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Quantum nonlinear optics with single photons enabled by strongly interacting atoms
Author(s) -
Thibault Peyronel,
Ofer Firstenberg,
Qiyu Liang,
Sebastian Hofferberth,
Alexey V. Gorshkov,
Thomas Pohl,
Mikhail D. Lukin,
Vladan Vuletić
Publication year - 2012
Publication title -
nature
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 15.993
H-Index - 1226
eISSN - 1476-4687
pISSN - 0028-0836
DOI - 10.1038/nature11361
Subject(s) - physics , photon , quantum optics , quantum mechanics , quantum , quantum technology , nonlinear optics , realization (probability) , electromagnetically induced transparency , nonlinear system , atomic physics , open quantum system , statistics , mathematics
The realization of strong nonlinear interactions between individual light quanta (photons) is a long-standing goal in optical science and engineering, being of both fundamental and technological significance. In conventional optical materials, the nonlinearity at light powers corresponding to single photons is negligibly weak. Here we demonstrate a medium that is nonlinear at the level of individual quanta, exhibiting strong absorption of photon pairs while remaining transparent to single photons. The quantum nonlinearity is obtained by coherently coupling slowly propagating photons to strongly interacting atomic Rydberg states in a cold, dense atomic gas. Our approach paves the way for quantum-by-quantum control of light fields, including single-photon switching, all-optical deterministic quantum logic and the realization of strongly correlated many-body states of light.

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