Deep Laser Cooling of Thulium Atoms to Sub-µK Temperatures in Magneto-Optical Trap

Author:

Provorchenko Daniil1ORCID,Tregubov Dmitry1ORCID,Mishin Denis1,Yaushev Mikhail1,Kryuchkov Denis1,Sorokin Vadim1,Khabarova Ksenia12,Golovizin Artem1ORCID,Kolachevsky Nikolay12

Affiliation:

1. The Lebedev Physical Institute of the Russian Academy of Sciences, Moscow 119991, Russia

2. Russian Quantum Center, Moscow 121205, Russia

Abstract

Deep laser cooling of atoms, ions, and molecules facilitates the study of fundamental physics as well as applied research. In this work, we report on the narrow-line laser cooling of thulium atoms at the wavelength of 506.2nm with the natural linewidth of 7.8kHz, which widens the limits of atomic cloud parameters control. Temperatures of about 400nK, phase-space density of up to 3.5×10−4 and 2×106 number of trapped atoms were achieved. We have also demonstrated formation of double cloud structure in an optical lattice by adjusting parameters of the 506.2nm magneto-optical trap. These results can be used to improve experiments with BEC, atomic interferometers, and optical clocks.

Funder

Russian Science Foundation

Publisher

MDPI AG

Subject

Condensed Matter Physics,Nuclear and High Energy Physics,Atomic and Molecular Physics, and Optics

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