Ullah Mughal Ehsan, Roufieda Guerroudj Ahlam, Bozkurt Ebru, Naeem Nafeesa, Sadiq Amina, Al-Fahemi Jabir H, Jassas Rabab S, Hussein Essam M, Boukabcha Nourdine, Chouaih Abdelkader, Ahmed Saleh A
Department of Chemistry, University of Gujrat, Gujarat 50700, Pakistan.
Laboratory of Technology and Solid Properties (LTPS), Abdelhamid Ibn Badis University of Mostaganem, 27000 Mostaganem, Algeria.
Spectrochim Acta A Mol Biomol Spectrosc. 2023 Dec 5;302:123130. doi: 10.1016/j.saa.2023.123130. Epub 2023 Jul 11.
This paper reports on a study of the photophysical properties, density functional theory (DFT) calculations, infrared (IR), ultraviolet (UV) and nuclear magnetic resonance (NMR) spectroscopic techniques of a series of aurone compounds. The photophysical properties were investigated using UV absorption and fluorescence spectroscopy in a dimethyl sulfoxide (DMSO) solution. Furthermore, the fluorescence quantum yields of the target compounds (1-24) were also investigated. Remarkably, these compounds revealed high quantum yields (Φ = 0.001-0.729) as compared to the already existing aurones in literature. The DFT calculations were performed to elucidate the electronic structure, energy levels and draw a comparison between experimental and theoretical findings. The simulated properties such as molecular frontier orbitals, the density of states, reactivity descriptors (GCRD), electrostatic potential distribution, transition density matrix, electron localization function (ELF) and localized orbital locator (LOL) have been calculated using DFT. The DFT calculations provided insight into the electronic structure and energy levels of the aurone compounds, while the IR and UV spectroscopy results shed light on their functional groups and electronic transitions, respectively. The results of this study contribute to a better understanding of the photophysical properties of aurone compounds and suggest their potential use in technological applications.
本文报道了一系列橙酮化合物的光物理性质、密度泛函理论(DFT)计算、红外(IR)、紫外(UV)和核磁共振(NMR)光谱技术的研究。在二甲基亚砜(DMSO)溶液中,使用紫外吸收和荧光光谱研究了光物理性质。此外,还研究了目标化合物(1-24)的荧光量子产率。值得注意的是,与文献中已有的橙酮相比,这些化合物显示出高量子产率(Φ = 0.001-0.729)。进行DFT计算以阐明电子结构、能级,并对实验和理论结果进行比较。使用DFT计算了模拟性质,如分子前沿轨道、态密度、反应性描述符(GCRD)、静电势分布、跃迁密度矩阵、电子定位函数(ELF)和定域轨道定位器(LOL)。DFT计算提供了对橙酮化合物电子结构和能级的深入了解,而红外和紫外光谱结果分别揭示了它们的官能团和电子跃迁。这项研究的结果有助于更好地理解橙酮化合物的光物理性质,并表明它们在技术应用中的潜在用途。