首页> 外文期刊>Spectrochimica acta, Part A. Molecular and biomolecular spectroscopy >Spectroscopic (FT-IR, FT-Raman, and UV-visible) and quantum chemical studies on molecular geometry, Frontier molecular orbitals, NBO, NLO and thermodynamic properties of 1-acetylindole
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Spectroscopic (FT-IR, FT-Raman, and UV-visible) and quantum chemical studies on molecular geometry, Frontier molecular orbitals, NBO, NLO and thermodynamic properties of 1-acetylindole

机译:1-乙酰吲哚的分子几何学,前沿分子轨道,NBO,NLO和热力学性质的光谱学(FT-IR,FT-Raman和UV-可见)和量子化学研究

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摘要

Quantum chemical calculations of ground state energy, geometrical structure and vibrational wavenumbers of 1-acetylindole were carried out using density functional (DFT/B3LYP) method with 6-311++G(d,p) basis set. The FT-IR and FT-Raman spectra were recorded in the condensed state. The fundamental vibrational wavenumbers were calculated and a good correlation between experimental and scaled calculated wavenumbers has been accomplished. Electric dipole moment, polarizability and first static hyperpolarizability values of 1-acetylindole have been calculated at the same level of theory and basis set. The results show that the 1-acetylindole molecule possesses nonlinear optical (NLO) behavior with non-zero values. Stability of the molecule arising from hyper-conjugative interactions and charge delocalization has been analyzed using natural bond orbital (NBO) analysis. UV-Visible spectrum of the molecule was recorded in the region 200-500 nm and the electronic properties like HOMO and LUMO energies and composition were obtained using TD-DFT method. The calculated energies and oscillator strengths are in good correspondence with the experimental data. The thermodynamic properties of the compound under investigation were calculated at different temperatures.
机译:使用密度泛函(DFT / B3LYP)方法并以6-311 ++ G(d,p)为基础进行了1-乙酰吲哚基态能量,几何结构和振动波数的量子化学计算。 FT-IR和FT-拉曼光谱在凝聚态下记录。计算了基本的振动波数,并且在实验和按比例计算的波数之间已经实现了良好的相关性。 1-乙酰吲哚的电偶极矩,极化率和第一静态超极化率值已在相同的理论和基础水平下进行了计算。结果表明1-乙酰吲哚分子具有非零值的非线性光学(NLO)行为。已经使用自然键轨道(NBO)分析了超共轭相互作用和电荷离域引起的分子稳定性。在200-500 nm范围内记录该分子的UV-可见光谱,并使用TD-DFT方法获得电子特性(如HOMO和LUMO能量和组成)。计算出的能量和振荡器强度与实验数据非常吻合。在不同温度下计算了所研究化合物的热力学性质。

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