Role of time-frequency correlations in two-photon-two-atom resonance energy transfer
Roberto de J. Le\'on-Montiel, Arturo Pedroza-Rojas, Jorge A., Peralta-\'Angeles

TL;DR
This study investigates how time-frequency correlations in entangled photon pairs influence two-photon excitation energy transfer between atoms, revealing that spectral shape and correlation properties significantly affect transfer efficiency.
Contribution
It demonstrates the impact of spectral shape and time-frequency correlations of SPDC photons on two-photon excitation, providing insights for optimizing quantum light sources in energy transfer applications.
Findings
Sine cardinal spectral shape yields 3.8 times larger TPE signal than Gaussian.
Strong frequency anti-correlation enhances TPE probability.
Suppression of excitation pathways affects Gaussian and sine cardinal spectra differently.
Abstract
Excitation energy transfer is a photophysical process upon which many chemical and biological phenomena are built. From natural small systems to synthetic multichromophoric macromolecules, energy transfer deals with the process of migration of electronic excitation energy from an excited donor to an acceptor. Although this phenomenon has been extensively studied in the past, the rapid evolution of quantum-enabled technologies has motivated the question on whether nonclassical sources of light, such as entangled photon pairs, may provide us with a better control (or enhancement) of energy transfer at the nanoscale. In this work, we provide a comprehensive study of the joint excitation of two non-interacting two-level atoms by time-frequency correlated photon pairs -- whose central frequencies are not resonant with the individual particles -- generated by means of spontaneous parametric…
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Taxonomy
TopicsSpectroscopy and Quantum Chemical Studies · Quantum optics and atomic interactions · Molecular Junctions and Nanostructures
