论文标题
具有轨道角动量的自旋纹理中子束
Spin-Textured Neutron Beams with Orbital Angular Momentum
论文作者
论文摘要
我们提出了一个严格的理论框架,该框架是基于自旋回波调制的小角度中子散射(SEMSAN)技术的基础,并通过双重旋转中子旋转旋转式旋转设备通过双向旋转的旋转旋转式旋转设备,以生成具有轨道角度动量(OAM)的自旋纹理中子束(OAM),以生成自旋纹理的中子束。中子OAM梁在数学上以``cork-stred''相奇异性$ e^{i \ ell ϕ} $围绕传播轴为特征,其中$ \ ell $是OAM量子数。为了了解新兴的OAM状态与各种设置所实现的自旋纹理之间的精确关系,我们开发了一种路径综合方法,在干涉量限度下,它可以明智地使用磁性Snell定律。我们表明,我们提出的技术产生了复杂的二维式模式的自旋oam纠缠状态,该模式可能可作为量子磁性材料的探针。我们将我们的路径综合方法与众所周知的单条路线预动力模型进行了比较,并根据Maupertuis的作用原理提出了磁性Snell折射定律的教学推导。
We present a rigorous theoretical framework underpinning the technique of spin-echo modulated small-angle neutron scattering (SEMSANS), and show how the technique can be extended in order to generate spin-textured neutron beams with orbital angular momentum (OAM) via birefringent neutron spin-polarization devices known as magnetic Wollaston prisms. Neutron OAM beams are mathematically characterized by a ``cork-screw'' phase singularity $e^{i \ell ϕ}$ about the propagation axis where $\ell$ is the OAM quantum number. To understand the precise relationship between the emergent OAM state and the variety of spin textures realized by various setups, we have developed a path-integral approach that in the interferometric limit makes a judicious use of magnetic Snell's law. We show that our proposed technique produces a complex two-dimensional pattern of spin-OAM entangled states which may be useful as a probe of quantum magnetic materials. We compare our path-integral approach to the well-known single-path Larmor precession model and present a pedagogical derivation of magnetic Snell's law of refraction for both massive and massless particles based on Maupertuis's action principle.