JOURNAL ARTICLE

Generation of Nondiffracting Electron Bessel Beams

Abstract

Almost 30 years ago, Durnin discovered that an optical beam with a transverse intensity profile in the form of a Bessel function of the first order is immune to the effects of diffraction. Unlike most laser beams, which spread upon propagation, the transverse distribution of these Bessel beams remains constant. Electrons also obey a wave equation (the Schrödinger equation), and therefore Bessel beams also exist for electron waves. We generate an electron Bessel beam by diffracting electrons from a nanoscale phase hologram. The hologram imposes a conical phase structure on the electron wave-packet spectrum, thus transforming it into a conical superposition of infinite plane waves, that is, a Bessel beam. We verify experimentally that these beams can propagate for 0.6 m without measurable spreading and can also reconstruct their intensity distributions after being partially obstructed by an obstacle. Finally, we show by numerical calculations that the performance of an electron microscope can be increased dramatically through use of these beams.

Keywords:
Bessel function Electron Holography Nanoscopic scale Diffraction Optics Silicon nitride Phase (matter) Materials science Electron diffraction Silicon Bessel beam Free electron model Physics Optoelectronics Nanotechnology Quantum mechanics

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139
Cited By
7.48
FWCI (Field Weighted Citation Impact)
33
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0.98
Citation Normalized Percentile
Is in top 1%
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Citation History

Topics

Orbital Angular Momentum in Optics
Physical Sciences →  Physics and Astronomy →  Atomic and Molecular Physics, and Optics
Near-Field Optical Microscopy
Physical Sciences →  Engineering →  Biomedical Engineering
Optical Coatings and Gratings
Physical Sciences →  Materials Science →  Surfaces, Coatings and Films

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