首页> 外文期刊>Chemical Physics: A Journal Devoted to Experimental and Theoretical Research Involving Problems of Both a Chemical and Physical Nature >Evidence for excited-state intramolecular proton transfer in 4-chlorosalicylic acid from combined experimental and computational studies: Quantum chemical treatment of the intramolecular hydrogen bonding interaction
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Evidence for excited-state intramolecular proton transfer in 4-chlorosalicylic acid from combined experimental and computational studies: Quantum chemical treatment of the intramolecular hydrogen bonding interaction

机译:结合实验和计算研究证明4-氯水杨酸激发态分子内质子转移的证据:分子内氢键相互作用的量子化学处理

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摘要

The photophysical study of a pharmaceutically important chlorine substituted derivative of salicylic acid viz., 4-chlorosalicylic acid (4ClSA) has been carried out by steady-state absorption, emission and time-resolved emission spectroscopy. A large Stokes shifted emission band with negligible solvent polarity dependence marks the spectroscopic signature of excited-state intramolecular proton transfer (ESIPT) reaction in 4ClSA. Theoretical calculation by ab initio and Density Functional Theory methods yields results consistent with experimental findings. Theoretical potential energy surfaces predict the occurrence of proton transfer in S _1-state. Geometrical and energetic criteria, Atoms-In-Molecule topological parameters, Natural Bond Orbital population analysis have been exploited to evaluate the intramolecular hydrogen bond (IMHB) interaction and to explore its directional nature. The inter-correlation between aromaticity and resonance assisted H-bond is also discussed in this context. Our results unveil that the quantum chemical treatment is a more accurate tool to assess hydrogen bonding interaction in comparison to geometrical criteria.
机译:已经通过稳态吸收,发射和时间分辨发射光谱法对水杨酸的重要的氯取代衍生物即4-氯水杨酸(4ClSA)进行了光物理研究。大的斯托克斯位移发射带具有可忽略的溶剂极性依赖性,标志着4ClSA中激发态分子内质子转移(ESIPT)反应的光谱特征。从头算和密度泛函理论方法进行的理论计算得出的结果与实验结果一致。理论势能面预测在S _1状态下质子转移的发生。几何和能量标准,原子分子拓扑参数,自然键轨道人口分析已被用来评估分子内氢键(IMHB)相互作用,并探讨其方向性。在这种情况下,还讨论了芳香性和共振辅助氢键之间的相互关系。我们的结果表明,与几何标准相比,量子化学处理是评估氢键相互作用的更准确工具。

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