Clock-line-mediated Sisyphus Cooling
Chun-Chia Chen, Jacob L. Siegel, Benjamin D. Hunt, Tanner Grogan,, Youssef S. Hassan, Kyle Beloy, Kurt Gibble, Roger C. Brown, Andrew D. Ludlow

TL;DR
This paper demonstrates sub-recoil Sisyphus cooling of ytterbium atoms using a clock transition, resulting in ultra-cold temperatures that enhance optical lattice clock performance and reduce quantum noise.
Contribution
It introduces a novel clock-line-mediated Sisyphus cooling method that achieves sub-recoil temperatures in ytterbium atoms, improving quantum metrology applications.
Findings
Achieved temperatures below 200 nK in 1D optical lattice
Enhanced atom loading efficiency into the optical lattice
Cooling method applicable as pulsed or continuous process
Abstract
We demonstrate sub-recoil Sisyphus cooling using the long-lived clock state in alkaline-earth-like ytterbium. A 1388 nm optical standing wave nearly resonant with the transition creates a spatially periodic light shift of the clock state. Following excitation on the ultranarrow clock transition, we observe Sisyphus cooling in this potential, as the light shift is correlated with excitation to and subsequent spontaneous decay to the ground state. We observe that cooling enhances the loading efficiency of atoms into a 759 nm magic-wavelength one-dimensional (1D) optical lattice, as compared to standard Doppler cooling on the transition. Sisyphus cooling yields temperatures below 200 nK in the…
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Taxonomy
TopicsSympathectomy and Hyperhidrosis Treatments
