Department of Physics, Madras Christian College, East Tambaram 600059, Tamil Nadu, India.
Department of Physics, Arignar Anna Govt. Arts College, Cheyyar 604407, Tamil Nadu, India.
Spectrochim Acta A Mol Biomol Spectrosc. 2019 Nov 5;222:117185. doi: 10.1016/j.saa.2019.117185. Epub 2019 May 31.
Density functional theory is one of the most popular accepted computational quantum mechanical techniques used in the analysis of molecular structure and vibrational spectra. Experimental and theoretical investigations of the molecular structure, electronic and vibrational characteristics of 4-[2-(Dipropylamino) ethyl]-1,3-dihydro-2H-indol-2-one are presented in this work. The title compound was characterized using FT-IR, FT-Raman and UV-Vis spectroscopic techniques. The results were compared with the theoretical calculations obtained using DFT/B3LYP with 6-311++G(d,p) as basis sets and was found to be in good agreement. The complete optimization of the molecular geometry of the title compound was carried out. Further, the vibrational assignments and calculation of potential energy distribution (PED) were reported. NLO has emerged as a key factor in recent researches. Materials showing nonlinear optical properties form the basis of nonlinear optics and development of such materials plays an important role in the present scenario. The current work provides sufficient justification for the title compound to be selected as a good non-linear optical (NLO) candidate. The electronic properties were reported using TD-DFT approach. The HOMO (EHOMO = -5.96 eV), LUMO (ELUMO = -0.80 eV) energies, energy gap and electrophilicity (2.22) was calculated in order to understand the stability, reactivity and bioactivity of the compound under investigation. To comprehend the bonding interactions we have performed the total (TDOS), partial (PDOS) and overlap population or COOP (Crystal Orbital Overlap Population) density of states. The drug likeness values were analyzed to evaluate the potential of the title compound to be an active pharmaceutical component. As a positive proof the paper further explains the molecular docking studies of the said compound. In addition, the stereochemistry of the protein structure was checked using Ramachandran plot. The title compound is a directly acting dopamine D2 agonist. In order to establish relationship between molecular descriptors of compound and its biological activity, QSAR studies have been done within the framework of DFT for 10 dopamine agonist including the title compound. Hence, the research exploration provides requisite information pertaining to the geometry, stability, reactivity and bioactivity of the compound through spectroscopic and quantum chemical methods.
密度泛函理论是分析分子结构和振动光谱时最常用的一种被广泛接受的计算量子力学技术。本文对 4-[2-(二丙基氨基)乙基]-1,3-二氢-2H-吲哚-2-酮的分子结构、电子和振动特性进行了实验和理论研究。该标题化合物使用 FT-IR、FT-Raman 和 UV-Vis 光谱技术进行了表征。结果与使用 DFT/B3LYP 结合 6-311++G(d,p)基组获得的理论计算进行了比较,发现两者吻合较好。对标题化合物的分子几何形状进行了完全优化。此外,还报道了振动分配和势能分布(PED)的计算。非线性光学(NLO)已成为近期研究的关键因素。具有非线性光学性能的材料构成了非线性光学的基础,而开发此类材料在当前情况下起着重要作用。本工作为选择标题化合物作为良好的非线性光学(NLO)候选物提供了充分的依据。使用 TD-DFT 方法报告了电子性质。计算了 HOMO(EHOMO=-5.96 eV)、LUMO(ELUMO=-0.80 eV)能量、能隙和电亲性(2.22),以了解研究化合物的稳定性、反应性和生物活性。为了理解键合相互作用,我们进行了总(TDOS)、部分(PDOS)和重叠人口或 COOP(晶体轨道重叠人口)密度状态。分析药物相似性值以评估标题化合物作为活性药物成分的潜力。作为一个积极的证明,本文进一步解释了该化合物的分子对接研究。此外,使用 Ramachandran 图检查了蛋白质结构的立体化学。标题化合物是一种直接作用的多巴胺 D2 激动剂。为了在 DFT 框架内建立化合物的分子描述符与其生物活性之间的关系,对包括标题化合物在内的 10 种多巴胺激动剂进行了 QSAR 研究。因此,研究探索通过光谱和量子化学方法提供了与化合物的几何形状、稳定性、反应性和生物活性相关的必要信息。