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Cavity Opto-Mechanics

Optics Express · 2007 · Vol. 15(25) · pp. 17172–17172
Tobias J. KippenbergKerry J. Vahala

Abstract

The coupling of mechanical and optical degrees of freedom via radiation pressure has been a subject of early research in the context of gravitational wave detection. Recent experimental advances have allowed studying for the first time the modifications of mechanical dynamics provided by radiation pressure. This paper reviews the consequences of back-action of light confined in whispering-gallery dielectric microcavities, and presents a unified treatment of its two manifestations: notably the parametric instability (mechanical amplification and oscillation) and radiation pressure back-action cooling. Parametric instability offers a novel "photonic clock" which is driven purely by the pressure of light. In contrast, radiation pressure cooling can surpass existing cryogenic technologies and offers cooling to phonon occupancies below unity and provides a route towards cavity Quantum Optomechanics.

Mechanical and Optical ResonatorsGeophysics and Sensor TechnologyAdvanced MEMS and NEMS TechnologiesOptomechanicsRadiation pressurePhysicsOpticsWhispering-gallery waveContext (archaeology)Laser coolingPhotonicsQuantum opticsInstability

Funding

  • California Institute of Technology
  • Ministry of Education, Culture, Sports, Science and Technology
  • Defense Advanced Research Projects Agency
Citations
781
FWCI
23.68
field-weighted impact
References
71
Percentile
100%
vs. same field & year
Citations per year
Cited by
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References
Cooling of gases by laser radiation
Optics Communications · 1975 · 1,019 citations
Quantum-mechanical noise in an interferometer
Physical review. D. Particles, fields, gravitation, and cosmology/Physical review. D. Particles and fields · 1981 · 3,082 citations
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