Two-dimensional electronic spectra from trajectory-based dynamics: Pure-state Ehrenfest, spin-mapping, and mean classical path approaches
Abstract
Two-dimensional electronic spectroscopy (2DES) provides a detailed picture of electronically nonadiabatic dynamics that can be interpreted with the aid of simulations. Here, we develop and contrast trajectory-based nonadiabatic dynamics approaches for simulating 2DES spectra. First, we argue that an improved pure-state Ehrenfest approach can be constructed by decomposing the initial coherence into a sum of equatorial pure states that contain equal contributions from the states in the coherence. We then use this framework to show how one can obtain a more accurate, but computationally more expensive, approximation to the third-order 2DES response function by replacing Ehrenfest dynamics with spin mapping during the pump–probe delay time. We end by comparing and contrasting the accuracy of these methods and the simpler mean classical path approximation in reproducing the exact linear, pump–probe, and 2DES spectra of two Frenkel exciton models: a coupled dimer system and the Fenna–Matthews–Olson complex.
Article Details
Journal Info
The Journal of Chemical Physics
American Institute of Physics
Authors (5)
Annina Z. Lieberherr
Physical and Theoretical Chemistry Laboratory, Department of Chemistry, University of Oxford 1 , South Parks Road, Oxford OX1 3QZ,
Joseph Kelly
Department of Chemistry
Johan E. Runeson
Institute of Physics, Albert-Ludwigs University Freiburg 1 , Hermann-Herder-Strasse 3, 79104 Freiburg,
Thomas E. Markland
Department of Chemistry
David E. Manolopoulos
Physical and Theoretical Chemistry Laboratory, Department of Chemistry, University of Oxford 1 , South Parks Road, Oxford OX1 3QZ,