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A misaligned magneto-optical trap to enable miniaturized atom chip systems

机译:一个未对准的磁光阱,以实现小型化原子芯片系统

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We describe the application of displaced, or misaligned, beams in a mirror-based magneto-optical trap (MOT) to enable portable and miniaturized atom chip experiments where optical access is limited to a single window. Two different geometries of beam displacement are investigated: a variation on the well-known ‘vortex-MOT’, and the other a novel ‘hybrid-MOT’ combining Zeeman-shifted and purely optical scattering force components. The beam geometry is obtained similar to the mirror-MOT, using a planar mirror surface but with a different magnetic field geometry more suited to planar systems. Using these techniques, we have trapped around 6?×?106 and 26?×?106 atoms of 85Rb in the vortex-MOT and hybrid-MOT respectively. For the vortex-MOT the atoms are directly cooled well below the Doppler temperature without any additional sub-Doppler cooling stage, whereas the temperature of the hybrid-MOT has been measured slightly above the Doppler temperature limit. In both cases the attained lower temperature ensures the quantum behaviour of the trapped atoms required for the applications of portable quantum sensors and many others.
机译:我们描述了位于镜像磁光阱(MOT)中的位移或未对流的梁的应用,以使可便携式和小型化原子芯片实验,其中光学访问限于单个窗口。研究了两种不同的梁位移几何形状:众所周知的“涡旋 - MOT”的变化,另一个新的“混合动力学”组合塞曼换档和纯光散射力分量。使用平面镜面,而是使用平面镜面获得的梁几何形状,但是具有更适合平面系统的不同磁场几何形状。使用这些技术,我们捕获了大约6?×106和26?×106分别在涡流 - MOT和混合动力学中的85RB原子。对于Vortex-MOT,原子直接冷却良好低于多普勒温度而没有任何额外的子多普勒冷却阶段,而混合动力元件的温度已经略高于多普勒温度限制。在这两种情况下,达到的较低温度确保便携式量子传感器和许多其他捕获原子的量子行为。

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