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Journal Article

Dynamic Brillouin cooling for continuous optomechanical systems

MPS-Authors
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Zhu,  Changlong
Stiller Research Group, Research Groups, Max Planck Institute for the Science of Light, Max Planck Society;

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Stiller,  Birgit
Stiller Research Group, Research Groups, Max Planck Institute for the Science of Light, Max Planck Society;

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Citation

Zhu, C., & Stiller, B. (2023). Dynamic Brillouin cooling for continuous optomechanical systems. Materials for Quantum Technology, 3: 015003. doi:10.1088/2633-4356/acc2a5.


Cite as: https://hdl.handle.net/21.11116/0000-000D-3C1B-3
Abstract
Up until now, ground state cooling using optomechanical interaction is realized in the regime where optical dissipation is higher than mechanical dissipation. Here, we demonstrate that optomechanical ground state cooling in a continuous optomechanical system is possible by using backward Brillouin scattering while mechanical dissipation exceeds optical dissipation which is the common case in optical waveguides. The cooling is achieved in an anti-Stokes backward Brillouin process by modulating the intensity of the optomechanical coupling via a pulsed pump to suppress heating processes in the strong coupling regime. With such dynamic modulation, a significant cooling factor can be achieved, which can be several orders of magnitude lower than for the steady-state case. This modulation scheme can also be applied to Brillouin cooling generated by forward intermodal Brillouin scattering.