Reference frame-independent model of a collective excitation atom interferometer
B. J. Mommers, M. W. J. Bromley

TL;DR
This paper presents a theoretical and simulation-based analysis of a ring-trapped BEC Sagnac interferometer, introducing a rotation detection method based on amplitude imbalances in phonon modes, with implications for rotation sensing.
Contribution
It offers a new analytic model for the interferometric phase shift in a BEC-based Sagnac interferometer, including mean-field interactions, validated by simulations.
Findings
Analytic expressions for phase shift in 1D interferometer
Simulation results agree with theoretical predictions
Clarification of superfluidity's role in the interferometer
Abstract
We theoretically analyze the operating principles of a proposed matter-wave Sagnac interferometer utilizing Bose-Einstein condensate (BEC) phonon modes as an interference medium. Previous work found that the orbital angular momentum phonon modes of a ring-trapped BEC are split in frequency by rotations, leading to a measurable rotation signal. We develop an alternate description in which an imbalance in the counter-propagating modes' amplitudes (populations) is induced by the rotation of the system during condensation. This description gives analytic forms for the interferometric phase shift in 1D and is readily generalized to include mean-field interactions. To validate our findings, we simulate a ring-trapped BEC Sagnac interferometer in one dimension and demonstrate that measurement of an unknown rotation rate can be performed using a modified analysis. Our simulation data show…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Advanced Frequency and Time Standards
