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arXiv · 1509.07655

Non-Diffracting Electron Vortex Beams Balancing Their Electron-Electron Interactions

Abstract

By introducing concepts of beam shaping into quantum mechanics, we show how interference effects of the quantum wavefunction describing multiple electrons can exactly balance the repulsion among the electrons. With proper shaping of the fermionic wavefunction, we propose non-diffracting quantum wavepackets of multiple electrons that can also carry orbital angular momentum, in the form of multi-electron non-diffracting vortex beams. The wavefunction is designed to compensate for both the repulsion between electrons and for the diffraction-broadening. This wavefunction shaping facilitates the use of electron beams of higher current in numerous applications, thereby improving the signal-to-noise-ratio in electron microscopy and related systems without compromising on the spatial resolution. Our scheme potentially applies for any beams of charged particles, such as protons, muons and ion beams.

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Maor Mutzafi, Ido Kaminer, Gal Harari, Mordechai Segev. 2015-09-25. Non-Diffracting Electron Vortex Beams Balancing Their Electron-Electron Interactions. https://doi.org/10.1038/s41467-017-00651-z

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