Thirunavukkarasu G, Mousley M, Babiker M, Yuan J
Department of Physics, University of York, Heslington, York YO10 5DD, UK.
Department of Physics, University of York, Heslington, York YO10 5DD, UK
Philos Trans A Math Phys Eng Sci. 2017 Feb 28;375(2087). doi: 10.1098/rsta.2015.0438.
Electron vortex beams constitute the first class of matter vortex beams which are currently routinely produced in the laboratory. Here, we briefly review the progress of this nascent field and put forward a natural quantum basis set which we show is suitable for the description of electron vortex beams. The normal modes are truncated Bessel beams (TBBs) defined in the aperture plane or the Fourier transform of the transverse structure of the TBBs (FT-TBBs) in the focal plane of a lens with the said aperture. As these modes are eigenfunctions of the axial orbital angular momentum operator, they can provide a complete description of the two-dimensional transverse distribution of the wave function of any electron vortex beam in such a system, in analogy with the prominent role Laguerre-Gaussian (LG) beams played in the description of optical vortex beams. The characteristics of the normal modes of TBBs and FT-TBBs are described, including the quantized orbital angular momentum (in terms of the winding number l) and the radial index p>0. We present the experimental realization of such beams using computer-generated holograms. The mode analysis can be carried out using astigmatic transformation optics, demonstrating close analogy with the astigmatic mode transformation between LG and Hermite-Gaussian beams.This article is part of the themed issue 'Optical orbital angular momentum'.
电子涡旋光束是目前在实验室中常规产生的第一类物质涡旋光束。在此,我们简要回顾这一新兴领域的进展,并提出一种自然的量子基集,我们证明它适用于描述电子涡旋光束。正常模式是在孔径平面中定义的截断贝塞尔光束(TBBs),或者是在具有所述孔径的透镜焦平面中TBBs横向结构的傅里叶变换(FT-TBBs)。由于这些模式是轴向轨道角动量算符的本征函数,它们可以提供对这种系统中任何电子涡旋光束波函数二维横向分布的完整描述,这类似于拉盖尔 - 高斯(LG)光束在描述光学涡旋光束中所起的突出作用。描述了TBBs和FT-TBBs正常模式的特性,包括量子化的轨道角动量(根据缠绕数l)和径向指数p>0。我们展示了使用计算机生成全息图对这种光束的实验实现。可以使用像散变换光学进行模式分析,这表明与LG光束和厄米 - 高斯光束之间的像散模式变换有密切的相似性。本文是主题为“光学轨道角动量”的特刊的一部分。