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Theoretical study on influence of geometry controlling over the excited-state intramolecular proton transfer of 10-hydroxybenzo[h]quinoline and its derivatives

机译:几何控制对10-羟基苯齐喹啉及其衍生物兴奋状态分子内质子转移影响的理论研究

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A structural modification on quinoline as a proton donor of 10-hydroxybenzo[h]quinoline (HBQ) giving different HBQ derivatives greatly affects their photophysical properties. In this study, the excited-state intramolecular proton transfer (ESIPT) reactions of HBQ and its derivatives with different geometries have been systematically investigated using DFF and TD-DFT at B3LYP/TZVP. Calculated absorption and emission spectra are used to describe the photophysical changes in which the absorption spectra of HBQ derivatives are blue-shifted compared with that of HBQ while their emission spectra are blue shifted except those of 3,4-dihydro indene[1,2-b]pyrrole-8-ol (IPRO) and 2-(4H-pyrrol-2-yl)phenol (PRP) compounds with different proton donor and connecting moiety are red-shifted. From results of potential energy curves along the proton transfer (PT) coordinate, PT is favorable in the excited-state but not in the ground state. On-the-fly dynamics simulations in the excited-state are further employed to determine reaction,mechanisms and the time evolution of PT. The ESIPT process easily occurs in most of the compounds except the IPRO with much high PT barrier. The ESIPT times in most compounds take place within 100 fs and PT probability is nicely anti-correlated with the PT barrier. Thus, the geometry changes alter the electronic spectra but do not affect ESIPT of HBQ derivatives. Moreover, once the PT is complete, the internal conversion is initiated by twisted skeleton, leading to lower intensity of tautomer emission. (C) 2017 Elsevier B.V. All rights reserved.
机译:喹啉的结构改性作为10-羟基苯的质子供体,其给出不同HBQ衍生物的喹啉(HBQ)极大地影响它们的光物理性质。在该研究中,通过B3LYP / TZVP的DFF和TD-DFT系统地研究了HBQ的兴奋状态分子内质子转移(ESIPT)及其具有不同几何形状的衍生物。计算的吸收和发射光谱用于描述HBQ衍生物的吸收光谱与HBQ的吸收光谱与HBQ的吸收光谱相比,除了3,4-二氢茚(1,2- B]具有不同质子供体和连接部分的吡咯-8-醇(IPRO)和2-(4H-吡咯-2-基)苯酚(PRP)化合物是红移的。从沿质子转移(Pt)坐标沿潜在能量曲线的结果,PT在激发状态下有利但不在地状态下。进一步的动力学模拟兴奋状态进一步用于确定Pt的反应,机制和时间演化。除了具有很高的Pt屏障的IPRO之外,eSipt过程很容易发生在大多数化合物中。在大多数化合物中发生的eSipti时次在100 fs内发生,并且Pt概率与Pt屏障很好地反相关。因此,几何变化改变了电子谱,但不影响HBQ衍生物的eSipt。此外,一旦PT完成,内部转化由扭曲的骨架引发,导致互变异构体发射的较低强度。 (c)2017 Elsevier B.v.保留所有权利。

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