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A subfemtotesla multichannel atomic magnetometer

机译:Subfemtotesla多通道原子磁力计

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The magnetic field is one of the most fundamental and ubiquitous physical observables, carrying information about all electromagnetic phenomena. For the past 30 years, superconducting quantum interference devices (SQUIDs) operating at 4 K have been unchallenged as ultrahigh-sensitivity magnetic field detectors(1), with a sensitivity reaching down to 1 fT Hz(-1/2) (1 fT = 10(-15) T). They have enabled, for example, mapping of the magnetic fields produced by the brain, and localization of the underlying electrical activity (magnetoencephalography). Atomic magnetometers, based on detection of Larmor spin precession of optically pumped atoms, have approached similar levels of sensitivity using large measurement volumes(2,3), but have much lower sensitivity in the more compact designs required for magnetic imaging applications(4). Higher sensitivity and spatial resolution combined with non-cryogenic operation of atomic magnetometers would enable new applications, including the possibility of mapping non-invasively the cortical modules in the brain. Here we describe a new spin-exchange relaxation-free ( SERF) atomic magnetometer, and demonstrate magnetic field sensitivity of 0.54 fT Hz(-1/2) with a measurement volume of only 0.3 cm(3). Theoretical analysis shows that fundamental sensitivity limits of this device are below 0.01 fT Hz(-1/2). We also demonstrate simple multichannel operation of the magnetometer, and localization of magnetic field sources with a resolution of 2 mm. [References: 27]
机译:磁场是最基本,最普遍的物理观测之一,它承载有关所有电磁现象的信息。在过去的30年中,以4 K运行的超导量子干扰设备(SQUID)一直没有成为超高灵敏度磁场检测器(1)的挑战,其灵敏度高达1 fT Hz(-1/2)(1 fT = 10(-15)T)。例如,它们可以绘制大脑产生的磁场的图以及潜在的电活动的位置(磁脑图)。基于检测光泵浦原子的拉莫尔自旋进动的原子磁强计,使用大的测量体积(2,3)达到了相似的灵敏度水平,但在磁成像应用所需的更紧凑的设计中灵敏度却低得多(4)。更高的灵敏度和空间分辨率与原子磁强计的非低温操作相结合,将能够实现新的应用,包括无创地绘制大脑皮层模块的图谱。在这里,我们描述了一种新的自旋交换无弛豫(SERF)原子磁力计,并演示了0.54 fT Hz(-1/2)的磁场灵敏度,测量体积仅为0.3 cm(3)。理论分析表明,该器件的基本灵敏度极限低于0.01 fT Hz(-1/2)。我们还演示了磁力计的简单多通道操作,以及分辨率为2 mm的磁场源定位。 [参考:27]

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