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research article

Near-field cavity optomechanics with nanomechanical oscillators

Anetsberger, G.
•
Arcizet, O.
•
Unterreithmeier, Q. P.
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2009
Nature Physics

Cavity-enhanced radiation-pressure coupling between optical and mechanical degrees of freedom allows quantum-limited position measurements and gives rise to dynamical backaction, enabling amplification and cooling of mechanical motion. Here, we demonstrate purely dispersive coupling of high-Q nanomechanical oscillators to an ultrahigh-finesse optical microresonator via its evanescent field, extending cavity optomechanics to nanomechanical oscillators. Dynamical backaction mediated by the optical dipole force is observed, leading to laser-like coherent nanomechanical oscillations solely due to radiation pressure. Moreover, sub-fm Hz(-1/2) displacement sensitivity is achieved, with a measurement imprecision equal to the standard quantum limit (SQL), which coincides with the nanomechanical oscillator's zero-point fluctuations. The achievement of an imprecision at the SQL and radiation-pressure dynamical backaction for nanomechanical oscillators may have implications not only for detecting quantum phenomena in mechanical systems, but also for a variety of other precision experiments. Owing to the flexibility of the near-field coupling platform, it can be readily extended to a diverse set of nanomechanical oscillators. In addition, the approach provides a route to experiments where radiation-pressure quantum backaction dominates at room temperature, enabling ponderomotive squeezing or quantum non-demolition measurements.

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Type
research article
DOI
10.1038/NPHYS1425
Web of Science ID

WOS:000273086700020

Author(s)
Anetsberger, G.
Arcizet, O.
Unterreithmeier, Q. P.
Riviere, R.  
Schliesser, A.  
Weig, E. M.
Kotthaus, J. P.
Kippenberg, Tobias  
Date Issued

2009

Published in
Nature Physics
Volume

5

Start page

909

End page

914

Subjects

Radiation-Pressure

•

Quantum

•

Micromirror

•

Resonators

•

Systems

•

Motion

•

Noise

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/20.500.14299/59529
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