搜索

x
中国物理学会期刊

利用多频推送光提升双磁光阱装置中的冷原子输运效率

Enhanced cold atom transfer in a double magneto-optical trap using a multi-frequency pushing laser

PDF
导出引用
  • 基于二维磁光阱和三维磁光阱组合的双磁光阱装置在冷原子领域有广泛的应用.如何提升双磁光阱装置中的冷原子输运效率仍是该领域的一个重要问题.二维磁光阱中的冷原子团呈现长条形,冷原子沿长条形方向的速度分布引起的多普勒展宽远大于原子的自然线宽.因此,单一频率的激光只能推送二维磁光阱中特定速度群的冷原子.本文提出并实验实现了一种利用多频推送光的冷原子输运方案.该方案通过一个电光调制器对单频推送光施加调制,产生的多频推送光可以有效推送较宽速度分布的原子.我们研究了多频推送光的功率、失谐量和驱动电光调制器的射频功率对三维磁光阱中的原子数和装载速率的影响.实验结果表明,采用多频推送光可以显著提升三维磁光阱中的原子数.在相同的推送光功率条件下,原子数的最大增幅超过40%.本文提出的多频推送光方案不仅发展了冷原子的制备技术,也将推动冷原子物理和量子精密测量等领域的发展.

    The dual magneto-optical trap scheme, which combines a two-dimensional magneto-optical trap (2D MOT) and a three-dimensional magneto-optical trap (3D MOT), has been widely used in quantum simulation, quantum computing, and quantum precision measurement. Enhancing the transfer efficiency of cold atoms in the dual MOT scheme remains one of the most critical challenges. The cold atom cloud in a 2D MOT is elongated due to the two-dimensional confinement. The Doppler broadening caused by the velocity distribution of cold atoms is much larger than the natural linewidth of the atoms. Therefore, when using a single frequency laser, it can only push cold atoms within a specific velocity range, which limits the overall efficiency of cold atom transfer.
    We propose and experimentally demonstrate a cold atom transfer scheme that employs a multi-frequency pushing laser. The scheme utilizes an electro-optic modulator (EOM) to modulate a single-frequency pushing laser, and the generating multi-frequency pushing laser is capable of effectively transferring atoms with a broad velocity distribution. By employing this scheme, we investigate the impacts of the pushing laser power, pushing laser detuning, and the RF power driving the EOM on the atom number and loading rate in a 3D MOT. The experimental results show that employing a multi-frequency pushing laser can significantly increase the atom number in the 3D MOT. With the same pushing laser power, the maximum increase in atom number can exceed 40%. Multi-frequency pushing lasers mainly enhance atom loading by expanding the range of atomic velocity groups subjected to effective pushing and increasing the proportion of atoms that can be captured by 3D MOT, without significantly changing their optimal loading conditions.
    Our proposed scheme is easy to implement and with minimal modifications to existing experimental systems. If combined with integrated optoelectronic technology to generate a customized multi-frequency pushing laser that matches the velocity distribution of cold atoms in 2D MOT, it will further enhance the transfer efficiency of cold atoms in a dual MOT apparatus and substantially reduce the preparation time of cold atoms. The proposed multi-frequency pushing laser scheme not only facilitates the efficient preparation of cold atoms, but also contributes to the development of fields such as cold atom physics and quantum precision measurement.

    目录

    返回文章
    返回
    Baidu
    map