Coherent optical wavelength conversion via cavity optomechanics
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Open Access
- 1 January 2012
- journal article
- research article
- Published by Springer Nature in Nature Communications
- Vol. 3 (1) , 1196
- https://doi.org/10.1038/ncomms2201
Abstract
Both classical and quantum systems utilize the interaction of light and matter across a wide range of energies. These systems are often not naturally compatible with one another and require a means of converting photons of dissimilar wavelengths to combine and exploit their different strengths. Here we theoretically propose and experimentally demonstrate coherent wavelength conversion of optical photons using photon–phonon translation in a cavity-optomechanical system. For an engineered silicon optomechanical crystal nanocavity supporting a 4-GHz localized phonon mode, optical signals in a 1.5 MHz bandwidth are coherently converted over a 11.2 THz frequency span between one cavity mode at wavelength 1,460 nm and a second cavity mode at 1,545 nm with a 93% internal (2% external) peak efficiency. The thermal- and quantum-limiting noise involved in the conversion process is also analysed, and in terms of an equivalent photon number signal level are found to correspond to an internal noise level of only 6 and 4 × 10−3 quanta, respectively.Keywords
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This publication has 35 references indexed in Scilit:
- An elementary quantum network of single atoms in optical cavitiesNature, 2012
- Quantum Optical Waveform ConversionPhysical Review Letters, 2011
- Optomechanical Transducers for Long-Distance Quantum CommunicationPhysical Review Letters, 2010
- Quantum transduction of telecommunications-band single photons from a quantum dot by frequency upconversionNature Photonics, 2010
- Hybrid quantum devices and quantum engineeringPhysica Scripta, 2009
- A solid-state light–matter interface at the single-photon levelNature, 2008
- The quantum internetNature, 2008
- Optical nonlinearities in fibers: review, recent examples, and systems applicationsJournal of Lightwave Technology, 2005
- A photonic quantum information interfaceNature, 2005
- Observation of quantum frequency conversionPhysical Review Letters, 1992