Abstract
The Born-Oppenheimer approximation underlies much of chemical simulation and provides the framework defining the potential energy surfaces that are used for much of our pictorial understanding of chemical phenomena. However, this approximation breaks down when the dynamics of molecules in excited electronic states are considered. Describing dynamics when the Born-Oppenheimer approximation breaks down requires a quantum mechanical description of the nuclei. Chemical reaction dynamics on excited electronic states is critical for many applications in renewable energy, chemical synthesis, and bioimaging. Furthermore, it is necessary in order to connect with many ultrafast pump-probe spectroscopic experiments. In this review, we provide an overview of methods that can describe nonadiabatic dynamics, with emphasis on those that are able to simultaneously address the quantum mechanics of both electrons and nuclei. Such ab initio quantum molecular dynamics methods solve the electronic Schrödinger equation alongside the nuclear dynamics and thereby avoid the need for precalculation of potential energy surfaces and nonadiabatic coupling matrix elements. Two main families of methods are commonly employed to simulate nonadiabatic dynamics in molecules: full quantum dynamics, such as the multiconfigurational time-dependent Hartree method, and classical trajectory-based approaches, such as trajectory surface hopping. In this review, we describe a third class of methods that is intermediate between the two: Gaussian basis set expansions built around trajectories.
| Original language | English |
|---|---|
| Pages (from-to) | 3305-3336 |
| Number of pages | 32 |
| Journal | Chemical Reviews |
| Volume | 118 |
| Issue number | 7 |
| DOIs | |
| Publication status | Published - 11 Apr 2018 |
Bibliographical note
Funding Information:Basile F. E. Curchod obtained a Ph.D. in theoretical chemistry in 2013 at EPFL (Lausanne, Switzerland), under the direction of Dr. Ivano Tavernelli and co-direction of Professor Ursula Röthlisberger. In early 2014, he was awarded an Early.PostDoc grant from the Swiss National Science Foundation to join the group of Professor Todd J. Martıńez at Stanford University. In December 2015, he initiated a short postdoctoral stay in the Theory Group, directed by Professor Eberhard K. U. Gross, at the Max Planck Institute in Halle, Germany. He was then awarded a Marie Skłodowska-Curie Research Fellowship to join, in May 2016, the Centre for Computational Chemistry at the University of Bristol. Since November 2017, he has been an assistant professor in theoretical chemistry at Durham University.
Funding Information:
This work was supported by the AMOS program within the Chemical Sciences, Geosciences and Biosciences Division of the Office of Basic Energy Sciences, Office of Science, U.S. Department of Energy. B.F.E.C. acknowledges funding from the European Union’s Horizon 2020 research and innovation program under Grant 701355 (NAMDIA).
Publisher Copyright:
© 2018 American Chemical Society.
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Research Groups and Themes
- Physical & Theoretical
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