Zhang Shanchao, Chen J F, Liu Chang, Zhou Shuyu, Loy M M T, Wong G K L, Du Shengwang
Department of Physics, The Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong, China.
Rev Sci Instrum. 2012 Jul;83(7):073102. doi: 10.1063/1.4732818.
We describe the apparatus of a dark-line two-dimensional (2D) magneto-optical trap (MOT) of (85)Rb cold atoms with high optical depth (OD). Different from the conventional configuration, two (of three) pairs of trapping laser beams in our 2D MOT setup do not follow the symmetry axes of the quadrupole magnetic field: they are aligned with 45° angles to the longitudinal axis. Two orthogonal repumping laser beams have a dark-line volume in the longitudinal axis at their cross over. With a total trapping laser power of 40 mW and repumping laser power of 18 mW, we obtain an atomic OD up to 160 in an electromagnetically induced transparency (EIT) scheme, which corresponds to an atomic-density-length product NL = 2.05 × 10(15) m(-2). In a closed two-state system, the OD can become as large as more than 600. Our 2D MOT configuration allows full optical access of the atoms in its longitudinal direction without interfering with the trapping and repumping laser beams spatially. Moreover, the zero magnetic field along the longitudinal axis allows the cold atoms maintain a long ground-state coherence time without switching off the MOT magnetic field, which makes it possible to operate the MOT at a high repetition rate and a high duty cycle. Our 2D MOT is ideal for atomic-ensemble-based quantum optics applications, such as EIT, entangled photon pair generation, optical quantum memory, and quantum information processing.
我们描述了一种用于(85)Rb冷原子的具有高光深度(OD)的暗线二维(2D)磁光阱(MOT)装置。与传统配置不同,我们二维MOT装置中的三对捕获激光束中的两对不沿四极磁场的对称轴:它们与纵轴成45°角排列。两束正交的再泵浦激光束在交叉处的纵轴上有一个暗线体积。在电磁诱导透明(EIT)方案中,当捕获激光总功率为40 mW且再泵浦激光功率为18 mW时,我们获得了高达160的原子光深度,这对应于原子密度 - 长度乘积NL = 2.05×10(15)m(-2)。在封闭的二态系统中,光深度可高达600以上。我们的二维MOT配置允许在不干扰捕获和再泵浦激光束空间分布的情况下,在纵向上对原子进行完全光学访问。此外,沿纵轴的零磁场允许冷原子在不关闭MOT磁场的情况下保持较长的基态相干时间,这使得以高重复率和高占空比操作MOT成为可能。我们的二维MOT非常适合基于原子系综的量子光学应用,如EIT、纠缠光子对产生、光量子存储和量子信息处理。