Robust Atom Optics for Large Momentum Transfer Atom Interferometry with Strontium-88
POSTER
Abstract
Large momentum transfer (LMT) atom interferometry requires atom optics with precise population and phase control, which are limited by factors such as cloud expansion, stray magnetic fields, and laser fluctuations. To allow greater momentum transfer under a broad range of experimental conditions, we use the quantum optimal control Python package developed by Q-CTRL to engineer amplitude and phase-modulated pulses for the 461 nm and 689 nm transitions of Sr-88. We have simulated pulses that maintain well over 99% population transfer and phase stability across several static and time-dependent noise channels, which couple as power, frequency, and polarization errors. We also report on progress towards implementation of the 689 nm pulses for point-source interferometry (PSI) with a hot (~1 mK) cloud [1][2]. The 6W output from a pair of Ti:sapphire lasers is shaped into arbitrary pulses via AOMs driven by an IQ modulated rf signal. Such pulses could also be used as wavefront diagnostics during operation of colder interferometers such as MAGIS-100 [3].
[1] Dickerson et al. Phys. Rev. Lett. 111 083001 (2013)
[2] Rudolph et al. Phys. Rev. Lett. 124 083604 (2020)
[3] Abe et al. Quantum Sci. Technol. 6 044003 (2021)
[1] Dickerson et al. Phys. Rev. Lett. 111 083001 (2013)
[2] Rudolph et al. Phys. Rev. Lett. 124 083604 (2020)
[3] Abe et al. Quantum Sci. Technol. 6 044003 (2021)
Presenters
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Garrett Louie
Northwestern University
Authors
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Garrett Louie
Northwestern University
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Tejas Deshpande
Northwestern University
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Zilin Chen
Northwestern University
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Tim Kovachy
Northwestern University