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含能分子设计策略的理论探索:C或N的官能化以及咪唑或吡唑的结构选择

Theoretical exploration of energetic molecular design strategy: functionalization of C or N and structural selection of imidazole or pyrazole.

作者信息

Chen Qianxiong, Zhu Jin, Jing Suming, Deng Jiahao, Wang Yuanyuan, Li Keyao, Wang Zhineng, Liu Jia, Bian Shuai

机构信息

School of Environment and Safety Engineering, North University of China, Taiyuan, 030051, People's Republic of China.

Hubei Sanjiang Aerospace Jianghe Chemical Technology Co, Ltd , Hubei, 443000, People's Republic of China.

出版信息

J Mol Model. 2024 Oct 24;30(11):384. doi: 10.1007/s00894-024-06183-w.

Abstract

CONTEXT

In researching energetic materials with high energy density, it is an effective method to introduce explosophoric groups. In this study, four series of energetic compounds were designed by functionalizing with C- or N-, introducing energetic groups -CH(NO), -CF(NO), -C(NO)(NF), -C(NO), and-CH(NF) into imidazole and pyrazole structures. Density functional theory was employed to optimize the structure of the target compound and subsequently to predict and evaluate its performance based on this. Meanwhile, the sensitivity of the compounds was predicted based on their electrostatic potential analysis. Following analysis of the geometric structure, detonation performance, and sensitivity of the compounds, three factors were discussed: energetic groups, functionalization methods, and skeleton structure differences. The results indicate that C-functionalization has advantages only in density, but N-functionalization is better in thermal stability, heat of formation, and sensitivity. Meanwhile, the data shows that imidazole-based compounds exhibited greater density and detonation performance in the target compounds designed within this study, while pyrazoles have a higher heat of formation and chemical stability. By analyzing the design strategy of C- or N-functionalization of novel high-energy groups on energetic imidazole or pyrazole rings and selecting a more suitable molecular construction strategy, this study provides a theoretical approach for the development of new energetic materials with excellent performance.

METHOD

Gaussian 09 and Multiwfn 3.8 packages are the software used for calculation, and the electrostatic potentials were depicted using the VMD program. In this study, the imidazole and pyrazole derivatives were optimized at the B3PW91/6-311G (d, p) level to acquire the relevant data for the compounds.

摘要

背景

在研究具有高能量密度的含能材料时,引入爆炸基团是一种有效的方法。在本研究中,通过用碳或氮官能化,将含能基团-CH(NO)、-CF(NO)、-C(NO)(NF)、-C(NO)和-CH(NF)引入咪唑和吡唑结构中,设计了四类含能化合物。采用密度泛函理论对目标化合物的结构进行优化,并在此基础上预测和评估其性能。同时,基于静电势分析对化合物的敏感性进行了预测。在对化合物的几何结构、爆轰性能和敏感性进行分析之后,讨论了三个因素:含能基团、官能化方法和骨架结构差异。结果表明,碳官能化仅在密度方面具有优势,但氮官能化在热稳定性、生成热和敏感性方面表现更好。同时,数据表明,在本研究设计的目标化合物中,基于咪唑的化合物具有更高的密度和爆轰性能,而吡唑具有更高的生成热和化学稳定性。通过分析含能咪唑或吡唑环上新型高能量基团的碳或氮官能化设计策略,并选择更合适的分子构建策略,本研究为开发具有优异性能的新型含能材料提供了一种理论方法。

方法

使用Gaussian 09和Multiwfn 3.8软件包进行计算,并使用VMD程序描绘静电势。在本研究中,咪唑和吡唑衍生物在B3PW91/6-311G(d, p)水平上进行优化,以获取化合物的相关数据。

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