High sensitivity multi-axes rotation sensing using large momentum transfer point source atom interferometry
Jinyang Li, Greg\'orio R. M. da Silva, Wayne C. Huang, Mohamed Fouda,, Timothy L. Kovachy, and Selim M. Shahriar

TL;DR
This paper explores enhancing multi-axes rotation sensitivity in point source atom interferometers by employing large momentum transfer sequences, analyzing quantum effects, and optimizing pulse parameters to maximize sensitivity gains.
Contribution
It introduces a quantum mechanical model for PSI with large momentum transfer, identifying optimal pulse numbers and Rabi frequencies for maximum sensitivity enhancement.
Findings
Maximum sensitivity enhancement factor of ~39 at 69x momentum transfer.
Sensitivity scales with Rabi frequency to the power of 4/5.
Optimal number of pulses balances enhancement and spontaneous emission effects.
Abstract
A point source interferometer (PSI) is a device where atoms are split and recombined by applying a temporal sequence of Raman pulses during the expansion of a cloud of cold atoms behaving approximately as a point source. The PSI can work as a sensitive multi-axes gyroscope that can automatically filter out the signal from accelerations. The phase shift arising from rotations is proportional to the momentum transferred to each atom from the Raman pulses. Therefore, by increasing the momentum transfer, it should be possibly to enhance the sensitivity of the PSI. Here, we investigate the degree of enhancement in sensitivity that could be achieved by augmenting the PSI with large momentum transfer (LMT) employing a sequence of many Raman pulses with alternating directions. Contrary to typical approaches used for describing a PSI, we employ a model under which the motion of the center of…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Advanced Frequency and Time Standards · Geophysics and Sensor Technology
