论文标题

由Bessel和Laguerre-Gaussian Beams产生的电子镜头的特性

Properties of electron lenses produced by ponderomotive potential with Bessel and Laguerre-Gaussian beams

论文作者

Uesugi, Yuuki, Kozawa, Yuichi, Sato, Shunichi

论文摘要

在几何光学元件中研究了由硫代电势产生的电子圆形镜头的性能。利用了与聚焦的一阶Bessel或Laguerre-Gaussian梁的强度分布成正比的电势分布,以产生电子圆形镜头和三阶球形像差校正器。薄镜近似中的焦距和球形像差系数的几种公式被得出以设置透镜特性和相关的光束参数。当光束的模式场很小时,电子轨迹计算结果显示出类似于使用公式获得的属性。或者,由于电势的环形分布,引入了较大的高阶畸变。二阶和高阶贝塞尔和拉瓜 - 高斯梁没有产生重点功率,也没有负三阶球形像差;但是,它们仍然可以用作圆形对称的高阶畸变校正器。结果表明,基于蓬勃的电势电子镜头或相板形成折射率培养基,其形状比在常规静电和磁性电子光学元件的情况下更灵活。本文介绍的公式可以用作设计首选光场的指南,从而促进电子光学技术利用电子光相互作用的新技术的进步。

The properties of electron round lenses produced by the ponderomotive potential are investigated in geometrical optics. The potential proportional to the intensity distribution of a focused first-order Bessel or Laguerre-Gaussian beam is exploited to produce an electron round lens and a third-order spherical aberration corrector. Several formulas for the focal length and spherical aberration coefficients in the thin-lens approximation are derived to set the lens properties and associated light beam parameters. When the mode field of the optical beam is small, the electron trajectory calculation results show properties similar to those obtained using the formulas. Alternatively, large higher-order aberrations are introduced because of the annular distribution of the potential. The second- and higher-order Bessel and Laguerre-Gaussian beams produce no focusing power and no negative third-order spherical aberration; however, they can still be used as circularly symmetric higher-order aberration correctors. Results show that the ponderomotive potential-based electron lens or phase plate forms a refractive index medium with a shape that is considerably more flexible than that achieved in the case of conventional electrostatic and magnetic electron optics. The formulas presented herein can serve as guidelines for designing preferred light fields, thus promoting the advancement of a novel technology in electron optics that exploits the electron-light interaction.

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