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Electronic coherence lifetimes of the Fenna-Matthews-Olson complex and light harvesting complex II.

Shawn Irgen-GioroKarthik GururanganRafael G SaerRobert E BlankenshipElad Harel
Published in: Chemical science (2019)
The study of coherence between excitonic states in naturally occurring photosynthetic systems offers tantalizing prospects of uncovering mechanisms of efficient energy transport. However, experimental evidence of functionally relevant coherences in wild-type proteins has been tentative, leading to uncertainty in their importance at physiological conditions. Here, we extract the electronic coherence lifetime and frequency using a signal subtraction procedure in two model pigment-protein-complexes (PPCs), light harvesting complex II (LH2) and the Fenna-Matthews-Olson complex (FMO), and find that the coherence lifetimes occur at the same timescale (<100 fs) as energy transport between states at the energy level difference equal to the coherence energy. The pigment monomer bacteriochlorophyll a (BChla) shows no electronic coherences, supporting our methodology of removing long-lived vibrational coherences that have obfuscated previous assignments. This correlation of timescales and energy between coherences and energy transport reestablishes the time and energy scales that quantum processes may play a role in energy transport.
Keyphrases
  • computed tomography
  • molecular dynamics
  • wild type
  • current status
  • density functional theory
  • mass spectrometry
  • small molecule
  • amino acid