Efficient estimation of energy transfer efficiency in light-harvesting complexes

A. Shabani, M. Mohseni, H. Rabitz, and S. Lloyd
Phys. Rev. E 86, 011915 – Published 17 July 2012

Abstract

The fundamental physical mechanisms of energy transfer in photosynthetic complexes is not yet fully understood. In particular, the degree of efficiency or sensitivity of these systems for energy transfer is not known given their realistic with surrounding photonic and phononic environments. One major problem in studying light-harvesting complexes has been the lack of an efficient method for simulation of their dynamics in biological environments. To this end, here we revisit the second order time-convolution (TC2) master equation and examine its reliability beyond extreme Markovian and perturbative limits. In particular, we present a derivation of TC2 without making the usual weak system-bath coupling assumption. Using this equation, we explore the long-time behavior of exciton dynamics of Fenna-Matthews-Olson (FMO) portein complex. Moreover, we introduce a constructive error analysis to estimate the accuracy of TC2 equation in calculating energy transfer efficiency, exhibiting reliable performance for system-bath interactions with weak and intermediate memory and strength. Furthermore, we numerically show that energy transfer efficiency is optimal and robust for the FMO protein complex of green sulfur bacteria with respect to variations in reorganization energy and bath correlation time scales.

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  • Received 13 April 2012

DOI:https://doi.org/10.1103/PhysRevE.86.011915

©2012 American Physical Society

Authors & Affiliations

A. Shabani1, M. Mohseni2, H. Rabitz1, and S. Lloyd3

  • 1Department of Chemistry, Princeton University, Princeton, New Jersey 08544, USA
  • 2Center for Excitonics, Research Laboratory of Electronics, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA
  • 3Department of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA

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Vol. 86, Iss. 1 — July 2012

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