Hobson P J, Vovrosh J, Stray B, Packer M, Winch J, Holmes N, Hayati F, McGovern K, Bowtell R, Brookes M J, Bongs K, Fromhold T M, Holynski M
Midlands Ultracold Atom Research Centre, School of Physics and Astronomy, University of Birmingham, Edgbaston, Birmingham, B15 2TT, UK.
School of Physics and Astronomy, University of Nottingham, Nottingham, NG7 2RD, UK.
Sci Rep. 2022 Jun 22;12(1):10520. doi: 10.1038/s41598-022-13979-4.
Quantum sensors based on cold atoms are being developed which produce measurements of unprecedented accuracy. Due to shifts in atomic energy levels, quantum sensors often have stringent requirements on their internal magnetic field environment. Typically, background magnetic fields are attenuated using high permeability magnetic shielding, with the cancelling of residual and introduction of quantisation fields implemented with coils inside the shield. The high permeability shield, however, distorts all magnetic fields, including those generated inside the sensor. Here, we demonstrate a solution by designing multiple coils overlaid on a 3D-printed former to generate three uniform and three constant linear gradient magnetic fields inside the capped cylindrical magnetic shield of a cold atom interferometer. The fields are characterised in-situ and match their desired forms to high accuracy. For example, the uniform transverse field, B, deviates by less than 0.2% over more than 40% of the length of the shield. We also map the field directly using the cold atoms and investigate the potential of the coil system to reduce bias from the quadratic Zeeman effect. This coil design technology enables targeted field compensation over large spatial volumes and has the potential to reduce systematic shifts and noise in numerous cold atom systems.
基于冷原子的量子传感器正在被研发,其测量精度达到了前所未有的水平。由于原子能级的变化,量子传感器通常对其内部磁场环境有严格要求。通常,背景磁场使用高磁导率磁屏蔽进行衰减,屏蔽内部的线圈用于抵消残余磁场并引入量子化磁场。然而,高磁导率屏蔽会使所有磁场发生畸变,包括传感器内部产生的磁场。在此,我们展示了一种解决方案,通过在3D打印的骨架上设计多个线圈,在冷原子干涉仪的带帽圆柱形磁屏蔽内部产生三个均匀磁场和三个恒定线性梯度磁场。这些磁场在原位进行了表征,并且与预期形式高度匹配。例如,均匀横向磁场B在屏蔽长度超过40%的范围内偏差小于0.2%。我们还直接利用冷原子对磁场进行了测绘,并研究了该线圈系统减少二次塞曼效应偏差的潜力。这种线圈设计技术能够在大空间体积上进行有针对性的场补偿,并且有可能减少众多冷原子系统中的系统偏移和噪声。