首页> 外文期刊>Applied Superconductivity, IEEE Transactions on >The Effect of Low Frequency External Field Disturbance on the SQUID Based Ultra-Low Field NMR Measurements
【24h】

The Effect of Low Frequency External Field Disturbance on the SQUID Based Ultra-Low Field NMR Measurements

机译:低频外部场干扰对基于SQUID的超低场NMR测量的影响

获取原文
获取原文并翻译 | 示例

摘要

We have carried out NMR experiments in the microtesla range using a high-${rm T}_{rm c}$ dc-SQUID sensor. The measurements were carried out in a simple magnetically shielded room. Resonance spectra of $^{1}{rm H}$ nuclei from tap water and other substance samples were obtained in the field range 7–70 $mu{rm T}$. The effect of frequency, strength, direction and phase of a low frequency external disturbance field on the NMR spectra was investigated. A sinusoidal field was applied along or perpendicular to the measurement field to simulate the external disturbance. The results were compared with the numerical calculations based on the Bloch equation and good agreement was obtained. In all cases, the field disturbance less than a few Hz are proved to influence the NMR spectra more severely, suppressing the resonance peak and driving it into split bands. On the other hand, the influence of the disturbance field at the frequency range around 50 Hz on the resonance peak position and profile is small, even though some additional small peaks appear in the spectra due to frequency mixing. The effect is more significant when the disturbance field is along the direction of the measurement field. The phase difference between the disturbance field and the free-induction-decay signal could change the NMR peak position and profile drastically.
机译:我们使用高{rm T} _ {rm c} $ dc-SQUID传感器在微特斯拉范围内进行了NMR实验。测量是在一个简单的磁屏蔽室中进行的。来自自来水和其他物质样品的$ ^ {1} {rm H} $核的共振光谱是在7–70 $ mu {rm T} $的野外获得的。研究了低频外部干扰场的频率,强度,方向和相位对NMR谱的影响。沿或垂直于测量场施加正弦场以模拟外部干扰。将结果与基于Bloch方程的数值计算进行了比较,并获得了良好的一致性。在所有情况下,事实证明,小于几赫兹的场干扰会更严重地影响NMR光谱,从而抑制共振峰并将其驱动为分裂带。另一方面,尽管由于混频在频谱中出现了一些其他的小峰值,但在50 Hz左右的频率范围内,干扰场对谐振峰值位置和轮廓的影响很小。当干扰场沿测量场的方向时,效果会更大。干扰场与自由感应衰减信号之间的相位差可能会大大改变NMR峰的位置和轮廓。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号