电场调控下三唑类衍生物的电子结构及分子响应机理研究。

IF 2.5 4区 化学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Mengjie Bo, Zikai Gao, Zhihui Gu, Peng Ma
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引用次数: 0

摘要

本文选取了三种优良的含能材料:[4,4'- bi - 4h -1,2,4-三唑]-3,3'-二胺(1);5 h - 2 4-triazolo [4 3 b][1、2、4]triazole-3 6-diamine (2);和4,4'-(1E)-1,2-二氮二基双[4h -1,2,4-三唑-3-胺](3)。使用密度泛函理论来研究分子结构、表面静电势、分子前沿轨道和态密度。x轴EEF增强1和3,减弱2;y轴EEF对2有增强作用,对1和3有减弱作用。在X/ z轴EEF作用下,极面面积增大,y轴略有减小;2在z轴强电场前半部分形成均匀负电位区;x轴极面面积增大,Y/ z轴极面面积明显减小。EEF重构了HOMO/LUMO的空间分布,减小了能隙,显著提高了反应活性。综上所述,EEF可以通过方向和强度的协同效应,精确调节含能材料的键稳定性、表面电荷分布和电子激发特性,为含能材料的安全储存、运输和主动设计提供理论依据。方法:采用密度泛函理论,采用B3LYP/6-311 + G(d,p)方法进行结构优化。优化收敛后,确保没有虚频率,以获得稳定的结构。使用Multiwfn 3.8和VMD 1.9.3进行波函数分析。EEF强度范围为0 ~ 0.02 a.u,生长梯度为0.005 a.u。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Study on the electronic structure and molecular response mechanism of triazole derivatives under electric field regulation.

Context: This article selects three excellent energetic materials: [4,4'-Bi-4H-1,2,4-triazole]-3,3'-diamine (1); 5H-1,2,4-triazolo [4,3-b] [1,2,4] triazole-3,6-diamine (2); and 4,4'-(1E)-1,2-diazenediylbis [4H-1,2,4-triazol-3-amine] (3). Use density functional theory to study molecular structure, surface electrostatic potential, molecular frontier orbitals, and density of states. The X-axis EEF is enhanced by 1 and 3, but weakened by 2; the Y-axis EEF has an enhancing effect on 2, but weakens 1 and 3. Under the X/Z-axis EEF, the polar surface area expands and the Y-axis slightly decreases; 2 forms a uniform negative potential region in the first half of the Z-axis strong electric field; the polar surface area of X-axis increases, while the Y/Z-axis significantly decreases. The EEF reconstructs the HOMO/LUMO spatial distribution and reduces the energy gap, significantly enhancing reaction activity. In summary, the EEF can precisely regulate the bond stability, surface charge distribution, and electronic excitation characteristics of energetic materials through the synergistic effect of direction and intensity, providing a theoretical basis for the safe storage, transportation, and active design of energetic materials.

Methods: Using density functional theory, the B3LYP/6-311 + G(d,p) method was employed for structural optimization. After optimizing convergence, ensure that there are no imaginary frequencies to obtain a stable structure. Wave function analysis was performed using Multiwfn 3.8 and VMD 1.9.3. The EEF strength ranged from 0 to 0.02 a.u., with a growth gradient of 0.005 a.u.

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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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