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  4. Resolved-sideband cooling and position measurement of a micromechanical oscillator close to the Heisenberg uncertainty limit
 
research article

Resolved-sideband cooling and position measurement of a micromechanical oscillator close to the Heisenberg uncertainty limit

Schliesser, A.  
•
Arcizet, O.
•
Riviere, R.  
Show more
2009
Nature Physics

The theory of quantum measurement of mechanical motion, describing the mutual coupling of a meter and a measured object, predicts a variety of phenomena such as quantum backaction, quantum correlations and non-classical states of motion. In spite of great experimental efforts, mostly based on nano-electromechanical systems, probing these in a laboratory setting has as yet eluded researchers. Cavity optomechanical systems, in which a high-quality optical resonator is parametrically coupled to a mechanical oscillator, hold great promise as a route towards the observation of such effects with macroscopic oscillators. Here, we present measurements on optomechanical systems exhibiting radiofrequency (62-122 MHz) mechanical modes, cooled to very low occupancy using a combination of cryogenic precooling and resolved-sideband laser cooling. The lowest achieved occupancy is n similar to 63. Optical measurements of these ultracold oscillators' motion are shown to perform in a near-ideal manner, exhibiting an imprecision-backaction product about one order of magnitude lower than the results obtained with nano-electromechanical transducers.

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Type
research article
DOI
10.1038/NPHYS1304
Web of Science ID

WOS:000268220100020

Author(s)
Schliesser, A.  
Arcizet, O.
Riviere, R.  
Anetsberger, G.
Kippenberg, T. J.  
Date Issued

2009

Published in
Nature Physics
Volume

5

Start page

509

End page

514

Subjects

Quantum-Noise Reduction

•

Radiation-Pressure

•

Nanomechanical Resonator

•

Back-Action

•

Interferometer

•

Cavity

•

Micromirror

•

Motion

•

Chip

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LPQM  
Available on Infoscience
November 30, 2010
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/60015
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