The Journal of Chemical Physics · 2020 · 23 citations · 33 references
EngineeringNuclear PhysicsExcitation Energy TransferVibrational ModesElectronic Excited StateVibronic InteractionResonant Nuclear/vibrational ModesPhotosynthesisPhotophysical PropertyBiophysicsPhotonicsQuantum ScienceHigh-energy Nuclear ReactionPhysicsPhotochemistryNuclear TheoryPhysical ChemistryQuantum ChemistryLhcii ComplexExcited State PropertyNatural SciencesSpectroscopyApplied PhysicsQuantum BiologyResonant Nuclear ModesEnergy TransportLight-harvesting Complex Ii
In this paper, we discuss the explicit role of resonant nuclear/vibrational modes in mediating energy transport among chlorophylls in the Light-harvesting Complex II (LHCII), the major light-harvesting complex in green plants. The vibrational modes are considered to be resonant/quasi-resonant with the energy gap between electronic excitons. These resonant vibrations, along with the remaining nuclear degrees of freedom, constitute the environment/bath to the electronically excited system and contribute to two major phenomena: (a) decoherence and (b) incoherent phonon-mediated population relaxation. In this work, we explore the subtle interplay among the electronic excitation, the resonant vibrations, and the environment in dictating environment assisted quantum transport in light-harvesting complexes. We conclusively show that resonant vibrations are capable of boosting the incoherent population relaxation pathways and cause rapid decoherence.
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Evidence for wavelike energy transfer through quantum coherence in photosynthetic systems
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Vivek Tiwari, William K. Peters, David M. Jonas · Proceedings of the National Academy of Sciences · 2012 · 551 citations · Full text