论文标题
超稳的1.5特斯拉永久磁铁组件,用于在低温温度下进行量子实验
An ultra-stable 1.5 tesla permanent magnet assembly for qubit experiments at cryogenic temperatures
论文作者
论文摘要
磁场是每个物理学家工具箱中的标准工具,并且是材料表征以及核磁共振或电子顺磁共振共振实验中旋转极化所必需的。通常,一个足够大的静态磁场,但固定幅度适合这些任务。在这里,我们提出了一个永久磁体组件,该组件可以在7mm的气隙长度上实现高达1.5T的磁场强度。该组件基于新近镁(NDFEB)磁体的Halbach阵列,其中包含软磁性材料超模拟,以提高气隙内部的磁场强度。我们介绍了永久磁铁组件的设计,模拟和表征,测量了| D |的漂移速率的出色磁场稳定性<2.8 ppb/h。我们的测量结果表明,该组件可用于稀释冰箱内的自旋量子量子实验,成功地取代了更昂贵,更笨重的超导电磁阀。
Magnetic fields are a standard tool in the toolbox of every physicist, and are required for the characterization of materials, as well as the polarization of spins in nuclear magnetic resonance or electron paramagnetic resonance experiments. Quite often a static magnetic field of sufficiently large, but fixed magnitude is suitable for these tasks. Here we present a permanent magnet assembly that can achieve magnetic field strengths of up to 1.5T over an air gap length of 7mm. The assembly is based on a Halbach array of neodymium (NdFeB) magnets, with the inclusion of the soft magnetic material Supermendur to boost the magnetic field strength inside the air gap. We present the design, simulation and characterization of the permanent magnet assembly, measuring an outstanding magnetic field stability with a drift rate of |D| < 2.8 ppb/h. Our measurements demonstrate that this assembly can be used for spin qubit experiments inside a dilution refrigerator, successfully replacing the more expensive and bulky superconducting solenoids.