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Manipulation of photoassociation of ultracold Cs atoms with tunable scattering length by external magnetic fields

机译:外部磁场对散射长度可调的超冷Cs原子的光缔合作用

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摘要

We demonstrate that for ultracold, optically trapped Cs atoms the photoassociation (PA) can be manipulated by using external uniform magnetic fields due to the alteration of the scattering wavefunction in the region of the free–bound optical transition. We present PA–induced atom loss measurements with the same intensity for PA laser but different external magnetic fields, and analyze main contributions of the PA to the variation of the number of atoms in the trap. The PA rate exhibits a strong dependence on the changing uniform magnetic field. The experimental data are simulated within the model of a single–channel one–well rectangular potential, whose depth is adjusted so as to assure the predicted variation of the scattering length with the magnetic field. The computational and experimental results are in a reasonable agreement to each other. The same model is used to illustrate some general properties of the two–body quantum system in the near–threshold state.
机译:我们证明,对于超冷,光学捕获的Cs原子,由于自由束缚光跃迁区域中散射波函数的变化,可以通过使用外部均匀磁场来操纵光缔合(PA)。我们介绍了PA激发强度相同但外部磁场不同的PA引起的原子损失测量,并分析了PA对阱中原子数变化的主要贡献。 PA速率显示出对变化的均匀磁场的强烈依赖性。在单通道单井矩形电势模型中对实验数据进行了仿真,并对其​​深度进行了调整,以确保散射长度随磁场的预测变化。计算结果和实验结果彼此合理一致。相同的模型用于说明处于近阈值状态的两体量子系统的一些一般性质。

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