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Bibliographic Details
Main Authors: Geller, Jonathan M., Faulkner, Michael J., Binnie, Iona K., Kealhofer, Catherine
Format: Preprint
Published: 2024
Subjects:
Online Access:https://arxiv.org/abs/2406.07697
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author Geller, Jonathan M.
Faulkner, Michael J.
Binnie, Iona K.
Kealhofer, Catherine
author_facet Geller, Jonathan M.
Faulkner, Michael J.
Binnie, Iona K.
Kealhofer, Catherine
contents We investigate the angular distribution of ultrafast laser-induced electron emission from a tungsten nanotip in the multiphoton regime. A theoretical model allows precise determination of the relative contribution of different electron emission mechanisms, revealing connections between emission mechanism and the angular distribution of emitted electrons. We infer a continuous map of the work function across the surface of the tip, which in combination with the model can be used to predict values including the number of electrons per pulse and the angular divergence of the resulting beam as a function of laser power and tip voltage for (310)-oriented tungsten nanotips. The model is straightforward to implement and can be used to optimize the performance of instruments using ultrafast nanotip electron sources.
format Preprint
id arxiv_https___arxiv_org_abs_2406_07697
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Angular distribution of electron emission from ultrafast nanotip sources
Geller, Jonathan M.
Faulkner, Michael J.
Binnie, Iona K.
Kealhofer, Catherine
Applied Physics
We investigate the angular distribution of ultrafast laser-induced electron emission from a tungsten nanotip in the multiphoton regime. A theoretical model allows precise determination of the relative contribution of different electron emission mechanisms, revealing connections between emission mechanism and the angular distribution of emitted electrons. We infer a continuous map of the work function across the surface of the tip, which in combination with the model can be used to predict values including the number of electrons per pulse and the angular divergence of the resulting beam as a function of laser power and tip voltage for (310)-oriented tungsten nanotips. The model is straightforward to implement and can be used to optimize the performance of instruments using ultrafast nanotip electron sources.
title Angular distribution of electron emission from ultrafast nanotip sources
topic Applied Physics
url https://arxiv.org/abs/2406.07697