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A perturbation theory study of electron vortices in electromagnetic fields: The case of infinitely long line charge and magnetic dipole

机译:电磁场中电子涡流的摄动理论研究:无限长线电荷和磁偶极子的情况

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摘要

The novel discovery of electron vortices carrying quantized orbital angular momentum motivated intensive research of their basic properties as well as applications, e.g. structural characterization of magnetic materials. In this paper, the fundamental interactions of electron vortices within infinitely long atomic-column-like electromagnetic fields are studied based on the relativistically corrected Pauli-Schrodinger equation and the perturbation theory. The relative strengths of three fundamental interactions, i.e. the electron-electric potential interaction, the electron-magnetic potential/field interaction and the spin-orbit coupling are discussed. The results suggest that the perturbation energies of the last two interactions are in an order of 10~3-10~4 smaller than that of the first one for electron vortices. In addition, it is also found that the strengths of these interactions are strongly dependant on the spatial distributions of the electromagnetic field as well as the electron vortices.
机译:携带量化轨道角动量的电子涡流的新发现促使人们对其基本特性及其应用进行深入研究。磁性材料的结构表征。本文基于相对论修正的Pauli-Schrodinger方程和微扰理论,研究了无限长的类原子柱状电磁场中电子涡旋的基本相互作用。讨论了三种基本相互作用的相对强度,即电子-电势相互作用,电子-电磁电势/场相互作用和自旋轨道耦合。结果表明,对于电子涡旋,最后两个相互作用的扰动能比第一个相互作用的扰动能小10〜3-10〜4个量级。另外,还发现这些相互作用的强度强烈取决于电磁场以及电子涡旋的空间分布。

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