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首页> 外文期刊>Journal of Photochemistry and Photobiology, A. Chemistry >Photophysical properties of 2,3,6,7-tetrahydro-8-hydroxy-1H,5H-benz[i,j]quinolizine-9-carboxaldehyde:Evidence of excited state intramolecular proton transfer but not of intramolecular charge transfer process
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Photophysical properties of 2,3,6,7-tetrahydro-8-hydroxy-1H,5H-benz[i,j]quinolizine-9-carboxaldehyde:Evidence of excited state intramolecular proton transfer but not of intramolecular charge transfer process

机译:2,3,6,7-四氢-8-羟基-1H,5H-苯并[i,j]喹啉嗪-9-甲醛的光物理性质:激发态分子内质子转移但没有分子内电荷转移过程的证据

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摘要

The photophysical behaviours of 2,3,6,7-tetrahydro-8-hydroxy-1H,5H-benzo[i,j]quinolizine-9-carboxaldehyde(THBQC),a molecule having both the intramolecular excited state donor acceptor charge transfer and six member intramolecular hydrogen bonded proton transfer sites,have been investigated by steady state and time resolved spectroscopy in combination with quantum chemical calculations.The observed spectral characteristics of THBQC with variation of solvent properties,pH and temperature of the medium confirm the existence of different neutral and ionic species in the ground and excited states.Comparatively less solvent polarity dependent red shifted emission band of THBQC in all solvents is attributed to excited state intramolecular proton transfer of the closed conformer leading to keto-enol tautomerism but not of intramolecular charge transfer process.In polar solvents,apart from the proton transfer emission band,another band at higher energy region is attributed to the emission from the open solvated form.Evaluation of the potential energy surfaces by quantum chemical calculations using Density functional theory(DFT)and Hartree-Fock(HF)levels point towards the possibility of proton transfer reaction in the first excited state and correlate well with the experimental findings.
机译:2,3,6,7-四氢-8-羟基-1H,5H-苯并[i,j]喹啉嗪-9-甲醛(THBQC)的光物理行为,该分子具有分子内激发态供体受体电荷转移和通过稳态和时间分辨光谱结合量子化学计算研究了六元分子内氢键质子转移位点。观察到的THBQC的光谱特性随溶剂性质,pH和介质温度的变化而确认存在不同的中性在所有溶剂中,THBQC相对较少的依赖于溶剂极性的红移发射带具有相对较少的溶剂极性依赖性,这归因于闭环构象体的激发态分子内质子转移,从而导致酮-烯醇互变异构现象,而不是分子内电荷转移过程。在极性溶剂中,除质子转移发射带外,高能区的另一个带归因于通过使用密度泛函理论(DFT)和Hartree-Fock(HF)能级进行量子化学计算来评估势能表面,指出了质子转移反应在第一激发态的可能性,并与实验结果紧密相关。

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