Liu Tianhao, Schnabel Allard, Voigt Jens, Kilian Wolfgang, Sun Zhiyin, Li Liyi, Trahms Lutz
Physikalisch-Technische Bundesanstalt Berlin, 10587 Berlin, Germany.
Laboratory for Space Environment and Physical Sciences, Harbin Institute of Technology, 150001 Harbin, China.
Rev Sci Instrum. 2021 Feb 1;92(2):024709. doi: 10.1063/5.0027848.
The homogeneity of the magnetic field generated by a coil inside a magnetic shield is essential for many applications, such as ultra-low field nuclear magnetic resonance or spin precession experiments. In the course of upgrading the Berlin Magnetically Shielded Room (BMSR-2) with a new inserted Permalloy layer of side length 2.87 m, we designed a built-in coil consisting of four identical square windings attached to its inside walls. The spacings of the four windings were optimized using a recently developed semi-analytic model and finite element analysis. The result reveals a strong dependence of the field homogeneity on the asymmetric placement of the inner two windings and on the chosen material permeability value μ. However, our model calculations also show that these experimental variations can be counterbalanced by an adjustment of the inner winding positions in the millimeter range. Superconducting quantum interference device-based measurements yield for our implementation after fine adjustments of a single winding position a maximum field change of less than 10 pT for a total field of B = 2.3 µT within a 10 cm region along the coil axis, which is already better than the residual field of the upgraded BMSR-2.1 after degaussing. Measurements of free spin precession decay signals of polarized Xe129 nuclei show that the transverse relaxation time for the used cell is not limited by the inhomogeneity of the new built-in coil system.
对于许多应用,如超低场核磁共振或自旋进动实验而言,磁屏蔽内部线圈所产生磁场的均匀性至关重要。在对柏林磁屏蔽室(BMSR - 2)进行升级的过程中,我们插入了边长为2.87米的新坡莫合金层,并设计了一个内置线圈,该线圈由附着在其内壁的四个相同方形绕组组成。利用最近开发的半解析模型和有限元分析对四个绕组的间距进行了优化。结果表明,场均匀性强烈依赖于内部两个绕组的不对称放置以及所选材料的磁导率值μ。然而,我们的模型计算还表明,这些实验变化可以通过在毫米范围内调整内部绕组位置来抵消。基于超导量子干涉器件的测量结果显示,在对单个绕组位置进行精细调整后,对于我们的装置,在沿线圈轴10厘米区域内,总场强B = 2.3 μT时,最大场变化小于10 pT,这已经优于消磁后升级后的BMSR - 2.1的剩余场强。对极化Xe129原子核自由自旋进动衰减信号的测量表明,所用样品池的横向弛豫时间不受新内置线圈系统不均匀性的限制。