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Magnetic Field Vector Detection in Frequency Domain with an Optically Pumped Atomic Magnetometer

机译:光学泵浦原子磁力计在频域中进行磁场矢量检测

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摘要

The motion of spin polarization in a high-sensitivity optically pumped atomic magnetometer is described by the Bloch equation. We propose a magnetometer having two nonparallel probe beams to measure both the $x$ and $y$ components of spin polarization, while a pumping beam propagates in the $z$ direction. When a bias magnetic field is applied parallel to the pumping beam, the magnetic fields $B_x$ and $B_y$ both affect the $x$ and $y$ components of the spin polarization. The relation between the magnetic field and the magnetometer signal is correctly expressed in matrix form for a simple oscillating magnetic field. The relation enables us to solve the Bloch equation in the frequency domain and retrieve the original waveform of the time-dependent magnetic field waveform. This magnetometer also compensates for distortion of the waveform caused by the resonant nature of the Bloch equation. The magnetic field signal recovery is demonstrated by numerical simulation and the preferred parameter range for the proposed dual-probe magnetometer is shown. As a result, the proposed magnetometer will expand the possibility for weak magnetic field measurements, including biomagnetic fields.
机译:高灵敏度光泵浦原子磁力计中的自旋极化运动由Bloch方程描述。我们提出了一种磁力计,该磁力计具有两个不平行的探测光束,用于测量自旋极化的$ x $和$ y $分量,而泵浦光束沿$ z $方向传播。当平行于泵浦光束施加偏置磁场时,磁场$ B_x $和$ B_y $都会影响自旋极化的$ x $和$ y $分量。对于简单的振荡磁场,磁场和磁力计信号之间的关系正确地以矩阵形式表示。该关系式使我们能够在频域中求解Bloch方程,并检索随时间变化的磁场波形的原始波形。该磁力计还补偿了由Bloch方程的共振特性引起的波形失真。通过数值模拟证明了磁场信号的恢复,并给出了所提出的双探头磁力计的优选参数范围。结果,提出的磁力计将扩大包括生物磁场在内的弱磁场测量的可能性。

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