Imaging Charged Particle Beams With Atomic Magnetometry
ORAL
Abstract
We present the results of 2-dimensional imaging of a charged particle beam using an atomic magnetometer. By propagating a beam of electrons through a low-pressure rubidium vapor, the alkali atoms experience a shift in their atomic states. A probe laser monitoring the $D_2$ transition of rubidium reacts with a rotation in its polarization angle directly proportional to the sensed magnetic field of the electron beam. The spatial dependence of the magnetic field can then be inferred using the CCD images of the probe laser polarization components. The obtained magnetic field distribution allows us to reconstruct the current density of the particle beam. As a proof of concept, we are able to image 1.5 mm diameter electron beams down to 20 $mu$A currents. These results are achieved through collaboration with Thomas Jefferson National Accelerator Facility to develop a non-invasive diagnostic tool for charged particle beams.
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Presenters
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Nicolas C DeStefano
William & Mary
Authors
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Nicolas C DeStefano
William & Mary
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Saeed Pegahan
William & Mary
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Irina B Novikova
William & Mary
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Eugeniy E Mikhailov
William & Mary
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Seth Aubin
William & Mary
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Todd D Averett
William & Mary
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Shukui Zhang
Thomas Jefferson National Accelerator Facility, Jefferson Lab
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Gunn Park
Jefferson Lab
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Alexander Camsonne
Jefferson Lab
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Aneesh Ramaswamy
Stevens Inst of Tech, Stevens University of Technology
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Svetlana A Malinovskaya
Stevens Inst of Tech