Theoretical analysis of the relaxation dynamics in perylene bisimide dimers excited by femtosecond laser pulses

J Phys Chem A. 2014 Feb 27;118(8):1403-12. doi: 10.1021/jp412166a. Epub 2014 Feb 11.

Abstract

We present a model for the relaxation dynamics in perylene bisimide dimers, which is based on ab initio electronic structure and quantum dynamics calculations including effects of dissipation. The excited-state dynamics proceeds via a mixing of electronic states of local Frenkel and charge-transfer characters, which becomes effective upon a small distortion of the dimer geometry. In this way, it is possible to explain the fast depopulation of the photoexcited state, which we characterize by femtosecond transient absorption measurements. The combined theoretical and experimental analysis hints at a trapping mechanism, which involves nonadiabatic and dissipative dynamics in an excited-state vibronic manifold and provides an atomistic picture that might prove valuable for future design of photovoltaic materials.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Dimerization
  • Imides / chemistry*
  • Lasers
  • Models, Chemical*
  • Molecular Dynamics Simulation
  • Perylene / analogs & derivatives*
  • Perylene / chemistry
  • Quantum Theory
  • Static Electricity
  • Thermodynamics
  • Time Factors

Substances

  • Imides
  • perylene bisimide
  • Perylene