通过分子静电潜力,磁性,电子移位和基于反应性的指数,六个成员的能化合物的芳香度
Samir Kenouche1, Nassima Bachir1, Wissam Bouchal2
1Group of Modeling of Chemical Systems using Quantum Calculations, Applied Chemistry Laboratory (LCA). University M. Khider of Biskra, 07000 Biskra, Algeria.
Journal of molecular graphics & modelling
|February 27, 2024
概括
分子静电电位 (ESP) 揭示了能量化合物的电子密度耗尽. 基组的接近影响ESP和引爆灵敏度,组合的芳香度指数提供了全面的评估.
科学领域:
- 计算化学是一种计算化学.
- 物理有机化学 有机化学
背景情况:
- 能量化合物通常在环中心呈现电子密度枯竭,形成 π 孔.
- (NO2) 基的空间排列可以影响分子性质和反应性.
研究的目的:
- 为了研究分子静电电位 (ESP) 和酸化合物的芳香度之间的关系.
- 评估各种芳香度指数对它们对结构变化的敏感性和与ESP的相关性.
主要方法:
- 进行了分子静电电位 (ESP) 计算.
- 计算了几个芳香度指数,包括MCI,PDI,PLR,NICSzz(1) 和FLU.
- 分析了ESP值和芳香度指数之间的相关性.
主要成果:
- ESP清楚地揭示了能量化合物的环中心的电子密度耗尽 (π-洞).
- 二氧化组的空间布局显著影响ESP值和爆炸灵敏度.
- 较小的NO2组间距导致单环酸中ESP值下降.
- 芳香度指数与ESP值有很强的相关性,表明对结构变化的敏感性.
- NICSzz(1) 和PLR指数在预测芳香度的微小变化方面表现出特别重要的意义.
结论:
- 随着NO2组的添加,芳香度降低,使环变得不那么芳香.
- 没有单一的芳香度指数是足够的;标准的组合提供了更完整的描述.
- 电子感知是了解能量材料中的电子性质和反应性的一个有价值的工具.
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