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首页> 外文期刊>Spectrochimica acta, Part A. Molecular and biomolecular spectroscopy >Vibrational spectroscopic (FT-IR and FT-Raman) studies, natural bond orbital analysis and molecular electrostatic potential surface of Isoxanthopterin
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Vibrational spectroscopic (FT-IR and FT-Raman) studies, natural bond orbital analysis and molecular electrostatic potential surface of Isoxanthopterin

机译:异黄蝶呤的振动光谱(FT-IR和FT-Raman)研究,天然键轨道分析和分子静电势表面

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摘要

The FTIR and FT-Raman spectra of Isoxanthopterin have been recorded in the region 4000–450 and 4000– 100 cm~(-1), respectively. The optimized geometry, frequency and intensity of the vibrational bands of Isoxanthopterin were obtained by the density functional theory (DFT) using 6-311++G(d,p) basis set. The harmonic vibrational frequencies were scaled and compared with experimental values. The observed and the calculated frequencies are found to be in good agreement. The ~1H and ~(13)C nuclear magnetic resonance chemical shifts of the molecule were also calculated using the gauge independent atomic orbital (GIAO) method. The UV–visible spectrum was also recorded and compared with the theoretical values. The calculated HOMO and LUMO energies show that charge transfer occurs within molecule. The first order hyperpolarizability (β_0), related properties (b, α_0 and ?α) and the Mulliken charges of the molecule were also computed using DFT calculations. Stability of the molecule arising from hyperconjugative interactions, charge delocalization have been analyzed using natural bond orbital (NBO) analysis. The results show that charge in electron density (ED) in the σ* and π* antibonding orbitals and second order delocalization energies (E2) confirms the occurrence of intramolecular charge transfer (ICT) within the molecule. Information about the charge density distribution of the molecule and its chemical reactivity has been obtained by mapping molecular electrostatic potential surface. In addition, the non-linear optical properties were discussed from the dipole moment values and excitation wavelength in the UV–visible region.
机译:异黄蝶呤的FTIR和FT-拉曼光谱分别记录在4000-450和4000-100 cm〜(-1)区域。利用密度泛函理论(DFT),使用6-311 ++ G(d,p)基集,获得了异黄蝶呤振动带的最佳几何形状,频率和强度。缩放谐波振动频率,并将其与实验值进行比较。发现观察到的频率和计算出的频率非常吻合。分子的〜1H和〜(13)C核磁共振化学位移也使用不依赖于轨距的原子轨道(GIAO)方法进行了计算。紫外可见光谱也被记录下来并与理论值进行比较。计算出的HOMO和LUMO能量表明分子内发生了电荷转移。还使用DFT计算来计算分子的一阶超极化率(β_0),相关特性(b,α_0和αα)和Mulliken电荷。使用自然键轨道(NBO)分析已经分析了超共轭相互作用,电荷离域引起的分子稳定性。结果表明,在σ*和π*反键轨道上的电子密度(ED)中的电荷以及二阶离域能(E2)证实了分子内分子内电荷转移(ICT)的发生。有关分子的电荷密度分布及其化学反应性的信息已通过绘制分子静电势表面来获得。另外,从偶极矩值和紫外可见光区域的激发波长讨论了非线性光学性质。

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