Polaritons in Living Systems: Modifying Energy Landscapes in Photosynthetic Organisms Using a Photonic Structure
arXiv:1702.01705 · doi:10.1002/smll.201701777
Abstract
Photosynthetic organisms rely on a series of self-assembled nanostructures with tuned electronic energy levels in order to transport energy from where it is collected by photon absorption, to reaction centers where the energy is used to drive chemical reactions. In the photosynthetic bacteria Chlorobaculum tepidum (Cba. tepidum), a member of the green sulphur bacteria (GSB) family, light is absorbed by large antenna complexes called chlorosomes. The exciton generated is transferred to a protein baseplate attached to the chlorosome, before traveling through the Fenna-Matthews-Olson (FMO) complex to the reaction center. The energy levels of these systems are generally defined by their chemical structure. Here we show that by placing bacteria within a photonic microcavity, we can access the strong exciton-photon coupling regime between a confined cavity mode and exciton states of the chlorosome, whereby a coherent exchange of energy between the bacteria and cavity mode results in the formation of polariton states. The polaritons have an energy distinct from that of the exciton and photon, and can be tuned in situ via the microcavity length. This results in real-time, non-invasive control over the relative energy levels within the bacteria. This demonstrates the ability to strongly influence living biological systems with photonic structures such as microcavities. We believe that by creating polariton states, that are in this case a superposition of a photon and excitons within a living bacteria, we can modify energy transfer pathways and therefore study the importance of energy level alignment on the efficiency of photosynthetic systems.
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- Theory of Nanoscale Organic Cavities: The Essential Role of Vibration-Photon Dressed States
- Untargeted Effects in Organic Exciton-Polariton Transient Spectroscopy: A Cautionary Tale
- Generation of Anti-Stokes Fluorescence in a Strongly Coupled Organic Semiconductor Microcavity
- Probing quantum features of photosynthetic organisms
- Cavity-modified exciton dynamics in photosynthetic units
- Resonant confinement of excitonic polariton and ultra-efficient light harvest in artificial photosynthesis
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- Optical transport of sub-micron lipid vesicles along an optical nanofibre
- Entanglement between superconducting qubits and a tardigrade
- Theory of Energy Transfer in Organic Nanocrystals
- The role of polaron dressing in superradiant emission dynamics
- Non-classical correlations between a quantum probe and complex quantum systems in presence of noise
- Microcavity-Enhanced Exciton Dynamics in Light-Harvesting Complexes: Insights from Redfield Theory