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Stroboscopic quantum optomechanics

delete2020-05-28
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OA
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M
Matteo Brunelli *
D
Daniel Malz
A
Albert Schließer
A
Andreas Nunnenkamp
DOI:10.1103/PhysRevResearch.2.023241delete
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Abstract

Abstract

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We consider an optomechanical cavity that is driven stroboscopically by a train of short pulses. By suitably choosing the interpulse spacing we show that ground-state cooling and mechanical squeezing can be achieved, even in the presence of mechanical dissipation and for moderate radiation-pressure interaction. We provide a full quantum-mechanical treatment of stroboscopic backaction-evading measurements, for which we give a simple analytic insight, and discuss preparation and verification of squeezed mechanical states. We further consider stroboscopic driving of a pair of noninteracting mechanical resonators coupled to a common cavity field, and show that they can be simultaneously cooled and entangled. Stroboscopic quantum optomechanics extends measurement-based quantum control of mechanical systems beyond the good-cavity limit.
Keywords:
OSCILLATOR
MOTION
STATE
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Physical Review Research cover
Physical Review Research
IF:
4.2
Papers:
7.6K
Citations:
2.7W

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U
University of Copenhagen
Scholars:
7.6W
Papers: 6.6W
Citations: 86
U
University of Cambridge
Scholars:
7.7W
Papers: 7.1W
Citations: 13.7W
M
Max Planck Society
Scholars:
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Papers: 7.7W
Citations: 3.3W
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