2000-times repeated imaging of strontium atoms in clock-magic tweezer arrays
Abstract
We demonstrate single-atom resolved imaging with a survival probability of 0.99932(8) and a fidelity of 0.99991(1), enabling us to perform repeated high-fidelity imaging of single atoms in tweezers for thousands of times. We further observe lifetimes under laser cooling of more than seven minutes, an order of magnitude longer than in previous tweezer studies. Experiments are performed with strontium atoms in 813.4 nm tweezer arrays, which is at a magic wavelength for the clock transition. Tuning to this wavelength is enabled by off-magic Sisyphus cooling on the intercombination line, which lets us choose the tweezer wavelength almost arbitrarily. We find that a single not retro-reflected cooling beam in the radial direction is sufficient for mitigating recoil heating during imaging. Moreover, this cooling technique yields temperatures below 5 μK, as measured by release and recapture. Finally, we demonstrate clock-state resolved detection with average survival probability of 0.996(1) and average state detection fidelity of 0.981(1). Our work paves the way for atom-by-atom assembly of large defect-free arrays of alkaline-earth atoms, in which repeated interrogation of the clock transition is an imminent possibility.
Additional Information
© 2019 American Physical Society. Received 11 December 2018; published 1 May 2019. We acknowledge funding provided by the Institute for Quantum Information and Matter, an NSF Physics Frontiers Center (NSF Grant No. PHY-1733907). This work was supported by the NSF CAREER award (Grant No. 1753386), the Sloan Foundation, by the NASA/JPL President's and Director's Fund, and by Fred Blum. J. P. C. acknowledges support from the PMA Prize postdoctoral fellowship, and A. C. acknowledges support from the IQIM Postdoctoral Scholar fellowship.Attached Files
Published - PhysRevLett.122.173201.pdf
Submitted - 1811.06014.pdf
Supplemental Material - SM.pdf
Supplemental Material - videoTweezerArray.mp4
Files
Additional details
- Eprint ID
- 92429
- Resolver ID
- CaltechAUTHORS:20190123-112141969
- Institute for Quantum Information and Matter (IQIM)
- NSF
- PHY-1733907
- NSF
- PHY-1753386
- Alfred P. Sloan Foundation
- JPL President and Director's Fund
- Fred Blum
- Created
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2019-01-23Created from EPrint's datestamp field
- Updated
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2021-11-16Created from EPrint's last_modified field
- Caltech groups
- Institute for Quantum Information and Matter