Neutron Interferometry Using a Single Modulated Phase Grating
I. J. Hidrovo, J. Dey, H. Meyer, D. S. Hussey, N. N. Klimov, L. G., Butler, K. Ham, and W. Newhauser

TL;DR
This paper introduces a novel neutron phase-contrast imaging system using a single modulated phase grating, achieving higher visibility and comparable phase sensitivity than traditional multi-grating systems, simplifying alignment and setup.
Contribution
The paper presents the first theoretical and experimental demonstration of a single modulated phase grating system for neutron interferometry, replacing multi-grating setups.
Findings
Achieves 94.2% visibility with a single grating, surpassing previous 39%
Provides comparable or greater phase sensitivity up to 10.0 x 10E+3
Simplifies system alignment by eliminating multiple gratings
Abstract
Neutron grating interferometry provides information on phase and small-angle scatter in addition to attenuation. Previously, phase grating moir\'e interferometers (PGMI) with two- or three-phase gratings have been developed. These phase-grating systems use the moir\'e far-field technique to avoid the need for high-aspect absorption gratings used in Talbot-Lau interferometers (TLI) which reduce the neutron flux reaching the detector. We first demonstrate through theory and simulations a novel phase grating interferometer system for cold neutrons that requires a single modulated phase grating (MPG) for phase-contrast imaging, as opposed to the two- or three-phase gratings in previously employed PGMI systems. The MPG theory was compared to the full Sommerfeld-Rayleigh Diffraction integral simulator. Then we compared the MPG system to experiments in the literature that use a…
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Taxonomy
TopicsNuclear Physics and Applications · Atomic and Subatomic Physics Research · High-pressure geophysics and materials
