Quantum theory of optomechanical cooling
We review the quantum theory of cooling of a mechanical oscillator subject to the radiation pressure force due to light circulating inside a driven optical cavity. Such optomechanical setups have been used recently in a series of experiments by various groups to cool mechanical oscillators (such as...
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          | Published in | Journal of modern optics Vol. 55; no. 19-20; pp. 3329 - 3338 | 
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| Main Authors | , , | 
| Format | Journal Article Conference Proceeding | 
| Language | English | 
| Published | 
        Abingdon
          Taylor & Francis Group
    
        10.11.2008
     Taylor & Francis  | 
| Subjects | |
| Online Access | Get full text | 
| ISSN | 0950-0340 1362-3044  | 
| DOI | 10.1080/09500340802454971 | 
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| Summary: | We review the quantum theory of cooling of a mechanical oscillator subject to the radiation pressure force due to light circulating inside a driven optical cavity. Such optomechanical setups have been used recently in a series of experiments by various groups to cool mechanical oscillators (such as cantilevers) by factors reaching 10
5
, and they may soon go to the ground state of mechanical motion. We emphasize the importance of the sideband-resolved regime for ground state cooling, where the cavity ring-down rate is smaller than the mechanical frequency. Moreover, we illustrate the strong coupling regime, where the cooling rate exceeds the cavity ring-down rate and where the driven cavity resonance and the mechanical oscillation hybridize. | 
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| Bibliography: | SourceType-Scholarly Journals-2 ObjectType-Feature-2 ObjectType-Conference Paper-1 content type line 23 SourceType-Conference Papers & Proceedings-1 ObjectType-Article-3  | 
| ISSN: | 0950-0340 1362-3044  | 
| DOI: | 10.1080/09500340802454971 |