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Open Quantum Systems Decoherence

Radiation-pressure self-cooling of a micromirror in a cryogenic environment

arXiv
Authors: Simon Groeblacher, Sylvain Gigan, Hannes R. Boehm, Anton Zeilinger, Markus Aspelmeyer

Year

2007

Paper ID

50372

Status

Preprint

Abstract Read

~2 min

Abstract Words

118

Citations

N/A

Abstract

We demonstrate radiation-pressure cavity-cooling of a mechanical mode of a micromirror starting from cryogenic temperatures. To achieve that, a high-finesse Fabry-Perot cavity Fapprox 2200 was actively stabilized inside a continuous-flow 4He cryostat. We observed optical cooling of the fundamental mode of a 50mu x 50 mu x 5.4 mu singly-clamped micromirror at ω_m=3.5 MHz from 35 K to approx. 290 mK. This corresponds to a thermal occupation factor of <n>\approx 1x10^4. The cooling performance is only limited by the mechanical quality and by the optical finesse of the system. Heating effects, e.g. due to absorption of photons in the micromirror, could not be observed. These results represent a next step towards cavity-cooling a mechanical oscillator into its quantum ground state.

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  • This paper contributes to the Open Quantum Systems & Decoherence research area in the Quantum Articles archive.
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  • We demonstrate radiation-pressure cavity-cooling of a mechanical mode of a micromirror starting from cryogenic temperatures.

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