DOE OSTI · 2397383
High-performance silicon photonic single-sideband modulators for cold-atom interferometry
Abstract
The laser system is the most complex component of a light-pulse atom interferometer (LPAI), controlling frequencies and intensities of multiple laser beams to configure quantum gravity and inertial sensors. Its main functions include cold-atom generation, state preparation, state-selective detection, and generating a coherent two-photon process for the light-pulse sequence. To achieve substantial miniaturization and ruggedization, we integrate key laser system functions onto a photonic integrated circuit. Our study focuses on a high-performance silicon photonic suppressed-carrier single-sideband (SC-SSB) modulator at 1560 nanometers, capable of dynamic frequency shifting within the LPAI. By independently controlling radio frequency (RF) channels, we achieve 30-decibel carrier suppression and unprecedented 47.8-decibel sideband suppression at peak conversion efficiency of –6.846 decibels (20.7%). We investigate imbalances in both amplitudes and phases between the RF signals. Using this modulator, we demonstrate cold-atom generation, state-selective detection, and atom interferometer fringes to estimate gravitational acceleration, g ≈ 9.77 ± 0.01 meters per second squared, in a rubidium ( 87 Rb) atom system.
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Kodigala, Ashok, Gehl, Michael, Hoth, Gregory William, Lee, Jongmin, DeRose, Christopher Todd, Pomerene, Andrew, Dallo, Christina Mary, Trotter, Douglas, Starbuck, Andrew Lea, Biedermann, Grant, Schwindt, Peter D., Lentine, Anthony L.. 2024-07-12. High-performance silicon photonic single-sideband modulators for cold-atom interferometry. https://doi.org/10.1126/sciadv.ade4454
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