Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving

被引:0
作者
Li, Jiaming [1 ]
de Melo, Leonardo F. [1 ]
Luo, Le [1 ]
机构
[1] Indiana Univ Purdue Univ Indianapolis IUPUI, Dept Phys, Indianapolis, IN 46202 USA
来源
JOVE-JOURNAL OF VISUALIZED EXPERIMENTS | 2017年 / 121期
关键词
Engineering; Issue; 121; Laser Cooling; Laser Trapping; Ultracold Atoms; Optical Dipole Trap; Parametric Cooling; Degenerate Fermi Gas; STABILIZATION; ATOMS;
D O I
10.3791/55409
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
We present a cooling method for a cold Fermi gas by parametrically driving atomic motions in a crossed-beam optical dipole trap (ODT). Our method employs the anharmonicity of the ODT, in which the hotter atoms at the edge of the trap feel the anharmonic components of the trapping potential, while the colder atoms in the center of the trap feel the harmonic one. By modulating the trap depth with frequencies that are resonant with the anharmonic components, we selectively excite the hotter atoms out of the trap while keeping the colder atoms in the trap, generating parametric cooling. This experimental protocol starts with a magneto-optical trap (MOT) that is loaded by a Zeeman slower. The precooled atoms in the MOT are then transferred to an ODT, and a bias magnetic field is applied to create an interacting Fermi gas. We then lower the trapping potential to prepare a cold Fermi gas near the degenerate temperature. After that, we sweep the magnetic field to the noninteracting regime of the Fermi gas, in which the parametric cooling can be manifested by modulating the intensity of the optical trapping beams. We find that the parametric cooling effect strongly depends on the modulation frequencies and amplitudes. With the optimized frequency and amplitude, we measure the dependence of the cloud energy on the modulation time. We observe that the cloud energy is changed in an anisotropic way, where the energy of the axial direction is significantly reduced by parametric driving. The cooling effect is limited to the axial direction because the dominant anharmonicity of the crossed-beam ODT is along the axial direction. Finally, we propose to extend this protocol for the trapping potentials of large anharmonicity in all directions, which provides a promising scheme for cooling quantum gases using external driving.
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页数:11
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