Dynamical simulations of carotenoid photoexcited states using density matrix renormalization group techniques
Dilhan Manawadu, Darren J. Valentine, William Barford

TL;DR
This paper introduces a computational framework combining density matrix renormalization group techniques with Ehrenfest dynamics to simulate the excited state processes of carotenoids, providing insights into their internal conversion mechanisms.
Contribution
It develops a novel simulation scheme that models carotenoid excited state dynamics using adaptive tDMRG and incorporates symmetry-breaking effects, advancing understanding of photoinduced processes.
Findings
Accurately describes carotenoid excited state dynamics
Shows the effect of symmetry-breaking on internal conversion
Demonstrates Landau-Zener-type transitions in the process
Abstract
We present a dynamical simulation scheme to model the highly correlated excited state dynamics of linear polyenes. We apply it to investigate the internal conversion processes of carotenoids following their photoexcitation. We use the extended Hubbard-Peierls model, , to describe the -electronic system coupled to nuclear degrees of freedom supplemented by a Hamiltonian, , that explicitly breaks both the particle-hole and two-fold rotation symmetries of idealized carotenoids. The electronic degrees of freedom are treated quantum mechanically by solving the time-dependent Schr\"odinger equation using the adaptive time-dependent DMRG (tDMRG) method, while nuclear dynamics are treated via the Ehrenfest equations of motion. By defining adiabatic excited states as the eigenstates of the full Hamiltonian,…
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Taxonomy
TopicsPhotosynthetic Processes and Mechanisms · Molecular spectroscopy and chirality · Spectroscopy and Quantum Chemical Studies
