.

IF 2.1 4区 化学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Yu-Shi Liu, Wen-Shuo Yuan, Qi-Jun Liu, Fu-Sheng Liu, Zheng-Tang Liu
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Abstract

Context and results: The structure, mechanical, electronic, vibration, and hydrogen bonding properties of a novel high-energy and low-sensitivity 5, 5'-dinitroamino-3, 3'-azo-oxadiazole 4, 7-diaminopyridazino [4, 5-c] furoxan salt have been studied by density functional theory. The calculated vibrational properties show that the low-frequency mode is mainly contributed by the vibration of the -NO2 group, and the high-frequency mode is mainly contributed by the vibration of the -NH2 group and the N7-H3 bond which protonates the cation. In addition, it is analyzed that the first bond to break may be the N-NO2 bond. The calculated hydrogen bond properties indicate that the hydrogen bond between water molecules and cations is N7-H3… O5 (1.563 Å), which is the shortest hydrogen bond among all hydrogen bonds. The presence of this exceptionally short hydrogen bond renders the N7-H3 and H6-O5 bonds resistant to disruption at high frequencies, underscoring the pivotal role of hydrogen bonding in stabilizing the structure of energetic materials. Given the absence of experimental and theoretical data on the electronic, mechanical, and vibrational properties of the material thus far, our calculations offer valuable theoretical insights into the ionic salts of high energy and low sensitivity.

Computational methods: All calculations have been carried out based on density functional theory (DFT) and implemented in the CASTEP code. The mode-conserving pseudopotential is utilized to describe the plane wave expansion function, while the PBE functional within the generalized gradient approximation (GGA) is employed to characterize the exchange-correlation interaction. Additionally, dispersion correction is applied using Grimme's DFT-D method.

Abstract Image

新型高能离子 5,5'-二硝基氨基-3,3'-偶氮-恶二唑-4,7-二氨基哒嗪[4,5-c] 呋喃盐的结构、机械、电子、振动特性和氢键。
背景和结果:利用密度泛函理论研究了一种新型高能低敏 5,5'-二硝基氨基-3,3'-偶氮-噁二唑-4,7-二氨基哒嗪并[4,5-c]呋喃盐的结构、力学、电子学、振动和氢键性质。计算的振动特性表明,低频模式主要由 -NO2 基团的振动贡献,高频模式主要由 -NH2 基团和使阳离子质子化的 N7-H3 键的振动贡献。此外,据分析,第一个断裂的键可能是 N-NO2 键。计算得出的氢键性质表明,水分子与阳离子之间的氢键为 N7-H3... O5(1.563 Å),是所有氢键中最短的氢键。这种超短氢键的存在使 N7-H3 和 H6-O5 键在高频下不易被破坏,突出了氢键在稳定高能材料结构中的关键作用。鉴于迄今为止缺乏有关该材料的电子、机械和振动特性的实验和理论数据,我们的计算为高能低敏离子盐提供了宝贵的理论见解:所有计算均基于密度泛函理论(DFT),并在 CASTEP 代码中实现。模守恒伪势用于描述平面波膨胀函数,而广义梯度近似(GGA)中的 PBE 函数则用于描述交换相关相互作用。此外,还使用 Grimme 的 DFT-D 方法进行了色散校正。
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来源期刊
Journal of Molecular Modeling
Journal of Molecular Modeling 化学-化学综合
CiteScore
3.50
自引率
4.50%
发文量
362
审稿时长
2.9 months
期刊介绍: The Journal of Molecular Modeling focuses on "hardcore" modeling, publishing high-quality research and reports. Founded in 1995 as a purely electronic journal, it has adapted its format to include a full-color print edition, and adjusted its aims and scope fit the fast-changing field of molecular modeling, with a particular focus on three-dimensional modeling. Today, the journal covers all aspects of molecular modeling including life science modeling; materials modeling; new methods; and computational chemistry. Topics include computer-aided molecular design; rational drug design, de novo ligand design, receptor modeling and docking; cheminformatics, data analysis, visualization and mining; computational medicinal chemistry; homology modeling; simulation of peptides, DNA and other biopolymers; quantitative structure-activity relationships (QSAR) and ADME-modeling; modeling of biological reaction mechanisms; and combined experimental and computational studies in which calculations play a major role.
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