Theoretische Chemie, Fakultät für Chemie, Universität Bielefeld, Universitätsstr. 25, D-33615 Bielefeld, Germany.
J Chem Phys. 2011 Jun 14;134(22):224305. doi: 10.1063/1.3598110.
Full-dimensional (multilayer) multi-configurational time-dependent Hartree calculations studying the intramolecular proton transfer in malonaldehyde based on a recent potential energy surface (PES) [Wang et al., J. Chem. Phys. 128, 224314 (2008)] are presented. The most accurate calculations yield a ground state tunneling splitting of 23.8 cm(-1) and a zero point energy of 14,678 cm(-1). Extensive convergence tests indicate an error margin of the quantum dynamics calculations for the tunneling splitting of about 0.2 cm(-1). These results are to be compared with the experimental value of the tunneling splitting of 21.58 cm(-1) and results of Monte Carlo calculations of Wang et al. on the same PES which yielded a zero point energy of 14,677.9 cm(-1) with statistical errors of 2-3 cm(-1) and a tunneling splitting of 21.6 cm(-1). The present data includes contributions resulting from the vibrational angular momenta to the tunneling splitting and the zero point energy of 0.2 cm(-1) and 2.4 cm(-1), respectively, which have been computed using a perturbative approach.
本文报道了基于最近势能面(PES)[Wang 等人,J. Chem. Phys. 128, 224314 (2008)]的全维(多层)多组态含时哈特ree 计算,研究了丙二醛中的分子内质子转移。最精确的计算得出基态隧道分裂为 23.8 cm(-1),零点能为 14,678 cm(-1)。广泛的收敛性测试表明,隧道分裂的量子动力学计算的误差幅度约为 0.2 cm(-1)。这些结果与隧道分裂的实验值 21.58 cm(-1)以及 Wang 等人在相同 PES 上的蒙特卡罗计算结果进行了比较,该计算得出的零点能为 14,677.9 cm(-1),统计误差为 2-3 cm(-1),隧道分裂为 21.6 cm(-1)。本数据包括由振动角动量对隧道分裂和零点能的贡献,分别为 0.2 cm(-1)和 2.4 cm(-1),这些贡献是使用微扰方法计算的。