4.8 Article

Quantum coherence spectroscopy reveals complex dynamics in bacterial light-harvesting complex 2 (LH2)

出版社

NATL ACAD SCIENCES
DOI: 10.1073/pnas.1110312109

关键词

quantum biology; photosynthesis; ultrafast spectroscopy; biophysics; excitonic dynamics

资金

  1. National Science Foundation (NSF) Materials Research Science and Engineering Centers [DMR 08-00254]
  2. Air Force Office of Scientific Research [FA9550-09-1-0117]
  3. Defense Advanced Research Projects Agency [N66001-10-1-4022]
  4. Searle Foundation
  5. NSF [DMR-0844115]
  6. Institute for Complex Adaptive Matter Branches
  7. Direct For Mathematical & Physical Scien [844115] Funding Source: National Science Foundation
  8. Division Of Materials Research [844115] Funding Source: National Science Foundation
  9. Division Of Materials Research
  10. Direct For Mathematical & Physical Scien [820054] Funding Source: National Science Foundation

向作者/读者索取更多资源

Light-harvesting antenna complexes transfer energy from sunlight to photosynthetic reaction centers where charge separation drives cellular metabolism. The process through which pigments transfer excitation energy involves a complex choreography of coherent and incoherent processes mediated by the surrounding protein and solvent environment. The recent discovery of coherent dynamics in photosynthetic light-harvesting antennae has motivated many theoretical models exploring effects of interference in energy transfer phenomena. In this work, we provide experimental evidence of long-lived quantum coherence between the spectrally separated B800 and B850 rings of the light-harvesting complex 2 (LH2) of purple bacteria. Spectrally resolved maps of the detuning, dephasing, and the amplitude of electronic coupling between excitons reveal that different relaxation pathways act in concert for optimal transfer efficiency. Furthermore, maps of the phase of the signal suggest that quantum mechanical interference between different energy transfer pathways may be important even at ambient temperature. Such interference at a product state has already been shown to enhance the quantum efficiency of transfer in theoretical models of closed loop systems such as LH2.

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