宽带超灵敏绝热磁强计

I. Savukov, Young Jin Kim
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引用次数: 0

摘要

我们介绍了一种新的超灵敏绝热磁强计,具有宽带宽,可以在磁场和梯度存在下工作。它遵循基于碱金属蒸汽电池和激光的原子磁强计的概念典型实现,用于光泵浦和光法拉第效应检测,而其独特之处在于测量沿探针光束方向的振荡磁场,频率低于谐振频率,与沿泵浦光束方向的静态磁场成正比。绝热磁强计的带宽与沿泵浦光束方向的磁场强度成正比。从我们的理论研究中,我们期望绝热磁强计可以达到1 fT的灵敏度,带宽为10 kHz,这是任何类型的原子磁强计都无法实现的。这种绝热磁强计的预期应用包括生物磁感应、核磁共振检测和碱金属密度测量。我们实验进行碱金属密度测量,作为应用的一个例子。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Broadband Ultra-Sensitive Adiabatic Magnetometer
We introduce a new ultra-sensitive adiabatic magnetometer that has a broad bandwidth and can operate in the presence of magnetic fields and gradients. It follows conceptually typical implementations of atomic magnetometers based on alkali-metal vapor cells and lasers for optical pumping and optical Faraday effect detection, while its unique feature is a measurement of an oscillating magnetic field along the probe beam direction at frequencies lower than the resonant frequency, proportional to a static magnetic field along the pump beam direction. The bandwidth of the adiabatic magnetometer scales as the strength of the field along the pump beam. From our theoretical studies it is expected that the adiabatic magnetometer can reach 1 fT sensitivity with a bandwidth of 10 kHz, which any type of atomic magnetometers cannot achieve. Among anticipated various applications of this adiabatic magnetometer are biomagnetic sensing, nuclear magnetic resonance detection, and alkali-metal density measurements. We experimentally conducted alkali-metal density measurements, as an example of applications.
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