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This content will become publicly available on December 23, 2025

Title: Electron beam characterization via quantum coherent optical magnetometry
We present a quantum optics-based detection method for determining the position and current of an electron beam. As electrons pass through a dilute vapor of rubidium atoms, their magnetic field perturbs the atomic spin's quantum state and causes polarization rotation of a laser resonant with an optical transition of the atoms. By measuring the polarization rotation angle across the laser beam, we recreate a 2D projection of the magnetic field and use it to determine the e-beam position, size, and total current. We tested this method for an e-beam with currents ranging from 30 to 110 μA. Our approach is insensitive to electron kinetic energy, and we confirmed that experimentally between 10 and 20 keV. This technique offers a unique platform for noninvasive characterization of charged particle beams used in accelerators for particle and nuclear physics research.  more » « less
Award ID(s):
2326736
PAR ID:
10624960
Author(s) / Creator(s):
; ; ; ; ; ; ; ; ; ;
Publisher / Repository:
APL
Date Published:
Journal Name:
Applied Physics Letters
Volume:
125
Issue:
26
ISSN:
0003-6951
Format(s):
Medium: X
Sponsoring Org:
National Science Foundation
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