• Chinese Physics B
  • Vol. 29, Issue 8, (2020)
Ji-Zhou Wu1、2, Yu-Qing Li1、2、†, Wen-Liang Liu1、2, Peng Li3, Xiao-Feng Wang1, Peng Chen1, Jie Ma1、2、3, Lian-Tuan Xiao1、2, and Suo-Tang Jia1、2
Author Affiliations
  • 1State Key Laboratory of Quantum Optics and Quantum Optics Devices, Institute of Laser Spectroscopy, Shanxi University, Taiyuan 030006, China
  • 2Collaborative Innovation Center of Extreme Optics, Shanxi University, Taiyuan 030006, China
  • 3College of Physics and Electronics Engineering, Shanxi University, Taiyuan 00006, China
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    DOI: 10.1088/1674-1056/ab9611 Cite this Article
    Ji-Zhou Wu, Yu-Qing Li, Wen-Liang Liu, Peng Li, Xiao-Feng Wang, Peng Chen, Jie Ma, Lian-Tuan Xiao, Suo-Tang Jia. Enhancement of the photoassociation of ultracold atoms via a non-resonant magnetic field Ji-Zhou Wu([J]. Chinese Physics B, 2020, 29(8): Copy Citation Text show less
    (a) Experimental setup. Raman lasers 1–4 and an optical pumping laser are applied to implement the Raman sideband cooling. Dipole lasers 1 and 2 are applied to construct the crossed dipole trap. Bias coils are used to produce the external magnetic field. The probe laser passes through the trapped atoms, and the number and density of atoms are measured using the absorption image technique. (b) Experimental sequence for manipulation of the magnetic field, PA laser, and probe laser of absorption image.
    Fig. 1. (a) Experimental setup. Raman lasers 1–4 and an optical pumping laser are applied to implement the Raman sideband cooling. Dipole lasers 1 and 2 are applied to construct the crossed dipole trap. Bias coils are used to produce the external magnetic field. The probe laser passes through the trapped atoms, and the number and density of atoms are measured using the absorption image technique. (b) Experimental sequence for manipulation of the magnetic field, PA laser, and probe laser of absorption image.
    (a) PA spectrum of the v = 10 vibrational level of Cs2 long-range 0g− state without the magnetic field. (b) The number of atoms as a function of the frequency detuning of the PA laser with the magnetic fields of 87 G (red dots), 96 G (violet dots), 108 G (green dots), and 120 G (navy dots) for J = 2. The solid curves are the fittings using a Lorentzian function.
    Fig. 2. (a) PA spectrum of the v = 10 vibrational level of Cs2 long-range 0g state without the magnetic field. (b) The number of atoms as a function of the frequency detuning of the PA laser with the magnetic fields of 87 G (red dots), 96 G (violet dots), 108 G (green dots), and 120 G (navy dots) for J = 2. The solid curves are the fittings using a Lorentzian function.
    (a) Theoretical scattering length. (b) PA rate coefficient as a function of magnetic field for rotational level J = 2 in v = 10. The dots are experimental data. The solid lines are the results of theoretical calculation. The dashed lines show the PA rate coefficient without the magnetic field.
    Fig. 3. (a) Theoretical scattering length. (b) PA rate coefficient as a function of magnetic field for rotational level J = 2 in v = 10. The dots are experimental data. The solid lines are the results of theoretical calculation. The dashed lines show the PA rate coefficient without the magnetic field.
    Ji-Zhou Wu, Yu-Qing Li, Wen-Liang Liu, Peng Li, Xiao-Feng Wang, Peng Chen, Jie Ma, Lian-Tuan Xiao, Suo-Tang Jia. Enhancement of the photoassociation of ultracold atoms via a non-resonant magnetic field Ji-Zhou Wu([J]. Chinese Physics B, 2020, 29(8):
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