Sarenac D, Nsofini J, Hincks I, Arif M, Clark Charles W, Cory D G, Huber M G, Pushin D A
Department of Physics, University of Waterloo, Waterloo, ON N2L3G1, Canada.
Institute for Quantum Computing, University of Waterloo, Waterloo, ON N2L3G1, Canada.
New J Phys. 2018;20(10). doi: 10.1088/1367-2630/aae3ac.
The generation and control of neutron orbital angular momentum (OAM) states and spin correlated OAM (spin-orbit) states provides a powerful probe of materials with unique penetrating abilities and magnetic sensitivity. We describe techniques to prepare and characterize neutron spin-orbit states, and provide a quantitative comparison to known procedures. The proposed detection method directly measures the correlations of spin state and transverse momentum, and overcomes the major challenges associated with neutrons, which are low flux and small spatial coherence length. Our preparation techniques, utilizing special geometries of magnetic fields, are based on coherent averaging and spatial control methods borrowed from nuclear magnetic resonance. The described procedures may be extended to other probes such as electrons and electromagnetic waves.
中子轨道角动量(OAM)态以及自旋相关的OAM(自旋-轨道)态的产生与控制,为研究具有独特穿透能力和磁敏感性的材料提供了一种强大的探测手段。我们描述了制备和表征中子自旋-轨道态的技术,并与已知方法进行了定量比较。所提出的检测方法直接测量自旋态与横向动量的相关性,克服了与中子相关的主要挑战,即通量低和空间相干长度小。我们利用特殊磁场几何结构的制备技术,基于从核磁共振借鉴的相干平均和空间控制方法。所描述的程序可扩展到其他探测手段,如电子和电磁波。