论文标题
干扰原子磁力测定法
Interference in Atomic Magnetometry
论文作者
论文摘要
原子磁力计是高度敏感的磁场检测器,可监测原子蒸气的宏观磁矩的演变,并在生物学,物理和化学科学中打开新的应用。然而,原子磁力计的性能通常受到隐藏的系统效应的限制,这些效应可能会导致各种应用,例如在NMR和生物磁性中误诊。在这项工作中,我们发现了迄今无法解释的原子磁力计的干扰效应,这会导致重要的系统效应,从而极大地恶化了测量磁场的准确性。我们提出了一种标准方法,用于检测和表征干扰效应,但不限于原子磁力计。作为我们工作的应用,我们考虑了干扰NMR结构确定并定位脑生理症状的影响,并证明它将通过考虑干扰效应来帮助提高测量准确性。通过我们的实验,我们确实发现了我们的预测与超田NMR光谱中谐振线的不对称幅度之间的良好一致性 - 到目前为止尚未理解的效果。我们预计我们的工作将刺激有趣的新研究,以在各种磁力计及其应用中进行磁干扰现象。
Atomic magnetometers are highly sensitive detectors of magnetic fields that monitor the evolution of the macroscopic magnetic moment of atomic vapors, and opening new applications in biological, physical, and chemical science. However, the performance of atomic magnetometers is often limited by hidden systematic effects that may cause misdiagnosis for a variety of applications, e.g., in NMR and in biomagnetism. In this work, we uncover a hitherto unexplained interference effect in atomic magnetometers, which causes an important systematic effect to greatly deteriorate the accuracy of measuring magnetic fields. We present a standard approach to detecting and characterizing the interference effect in, but not limited to, atomic magnetometers. As applications of our work, we consider the effect of the interference in NMR structural determination and locating the brain electrophysiological symptom, and show that it will help to improve the measurement accuracy by taking interference effects into account. Through our experiments, we indeed find good agreement between our prediction and the asymmetric amplitudes of resonant lines in ultralow-field NMR spectra -- an effect that has not been understood so far. We anticipate that our work will stimulate interesting new researches for magnetic interference phenomena in a wide range of magnetometers and their applications.