Please use this identifier to cite or link to this item: https://www.um.edu.mt/library/oar/handle/123456789/27844
Title: Classical theory of mirror-mediated cooling
Authors: Bateman, James
Xuereb, Andre
Ohadi, Hamid
Cooper, Nicholas
Freegarde, Tim
Keywords: Optomechanics
Cooling
Quantum optics
Issue Date: 2009
Publisher: Quantum Control group
Citation: Bateman, J., Cooper, N., Freegarde, T., Ohadi, H., & Xuereb, A. (2009). Classical theory of mirror-mediated cooling. CMMC Workshop on "Cavity Cooling of atoms, molecules and ions", Obergurgl. 149.
Abstract: We have calculated, using a classical approach, the frictional force on a polarisable particle which is illuminated with far-detuned light and coupled, via the dipole force, to its reflection. Established methods for cooling atoms with light require a closed optical transition; they rely on the atom to provide the necessary dissipation. A new breed of techniques is emerging in which particles and light are coupled using the dipole rather than the scattering force; for these, it is the light, not the particle, which provides dissipation. Examples include cavity-mediated cooling and the proposed mirror-mediated cooling. For these techniques, the only property required of the particle is that it be polarisable; specifically, there is no need for a closed optical transition. Potentially, we can achieve direct, optical cooling of molecules and even much larger structures, such as micro-cantilevers.
URI: https://www.um.edu.mt/library/oar//handle/123456789/27844
Appears in Collections:Scholarly Works - FacSciPhy

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