Controlling and Measuring the Degree of Coherence at CLS using X-ray Interferometry

Fuente: arXiv
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Main Authors: Sigari, Y. Y., Simonson, N. A., Appathurai, N., Castle, R., Moreno, B. D., Saadat, S., Wang, J., Vogt, J. M., Boland, M. J.
Format: Preprint
Published: 2026
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author Sigari, Y. Y.
Simonson, N. A.
Appathurai, N.
Castle, R.
Moreno, B. D.
Saadat, S.
Wang, J.
Vogt, J. M.
Boland, M. J.
author_facet Sigari, Y. Y.
Simonson, N. A.
Appathurai, N.
Castle, R.
Moreno, B. D.
Saadat, S.
Wang, J.
Vogt, J. M.
Boland, M. J.
contents This paper investigates a case study on measuring and controlling the first-order degree of spatial coherence under different coupling adjustments in the storage ring. The experimental findings are consistent with the predicted inverse relationship between the visibility and the coupling factor. The degree of coherence was measured using X-ray double slit interferometry with synchrotron radiation at an energy of 7 keV on the Brockhouse X-Ray Diffraction and Scattering in-vacuum undulator beamline. The vertical degree of coherence increases as the coupling factor in the storage ring is reduced. The Linear Optics for Closed Orbit (LOCO) algorithm is used to model the linear terms of the storage ring optics in Accelerator Toolbox. The LOCO-tuned model provides insights into the variations in the vertical beam size at two different source points in the storage ring as a function of the coupling factor. The coupling factor is parameterized by the closest-tune approach with a bunch-by-bunch feedback system to confirm the trend in the changes of the vertical beam size and the visibility.
format Preprint
id arxiv_https___arxiv_org_abs_2604_22950
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Controlling and Measuring the Degree of Coherence at CLS using X-ray Interferometry
Sigari, Y. Y.
Simonson, N. A.
Appathurai, N.
Castle, R.
Moreno, B. D.
Saadat, S.
Wang, J.
Vogt, J. M.
Boland, M. J.
Accelerator Physics
Optics
This paper investigates a case study on measuring and controlling the first-order degree of spatial coherence under different coupling adjustments in the storage ring. The experimental findings are consistent with the predicted inverse relationship between the visibility and the coupling factor. The degree of coherence was measured using X-ray double slit interferometry with synchrotron radiation at an energy of 7 keV on the Brockhouse X-Ray Diffraction and Scattering in-vacuum undulator beamline. The vertical degree of coherence increases as the coupling factor in the storage ring is reduced. The Linear Optics for Closed Orbit (LOCO) algorithm is used to model the linear terms of the storage ring optics in Accelerator Toolbox. The LOCO-tuned model provides insights into the variations in the vertical beam size at two different source points in the storage ring as a function of the coupling factor. The coupling factor is parameterized by the closest-tune approach with a bunch-by-bunch feedback system to confirm the trend in the changes of the vertical beam size and the visibility.
title Controlling and Measuring the Degree of Coherence at CLS using X-ray Interferometry
topic Accelerator Physics
Optics
url https://arxiv.org/abs/2604.22950