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Manipulation of photosynthetic energy transfer by vibrational strong coupling.
Dong, Jun-Yu; Kitahama, Yasutaka; Fujita, Takatoshi; Adachi, Motoyasu; Shigeta, Yasuteru; Ishizaki, Akihito; Tanaka, Shigenori; Xiao, Ting-Hui; Goda, Keisuke.
Affiliation
  • Dong JY; Department of Chemistry, School of Science, The University of Tokyo, Tokyo 113-0033, Japan.
  • Kitahama Y; Department of Chemistry, School of Science, The University of Tokyo, Tokyo 113-0033, Japan.
  • Fujita T; LucasLand, Tokyo 101-0052, Japan.
  • Adachi M; Institute for Quantum Life Science, National Institutes for Quantum Science and Technology, Chiba 263-8555, Japan.
  • Shigeta Y; Institute for Quantum Life Science, National Institutes for Quantum Science and Technology, Chiba 263-8555, Japan.
  • Ishizaki A; Center for Computational Sciences, University of Tsukuba, Tsukuba 305-8577, Japan.
  • Tanaka S; Institute for Molecular Science, National Institutes of Natural Sciences, Okazaki 444-8585, Japan.
  • Xiao TH; Department of Computational Science, Graduate School of System Informatics, Kobe University, Kobe 657-8501, Japan.
  • Goda K; Department of Chemistry, School of Science, The University of Tokyo, Tokyo 113-0033, Japan.
J Chem Phys ; 160(4)2024 Jan 28.
Article in En | MEDLINE | ID: mdl-38284659
ABSTRACT
Uncovering the mystery of efficient and directional energy transfer in photosynthetic organisms remains a critical challenge in quantum biology. Recent experimental evidence and quantum theory developments indicate the significance of quantum features of molecular vibrations in assisting photosynthetic energy transfer, which provides the possibility of manipulating the process by controlling molecular vibrations. Here, we propose and theoretically demonstrate efficient manipulation of photosynthetic energy transfer by using vibrational strong coupling between the vibrational state of a Fenna-Matthews-Olson (FMO) complex and the vacuum state of an optical cavity. Specifically, based on a full-quantum analytical model to describe the strong coupling effect between the optical cavity and molecular vibration, we realize efficient manipulation of energy transfer efficiency (from 58% to 92%) and energy transfer time (from 20 to 500 ps) in one branch of FMO complex by actively controlling the coupling strength and the quality factor of the optical cavity under both near-resonant and off-resonant conditions, respectively. Our work provides a practical scenario to manipulate photosynthetic energy transfer by externally interfering molecular vibrations via an optical cavity and a comprehensible conceptual framework for researching other similar systems.

Full text: 1 Collection: 01-internacional Database: MEDLINE Type of study: Prognostic_studies Language: En Journal: J Chem Phys Year: 2024 Document type: Article Affiliation country:

Full text: 1 Collection: 01-internacional Database: MEDLINE Type of study: Prognostic_studies Language: En Journal: J Chem Phys Year: 2024 Document type: Article Affiliation country: