Phan N S, Clayton S M, Kim Y J, Ito T M
Los Alamos National Laboratory, Los Alamos, New Mexico 87545, USA.
ArXiv. 2024 Sep 13:arXiv:2407.11276v2.
Magnetic Johnson noise is an important consideration for many applications involving precision magnetometry, and its significance will only increase in the future with improvements in measurement sensitivity. The fluctuation-dissipation theorem can be utilized to derive analytic expressions for magnetic Johnson noise in certain situations. But when used in conjunction with finite element analysis tools, the combined approach is particularly powerful as it provides a practical means to calculate the magnetic Johnson noise arising from conductors of arbitrary geometry and permeability. In this paper, we demonstrate this method to be one of the most comprehensive approaches presently available to calculate thermal magnetic noise. In particular, its applicability is shown to not be limited to cases where the noise is evaluated at a point in space but also can be expanded to include cases where the magnetic field detector has a more general shape, such as a finite size loop, a gradiometer, or a detector that consists of a polarized atomic species trapped in a volume. Furthermore, some physics insights gained through studies made using this method are discussed.
磁约翰逊噪声是许多涉及精密磁测量应用中的一个重要考虑因素,随着测量灵敏度的提高,其重要性在未来只会增加。涨落耗散定理可用于在某些情况下推导磁约翰逊噪声的解析表达式。但当与有限元分析工具结合使用时,这种组合方法特别强大,因为它提供了一种实用手段来计算由任意几何形状和磁导率的导体产生的磁约翰逊噪声。在本文中,我们证明这种方法是目前可用于计算热磁噪声的最全面的方法之一。特别是,它的适用性不仅限于在空间某一点评估噪声的情况,还可以扩展到包括磁场探测器具有更一般形状的情况,例如有限尺寸的线圈、梯度计或由捕获在一定体积内的极化原子种类组成的探测器。此外,还讨论了通过使用这种方法进行的研究获得的一些物理见解。