Projectile Transverse Momentum Controls Emission in Electron Vortex Ionization Collisions
A. Plumadore, A. L. Harris

TL;DR
This paper investigates how the transverse momentum of electron vortex beams influences atomic ionization, revealing controllable electron ejection angles and broadened momentum transfer signatures, advancing understanding of vortex-matter interactions.
Contribution
It provides the first fully differential cross sections for ionization of atomic hydrogen by electron vortex beams, showing how vortex properties affect ionization patterns and target electron density signatures.
Findings
Transverse momentum alters ionized electron angular distributions.
Vortex opening angle controls the ejection angle of electrons.
Momentum transfer broadening enhances target electron density signatures.
Abstract
The realization of electron vortex beams in the past decade has led to numerous proposed applications in fields from electron microscopy to control and manipulation of individual molecules. Yet despite the many unique characteristics and promising advantages of electron vortex beams, such as transverse momentum and quantized orbital angular momentum, there remains a limited understanding of their fundamental interactions with matter at the atomic scale. Collisions between electron vortex projectiles and atomic targets can provide some insight into these interactions and we present here fully differential cross sections for ionization of excited state atomic hydrogen targets using electron vortex projectiles. We show that the projectile's transverse momentum causes the ionized electron angular distributions to be altered compared to non-vortex projectiles and that the ionized electron's…
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