Manipulation of two-photon fluorescence spectra of chromophore aggregates with entangled photons: A simulation study
arXiv:1204.4490 · doi:10.1103/PhysRevA.86.023851
Abstract
The non-classical spectral and temporal features of entangled photons offer new possibilities to investigate the interactions of excitons in photosynthetic complexes, and to target the excitation of specific states. Simulations of fluorescence in the bacterial reaction center induced by entangled light demonstrate a selectivity of double-exciton states which is not possible using classical stochastic light with the same power spectrum.
11 pages, 13 figures, published version
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Cited by in corpus (6)
- Probing excited-state dynamics with quantum entangled photons: Correspondence to coherent multidimensional spectroscopy
- Achieving two-dimensional optical spectroscopy with temporal and spectral resolution using quantum entangled three photons
- Experimental requirements for entangled two-photon spectroscopy
- Performing quantum entangled biphoton spectroscopy using classical light pulses
- Quantum feedback control in quantum photosynthesis
- Amplification of quantum transfer and quantum ratchet