Published in

International Union of Crystallography, Acta Crystallographica Section A: Foundations and Advances, 6(75), p. 902-910, 2019

DOI: 10.1107/s2053273319012889

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Elastic propagation of fast electron vortices through amorphous materials

Journal article published in 2019 by Stefan Löffler ORCID, Stefan Sack, Thomas Schachinger
This paper was not found in any repository, but could be made available legally by the author.
This paper was not found in any repository, but could be made available legally by the author.

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Abstract

This work studies the elastic scattering behavior of electron vortices when propagating through amorphous samples. A formulation of the multislice approach in cylindrical coordinates is used to theoretically investigate the redistribution of intensity between different angular momentum components due to scattering. To corroborate and elaborate on our theoretical results, extensive numerical simulations are performed on three model systems (Si3N4, Fe0.8B0.2, Pt) for a wide variety of experimental parameters to quantify the purity of the vortices, the net angular momentum transfer, and the variability of the results with respect to the random relative position between the electron beam and the scattering atoms. These results will help scientists to further improve the creation of electron vortices and enhance applications involving them.