Cavity Optomechanics: Back-Action at the Mesoscale. T. J. Kippenberg1,*,†,; K. J. Vahala2,*. 1 Max Planck Institute für Quantenoptik, Recent experiments have reached a regime where the back- action of photons caused by radiation pressure can influence the optomechanical dynamics, giving . Cavity Optomechanics: Backaction-Cooling of Mechanical Oscillators Kippenberg, T. J. & Vahala, K. J. Cavity Optomechanics: Backaction at the mesoscale.

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Cavity optomechanics: back-action at the mesoscale.

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Stefan Strauf 18 Estimated H-index: A picogram- and nanometre-scale photonic-crystal optomechanical cavity nature [IF: Science 21 December VolIssue Tal Carmon 27 Estimated H-index: Cohadon 20 Estimated H-index: Atomic Resolution Microscopy Radionuclide Imaging. Strong dispersive coupling of a high-finesse cavity to a micromechanical membrane.


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Deterministic preparation of highly non-classical macroscopic quantum states Ludovico LatmiralFlorian Mintert Please log in to add an alert for this article. Constanze MetzgerKhaled Karrai.

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Cavity optomechanics: back-action at the mesoscale.

Macroscopic quantum oscillator based on a flux qubit. Log in through your institution Log in via OpenAthens. Dynamical backaction cooling with free electrons. Cavity cooling of a microlever nature [IF: Back-Action at the Mesoscale.

Radiation-pressure cooling and optomechanical instability of a micromirror. Detectors Search for additional papers on this topic. Showing of 3 references. Working Life Forced to change—for good. Constanze Metzger 5 Estimated H-index: Citation Statistics Citations 0 50 ’09 ’11 ’13 ’15 ‘ Recent experiments have reached a regime where the back-action of photons caused by radiation pressure can influence the optomechanical dynamics, giving rise to a host of long-anticipated phenomena.


References Publications referenced by this paper. Message Body Your Name thought you would like to see this page from the Science web site. You are going to email the following Cavity Optomechanics: The coupling of optical and mechanical degrees of freedom is the underlying principle of many techniques to measure mechanical displacement, from macroscale gravitational wave detectors to microscale cantilevers used in scanning probe microscopy.

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