Optical Dipole Trap for Laser-Cooled Lithium-7 Atoms


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Abstract

In this work, we discuss a far-off resonance optical dipole trap for cold lithium-7 atoms. A single optical trapping beam was produced by a continuous-wave fiber laser. Using our experimental data, we obtained important parameters of the trap, such as size of the cold atomic cloud, and evaluate the dipole potential and the rate of the trap losses. Information on temperature is acquired from observation of parametric resonances. We investigate the parametric resonances obtained with strong modulation of the trap potential and record superharmonics. We plan to prepare ultra-cold gas of highly-excited lithium atoms and study interactions between Rydberg atoms.

About the authors

Vladimir A. Sautenkov

Joint Institute for High Temperatures, Russian Academy of Sciences

Author for correspondence.
Email: vsautenkov@gmail.com
Russian Federation, Izhorskaya Street 13, Moscow, 125412

Sergey A. Saakyan

Joint Institute for High Temperatures, Russian Academy of Sciences

Email: vsautenkov@gmail.com
Russian Federation, Izhorskaya Street 13, Moscow, 125412

Andrey A. Bobrov

Joint Institute for High Temperatures, Russian Academy of Sciences

Email: vsautenkov@gmail.com
Russian Federation, Izhorskaya Street 13, Moscow, 125412

Daniil A. Kudrinskiy

Joint Institute for High Temperatures, Russian Academy of Sciences

Email: vsautenkov@gmail.com
Russian Federation, Izhorskaya Street 13, Moscow, 125412

Eugenia V. Vilshanskaya

Joint Institute for High Temperatures, Russian Academy of Sciences

Email: vsautenkov@gmail.com
Russian Federation, Izhorskaya Street 13, Moscow, 125412

Boris B. Zelener

Joint Institute for High Temperatures, Russian Academy of Sciences

Email: vsautenkov@gmail.com
Russian Federation, Izhorskaya Street 13, Moscow, 125412

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