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David Hunger

A Bose-Einstein condensate coupled to a micromechanical oscillator


Exploring novel interfaces for ultracold atoms
2010. 188 S. 220 mm
Verlag/Jahr: SÜDWESTDEUTSCHER VERLAG FÜR HOCHSCHULSCHRIFTEN 2010
ISBN: 3-8381-1836-7 (3838118367)
Neue ISBN: 978-3-8381-1836-9 (9783838118369)

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Ultracold neutral atoms can be trapped and coherently manipulated close to a surface using chip-based magnetic microtraps. This opens the possibility of studying interactions between atoms and on-chip solid-state systems such as micro- and nanostructured mechanical oscillators. This thesis reports experiments, where a controlled coupling between a Bose-Einstein condensate and a micromechanical oscillator is realized for the first time. The interaction relies on surface forces experienced by the atoms trapped at about 1 micrometer distance from the mechanical structure. The surface forces are used to resonantly couple the mechanical motion of the oscillator to collective motion of the atoms. Coupling via surface forces does not require magnets, electrodes, or mirrors on the oscillator and could thus be employed to couple atoms to molecular-scale oscillators such as carbon nanotubes. In the long-term, the toolbox for quantum manipulation of ultracold atoms could be employed to read out, cool, and coherently manipulate the quantum state of a mechanical oscillator. The thesis discusses three different scenarios that could enable atom-oscillator coupling at the quantum level.
David Hunger studied physics at the Ludwig-Maximilians Universityin Munich and at the University of Sevilla. For his Phd thesis hejoined the team of Philipp Treutlein in the group of TheodorHänsch to study interactions between ultracold atoms andmechanical oscillators.