Magnetic monopole field exposed by electrons
A. B\'ech\'e, R. Van Boxem, G. Van Tendeloo, J. Verbeeck

TL;DR
This paper demonstrates that electron diffraction at a nanoscopic magnetized needle can simulate magnetic monopole fields, providing a new experimental approach to study monopole effects without requiring actual monopoles.
Contribution
It introduces an experimental method to generate and analyze effective monopole fields using electron diffraction at a magnetized needle, bridging theoretical monopole concepts with practical observation.
Findings
Electron diffraction reveals monopole-like field effects.
Effective monopole fields can be simulated without true monopoles.
The method enables studies of monopole dynamics in free space.
Abstract
Magnetic monopoles have provided a rich field of study, leading to a wide area of research in particle physics, solid state physics, ultra-cold gases, superconductors, cosmology, and gauge theory. So far, no true magnetic monopoles were found experimentally. Using the Aharonov-Bohm effect, one of the central results of quantum physics, shows however, that an effective monopole field can be produced. Understanding the effects of such a monopole field on its surroundings is crucial to its observation and provides a better grasp of fundamental physical theory. We realize the diffraction of fast electrons at a magnetic monopole field generated by a nanoscopic magnetized ferromagnetic needle. Previous studies have been limited to theoretical semiclassical optical calculations of the motion of electrons in such a monopole field. Solid state systems like the recently studied 'spin ice' provide…
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