Inelastic Electron Scattering at a Single-Beam Structured Light Wave
arXiv:2212.10255 · doi:10.1038/s42005-023-01300-2
Abstract
In this work we demonstrate the inelastic scattering of slow-electron wavepackets at a propagating Hermite-Gaussian light beam. The pulsed Hermite-Gaussian beam thereby forms a ponderomotive potential for the electron with large enough momentum components, leading to the inelastic scattering of electrons and their bunching along the longitudinal direction. We show that the resulting energy-gain spectra after the interaction is strongly influenced by the self-interference of the electron in this ponderomotive potential. It is shown that this effect is observable for various optical wavelengths and intensities and further discuss how the variation of the electron velocity and the light intensity allow to control the energy modulation of the electron wavepacket. This effect opens up a new platform for manipulating the electron wavepacket by utilizing the vast landscape of structured electromagnetic fields.
References in corpus (7)
- Ponderomotive generation and detection of attosecond free-electron pulse trains
- Inelastic ponderomotive scattering of electrons at a high-intensity optical travelling wave in vacuum
- Optical Modulation of Electron Beams in Free Space
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Cited by in corpus (4)
- Design for light-based spherical aberration correction of ultrafast electron microscopes
- Light-based Chromatic Aberration Correction of Ultrafast Electron Microscopes
- Free-Space Optical Modulation of Free Electrons in the Continuous-Wave Regime
- Nanoscale Femtosecond Coherent Radiation and Spatiotemporally Shaped free electron Wavefunction