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Interferometry with Interacting Bose-Einstein Condensates in a Double-Well Potential

English · Hardback

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Description

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This thesis demonstrates a full Mach-Zehnder interferometer with interacting Bose-Einstein condensates confined on an atom chip. It relies on the coherent manipulation of atoms trapped in a magnetic double-well potential, for which the author developed a novel type of beam splitter. Particle-wave duality enables the construction of interferometers for matter waves, which complement optical interferometers in precision measurement devices, both for technological applications and fundamental tests. This requires the development of atom-optics analogues to beam splitters, phase shifters and recombiners.
Particle interactions in the Bose-Einstein condensate lead to a nonlinearity, absent in photon optics. This is exploited to generate a non-classical state with reduced atom-number fluctuations inside the interferometer. This state is then used to study the interaction-induced dephasing of the quantum superposition. The resulting coherence times are found to be a factor of three longer than expected for coherent states, highlighting the potential of entanglement as a resource for quantum-enhanced metrology.

List of contents

Introduction.- Theoretical Framework.- Experimental Setup and Techniques.- A Mach-Zehnder Interferometer for Trapped, Interacting Bose-Einstein Condensates.- Outlook: Bosonic Josephson Junctions Beyond the Two-Mode Approximation.

About the author

Tarik Berrada studied physics and applied mathematics in Paris and Vienna. In 2009, he joined the group of Jörg Schmiedmayer at the Vienna University of Technology and worked for his PhD thesis on interferometry with trapped atomic Bose-Einstein condensates. After a post-doc in the same group, Tarik Berrada is now working on developing new forecast models for the energy market.

Summary

This thesis demonstrates a full Mach–Zehnder interferometer with interacting Bose–Einstein condensates confined on an atom chip. It relies on the coherent manipulation of atoms trapped in a magnetic double-well potential, for which the author developed a novel type of beam splitter. Particle-wave duality enables the construction of interferometers for matter waves, which complement optical interferometers in precision measurement devices, both for technological applications and fundamental tests. This requires the development of atom-optics analogues to beam splitters, phase shifters and recombiners.
Particle interactions in the Bose–Einstein condensate lead to a nonlinearity, absent in photon optics. This is exploited to generate a non-classical state with reduced atom-number fluctuations inside the interferometer. This state is then used to study the interaction-induced dephasing of the quantum superposition. The resulting coherence times are found to be a factor of three longer than expected for coherent states, highlighting the potential of entanglement as a resource for quantum-enhanced metrology.

Product details

Authors Tarik Berrada
Publisher Springer, Berlin
 
Languages English
Product format Hardback
Released 01.01.2015
 
EAN 9783319272320
ISBN 978-3-31-927232-0
No. of pages 229
Dimensions 162 mm x 242 mm x 19 mm
Weight 491 g
Illustrations XIX, 229 p. 89 illus., 67 illus. in color.
Series Springer Theses
Springer Theses
Subjects Natural sciences, medicine, IT, technology > Physics, astronomy > Theoretical physics

B, Tieftemperaturphysik, Quantum physics (quantum mechanics & quantum field theory), Physics and Astronomy, Quantum computers, Spintronics, Quantum Information Technology, Spintronics, Low Temperature Physics, Low temperatures, Condensed materials, Phase transformations (Statistical physics), Quantum Gases and Condensates

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