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Photon propagation through dissipative Rydberg media at large input rates.
Bienias, Przemyslaw; Douglas, James; Paris-Mandoki, Asaf; Titum, Paraj; Mirgorodskiy, Ivan; Tresp, Christoph; Zeuthen, Emil; Gullans, Michael J; Manzoni, Marco; Hofferberth, Sebastian; Chang, Darrick; Gorshkov, Alexey V.
Afiliação
  • Bienias P; Joint Quantum Institute, National Institute of Standards and Technology and the University of Maryland, College Park, Maryland 20742, USA.
  • Douglas J; Joint Center for Quantum Information and Computer Science, National Institute of Standards and Technology and the University of Maryland, College Park, Maryland 20742, USA.
  • Paris-Mandoki A; ICFO-Institut de Ciencies Fotoniques, Barcelona Institute of Science and Technology, 08860 Castelldefels, Barcelona, Spain.
  • Titum P; Department of Physics, Chemistry, and Pharmacy, Physics@SDU, University of Southern Denmark, 5320 Odense, Denmark.
  • Mirgorodskiy I; Instituto de Física, Universidad Nacional Autónoma de México, Mexico City 04510, Mexico.
  • Tresp C; Joint Quantum Institute, National Institute of Standards and Technology and the University of Maryland, College Park, Maryland 20742, USA.
  • Zeuthen E; Joint Center for Quantum Information and Computer Science, National Institute of Standards and Technology and the University of Maryland, College Park, Maryland 20742, USA.
  • Gullans MJ; Department of Physics, Chemistry, and Pharmacy, Physics@SDU, University of Southern Denmark, 5320 Odense, Denmark.
  • Manzoni M; Department of Physics, Chemistry, and Pharmacy, Physics@SDU, University of Southern Denmark, 5320 Odense, Denmark.
  • Hofferberth S; Niels Bohr Institute, University of Copenhagen, DK-2100 Copenhagen, Denmark.
  • Chang D; Joint Quantum Institute, National Institute of Standards and Technology and the University of Maryland, College Park, Maryland 20742, USA.
  • Gorshkov AV; Joint Center for Quantum Information and Computer Science, National Institute of Standards and Technology and the University of Maryland, College Park, Maryland 20742, USA.
Phys Rev Res ; 2(3)2020.
Article em En | MEDLINE | ID: mdl-33367285
We study the dissipative propagation of quantized light in interacting Rydberg media under the conditions of electromagnetically induced transparency. Rydberg blockade physics in optically dense atomic media leads to strong dissipative interactions between single photons. The regime of high incoming photon flux constitutes a challenging many-body dissipative problem. We experimentally study in detail the pulse shapes and the second-order correlation function of the outgoing field and compare our data with simulations based on two novel theoretical approaches well-suited to treat this many-photon limit. At low incoming flux, we report good agreement between both theories and the experiment. For higher input flux, the intensity of the outgoing light is lower than that obtained from theoretical predictions. We explain this discrepancy using a simple phenomenological model taking into account pollutants, which are nearly stationary Rydberg excitations coming from the reabsorption of scattered probe photons. At high incoming photon rates, the blockade physics results in unconventional shapes of measured correlation functions.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2020 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2020 Tipo de documento: Article