4.8 Article

Electromagnetically induced transparency with single atoms in a cavity

期刊

NATURE
卷 465, 期 7299, 页码 755-758

出版社

NATURE PUBLISHING GROUP
DOI: 10.1038/nature09093

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  1. Deutsche Forschungsgemeinschaft (Research Unit) [635]
  2. European Union (IST)
  3. Alexander von Humboldt Foundation
  4. Coordenacao de Aperfeicoamento de Pessoal de Nivel Superior
  5. Brazilian National Institute for Science and Technology of Quantum Information (INCT-IQ)

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Optical nonlinearities offer unique possibilities for the control of light with light. A prominent example is electromagnetically induced transparency (EIT), where the transmission of a probe beam through an optically dense medium is manipulated by means of a control beam(1-3). Scaling such experiments into the quantum domain with one (or just a few) particles of light and matter will allow for the implementation of quantum computing protocols with atoms and photons(4-7), or the realization of strongly interacting photon gases exhibiting quantum phase transitions of light(8,9). Reaching these aims is challenging and requires an enhanced matter-light interaction, as provided by cavity quantum electrodynamics(10-12). Here we demonstrate EIT with a single atom quasi-permanently trapped inside a high-finesse optical cavity. The atom acts as a quantum-optical transistor with the ability to coherently control(13) the transmission of light through the cavity. We investigate the scaling of EIT when the atom number is increased one-by-one. The measured spectra are in excellent agreement with a theoretical model. Merging EIT with cavity quantum electrodynamics and single quanta of matter is likely to become the cornerstone for novel applications, such as dynamic control of the photon statistics of propagating light fields(14) or the engineering of Fock state superpositions of flying light pulses(15)

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