Ortiz-Sánchez Juan Manuel, Gelabert Ricard, Moreno Miquel, Lluch José M
Departament de Química, Universitat Autónoma de Barcelona, 08193 Bellaterra, Barcelona, Spain.
J Chem Phys. 2007 Aug 28;127(8):084318. doi: 10.1063/1.2756530.
The ultrafast proton-transfer dynamics of 1-hydroxy-2-acetonaphthone has been theoretically analyzed in the ground and first singlet excited electronic states by density functional theory calculations and quantum dynamics. The potential energies obtained in the ground electronic state reveal that the proton-transfer process does not lead to a stable keto tautomer unless the transfer of the hydrogen from the enol form is accompanied by an internal rotation of the newly formed O-H bond. Calculations in the first singlet excited electronic state point to a very low barrier for the formation of the keto tautomer. The analysis of the calculated frequencies of the two tautomers in the excited state unveils a coupling of the skeletal motions (low frequency modes) with the proton-transfer process, as it has been stated from time-resolved experiments. The electronic energies obtained by the time-dependent density functional theory formalism have been fitted to a monodimensional potential energy surface in order to perform an exact quantum dynamics study of the process. Our results show that the proton-transfer process is completed within 25.5 fs, in remarkable good agreement with experiments.
通过密度泛函理论计算和量子动力学,对1-羟基-2-乙酰萘在基态和第一单重激发电子态下的超快质子转移动力学进行了理论分析。在基态电子态中获得的势能表明,质子转移过程不会导致稳定的酮式互变异构体,除非烯醇形式的氢转移伴随着新形成的O-H键的内旋转。在第一单重激发电子态下的计算表明,酮式互变异构体形成的势垒非常低。对激发态下两种互变异构体计算频率的分析揭示了骨架运动(低频模式)与质子转移过程的耦合,正如时间分辨实验所表明的那样。通过含时密度泛函理论形式获得的电子能量已被拟合到一维势能面,以便对该过程进行精确的量子动力学研究。我们的结果表明,质子转移过程在25.5飞秒内完成,与实验结果非常吻合。