论文标题

基本物理测试的铁磁陀螺仪

Ferromagnetic Gyroscopes for Tests of Fundamental Physics

论文作者

Fadeev, Pavel, Timberlake, Chris, Wang, Tao, Vinante, Andrea, Band, Y. B., Budker, Dmitry, Sushkov, Alexander O., Ulbricht, Hendrik, Kimball, Derek F. Jackson

论文摘要

铁磁陀螺仪(FG)是一种铁磁铁,其角动量由电子自旋极化主导,并且会在外部扭矩的作用下进行预言,例如由于磁场而导致的。在这里,我们对FG动力学和灵敏度进行建模和分析,重点是实现实现的实践方案。在自由浮动的FG的情况下,我们建模从相对较高的外部应用磁场主导的动力学的过渡,向相对较低的施加磁场主导的动力学。库频率的测量可以实现磁场的原位测量和一种将磁场降低到以下的阈值以下的技术。我们注意到,即使在磁场上,陀螺仪行为的证据也比阈值大得多的磁场存在。我们还通过MEISSNER效应建模了I型超导体上方的FG的动力学,并发现与自由漂浮FG的FG相比,观察到的进液频率降低了。这类似于由超导体从FG对FG的失真引起的负反馈。最后,我们评估了在实际的实验条件下,在I型超导体上方悬浮的FG对外来自旋依赖性相互作用的敏感性,这证明了FGS对基本物理学测试的潜力。

A ferromagnetic gyroscope (FG) is a ferromagnet whose angular momentum is dominated by electron spin polarization and that will precess under the action of an external torque, such as that due to a magnetic field. Here we model and analyze FG dynamics and sensitivity, focusing on practical schemes for experimental realization. In the case of a freely floating FG, we model the transition from dynamics dominated by libration in relatively high externally applied magnetic fields, to those dominated by precession at relatively low applied fields. Measurement of the libration frequency enables in situ measurement of the magnetic field and a technique to reduce the field below the threshold for which precession dominates the FG dynamics. We note that evidence of gyroscopic behavior is present even at magnetic fields much larger than the threshold field below which precession dominates. We also model the dynamics of an FG levitated above a type-I superconductor via the Meissner effect, and find that for FGs with dimensions larger than about 100 nm the observed precession frequency is reduced compared to that of a freely floating FG. This is akin to negative feedback that arises from the distortion of the field from the FG by the superconductor. Finally we assess the sensitivity of an FG levitated above a type-I superconductor to exotic spin-dependent interactions under practical experimental conditions, demonstrating the potential of FGs for tests of fundamental physics.

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