Ground-state cooling of a micromechanical oscillator: Comparing cold damping and cavity-assisted cooling schemes

C. Genes, D. Vitali, P. Tombesi, S. Gigan, and M. Aspelmeyer
Phys. Rev. A 77, 033804 – Published 3 March 2008; Erratum Phys. Rev. A 79, 039903 (2009)

Abstract

We provide a general framework to describe cooling of a micromechanical oscillator to its quantum ground state by means of radiation-pressure coupling with a driven optical cavity. We apply it to two experimentally realized schemes, back-action cooling via a detuned cavity and cold-damping quantum-feedback cooling, and we determine the ultimate quantum limits of both schemes for the full parameter range of a stable cavity. While both allow one to reach the oscillator’s quantum ground state, we find that back-action cooling is more efficient in the good cavity limit, i.e., when the cavity bandwidth is smaller than the mechanical frequency, while cold damping is more suitable for the bad cavity limit. The results of previous treatments are recovered as limiting cases of specific parameter regimes.

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  • Received 11 May 2007

DOI:https://doi.org/10.1103/PhysRevA.77.033804

©2008 American Physical Society

Erratum

Authors & Affiliations

C. Genes1, D. Vitali1, P. Tombesi1, S. Gigan2, and M. Aspelmeyer2

  • 1CNISM and Dipartimento di Fisica, Università di Camerino, I-62032 Camerino (MC), Italy
  • 2Institut für Experimentalphysik, Universität Wien, Boltzmanngasse 5, 1090 Wien, Austria and Institute for Quantum Optics and Quantum Information (IQOQI), Austrian Academy of Sciences, Boltzmanngasse 3, 1090 Wien, Austria

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Vol. 77, Iss. 3 — March 2008

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