Quantum simulator of an open quantum system using superconducting qubits: exciton transport in photosynthetic complexes

ORAL

Abstract

In the initial stage of photosynthesis, light-harvested energy is transferred with remarkably high efficiency to a reaction center, with the vibrational environment assisting the transport mechanism. It is of great interest to mimic this process with present-day technologies. Here we propose an analog quantum simulator of open system dynamics, where noise engineering of the environment has a central role. In particular, we propose the use of superconducting qubits for the simulation of exciton transport in the Fenna-Matthew-Olson protein, a prototypical photosynthetic complex. Our method allows for a single-molecule implementation and the investigation of energy transfer pathways as well as non-Markovian and spatiotemporal noise-correlation effects.

Authors

  • Sarah Mostame

    • Harvard University
  • Patrick Rebentrost

    • Harvard University
  • Alexander Eisfeld

    • Department of Chemistry and Chemical Biology, Harvard University, 12 Oxford Street, Cambridge, MA 02138
    • Harvard University
  • Andrew J. Kerman

    • MIT Lincoln Laboratory
    • Lincoln Laboratory - Massachusetts Institute of Technology
  • Dimitris I. Tsomokos

    • University of London
  • Al\'an Aspuru-Guzik

    • Harvard University
    • Department of Chemistry and Chemical Biology, Harvard University
    • Department of Chemistry and Chemical Biology, Harvard University, 12 Oxford Street, Cambridge, Massachusetts 02138, USA