Fazl-Ur-Rahman Kashifa, Shanker Govindaswamy, Periyasamy Ganga
Department of Chemistry, Bangalore University, Bangalore, 560 056, Karnataka, India.
J Mol Model. 2024 Dec 9;31(1):14. doi: 10.1007/s00894-024-06235-1.
1,2,4-Oxadiazole serves as a fundamental building block driving advancements across diverse scientific and technological arenas, contributing to the creation of innovative materials for various applications including devices, sensors, medications, agrochemicals, and biomedical instruments. Employing density functional theory (DFT) methods, we investigate the impact of different conformers of an oxadiazole substituted derivative, specifically 3,5-bis[4-(4-methylphenylcarbonyloxy)phenyl]-1,2,4-oxadiazole, in both monomeric and stacked configurations (dimeric and tetrameric). We analyze the electronic structures of various conformers, including assessment of HOMO-LUMO energy gaps, to detect the influence of diverse substituents and stacking arrangements. We have also explored the stability of stacked structure in explicit solvent environment. Additionally, we examine absorption spectra, non-linear optical properties, and electronic circular dichroism to evaluate the potential applications of these molecules in optoelectronic devices. Our calculations showed that all the conformers were thermodynamically stable within an energy difference of 2.64 kcal mol. The study also suggests possible application of the material in optical and electronic devices.
DFT calculations were carried out using the CAM-B3LYP and wB97XD functionals with a 6-31 + G* all-electron basis set, paired with the SCRF/PCM solvation model, implemented in the Gaussian 09 package. Equilibrium structure was achieved by performing NPT and NVT simulations using the Gromacs package.
1,2,4-恶二唑是推动跨多个科技领域发展的基本结构单元,有助于创造用于各种应用的创新材料,包括器件、传感器、药物、农用化学品和生物医学仪器。采用密度泛函理论(DFT)方法,我们研究了恶二唑取代衍生物的不同构象体,特别是3,5-双[4-(4-甲基苯基羰氧基)苯基]-1,2,4-恶二唑,在单体和堆积构型(二聚体和四聚体)中的影响。我们分析了各种构象体的电子结构,包括对最高占据分子轨道-最低未占据分子轨道(HOMO-LUMO)能隙的评估,以检测不同取代基和堆积排列的影响。我们还探索了在明确溶剂环境中堆积结构的稳定性。此外,我们研究了吸收光谱、非线性光学性质和电子圆二色性,以评估这些分子在光电器件中的潜在应用。我们的计算表明,所有构象体在2.64千卡/摩尔的能量差范围内都是热力学稳定的。该研究还表明了该材料在光学和电子器件中的可能应用。
使用CAM-B3LYP和wB97XD泛函以及6-31+G*全电子基组进行DFT计算,并结合高斯09软件包中实现的SCRF/PCM溶剂化模型。通过使用Gromacs软件包进行NPT和NVT模拟来获得平衡结构。