State-Insensitive trapping of alkaline-earth atoms in a nanofiber-based optical dipole trap
ORAL
Abstract
Neutral atoms that are optically trapped using the evanescent fields surrounding optical nanofibers are a promising platform for developing quantum technologies and exploring fundamental science, such as quantum networks and many-body physics of interacting photons. Building on the successful advancements with trapped alkali atoms, here we trap strontium-88 atoms, an alkaline-earth element, in a state-insensitive, nanofiber-based optical dipole trap using the evanescent fields of an optical nanofiber. Employing a two-color, double magic-wavelength trapping scheme, we realize state-insensitive trapping of the atoms for the kilohertz-wide 1S0−3P1,|m|=1 intercombination transition, which we verify by performing high-resolution spectroscopy for an atom-surface distance of about 300 nm. Alkaline-earth atoms also exhibit nonmagnetic ground states and ultranarrow linewidth transitions making them ideal candidates for atomic clocks and precision metrology applications, especially with state-insensitive traps. Additionally, given the low collisional scattering length specific to strontium-88, this work also lays the foundation for developing versatile and robust matter-wave atomtronic circuits over nanophotonic waveguides.
* Supported by the Office of Naval Research under Grants No. N00014-20-1-2513 and No. N00014-20-1-2693 and NSF Grant No. PHY-2012068
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Publication: PRX Quantum 4, 040308 (2023)
Presenters
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Julio T Barreiro
University of California San Diego
Authors
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Julio T Barreiro
University of California San Diego
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Grady Kestler
University of California San Diego
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Khang Ton
University of California San Diego
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Dmytro Filin
University of Delaware
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Charles Cheung
University of Delaware
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Philipp Schneeweiss
Humboldt Universität zu Berlin
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Thomas Hoinkes
Humboldt Universität zu Berlin
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J. Volz
Humboldt Universität zu Berlin
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Marianna Safronova
U Delaware
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Arno Rauschenbeutel
Humboldt Universität zu Berlin