On-the-fly ab initio semiclassical evaluation of third-order response functions for two-dimensional electronic spectroscopy

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Main Authors: Begušić, Tomislav, Vaníček, Jiří
Format: Preprint
Published: 2020
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author Begušić, Tomislav
Vaníček, Jiří
author_facet Begušić, Tomislav
Vaníček, Jiří
contents 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.
format Preprint
id arxiv_https___arxiv_org_abs_2010_03044
institution arXiv
publishDate 2020
record_format arxiv
spellingShingle On-the-fly ab initio semiclassical evaluation of third-order response functions for two-dimensional electronic spectroscopy
Begušić, Tomislav
Vaníček, Jiří
Chemical Physics
Computational Physics
Quantum Physics
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.
title On-the-fly ab initio semiclassical evaluation of third-order response functions for two-dimensional electronic spectroscopy
topic Chemical Physics
Computational Physics
Quantum Physics
url https://arxiv.org/abs/2010.03044