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Squeezed light from a silicon micromechanical resonator

Amir H. Safavi-Naeini, Simon Gröblacher, Jeff T. Hill, Jasper Chan, Markus Aspelmeyer and Oskar Painter ()
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Amir H. Safavi-Naeini: Kavli Nanoscience Institute and Thomas J. Watson, Sr, Laboratory of Applied Physics, California Institute of Technology
Simon Gröblacher: Kavli Nanoscience Institute and Thomas J. Watson, Sr, Laboratory of Applied Physics, California Institute of Technology
Jeff T. Hill: Kavli Nanoscience Institute and Thomas J. Watson, Sr, Laboratory of Applied Physics, California Institute of Technology
Jasper Chan: Kavli Nanoscience Institute and Thomas J. Watson, Sr, Laboratory of Applied Physics, California Institute of Technology
Markus Aspelmeyer: Vienna Center for Quantum Science and Technology, Faculty of Physics, University of Vienna, A-1090 Wien, Austria
Oskar Painter: Kavli Nanoscience Institute and Thomas J. Watson, Sr, Laboratory of Applied Physics, California Institute of Technology

Nature, 2013, vol. 500, issue 7461, 185-189

Abstract: Quantum fluctuations of a laser are transferred onto the motion of a mechanical resonator and interfere with the fluctuations of the light reflected from the resonator, leading to ‘squeezed’ light with optical noise suppressed below the standard quantum limit.

Date: 2013
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DOI: 10.1038/nature12307

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