Begušić Tomislav, Vaníček Jiří
Laboratory of Theoretical Physical Chemistry, Institut des Sciences et Ingénierie Chimiques, Ecole Polytechnique Fédérale de Lausanne (EPFL), CH-1015 Lausanne, Switzerland.
J Chem Phys. 2020 Nov 14;153(18):184110. doi: 10.1063/5.0031216.
Ab initio computation of two-dimensional electronic spectra is an expanding field, whose goal is improving upon simple, few-dimensional models often employed to explain experiments. Here, we propose an accurate and computationally affordable approach, based on the single-trajectory semiclassical thawed Gaussian approximation, to evaluate two-dimensional electronic spectra. Importantly, the method is exact for arbitrary harmonic potentials with mode displacement, changes in the mode frequencies, and inter-mode coupling (Duschinsky effect), but can also account partially for the anharmonicity of the involved potential energy surfaces. We test its accuracy on a set of model Morse potentials and use it to study anharmonicity and Duschinsky effects on the linear and two-dimensional electronic spectra of phenol. We find that in this molecule, the anharmonicity effects are weak, whereas the Duschinsky rotation and the changes in the mode frequencies must be included in accurate simulations. In contrast, the widely used displaced harmonic oscillator model captures only the basic physics of the problem but fails to reproduce the correct vibronic lineshape.
二维电子光谱的从头计算是一个不断发展的领域,其目标是改进常用于解释实验的简单、低维模型。在此,我们基于单轨迹半经典解冻高斯近似提出一种准确且计算成本可承受的方法,用于评估二维电子光谱。重要的是,该方法对于具有模式位移、模式频率变化和模式间耦合(杜什金斯基效应)的任意谐波势是精确的,但也能部分考虑所涉及势能面的非谐性。我们在一组模型莫尔斯势上测试其准确性,并将其用于研究非谐性以及杜什金斯基效应对苯酚线性和二维电子光谱的影响。我们发现,在该分子中,非谐性效应较弱,而杜什金斯基旋转和模式频率变化必须包含在精确模拟中。相比之下,广泛使用的位移谐振子模型仅捕捉了问题的基本物理原理,但无法重现正确的振转线形。