Published January 15, 2023 | Version Published
Journal Article Open

Optimization of the visibility of a tunable dual-phase x-ray grating interferometer

  • 1. ROR icon Paul Scherrer Institute
  • 2. ROR icon Institute for Biomedical Engineering
  • 3. ROR icon Ghent University
  • 4. ROR icon California Institute of Technology

Abstract

Dual-phase x-ray grating interferometry (DP-XGI) is a recently developed imaging technique that can retrieve structural information in the sub-micro scale over areas in the millimeter range. This is performed by use of the scattering signal, which is sensitive to structures that lie below the intrinsic spatial resolution of the imaging system. A quantitative understanding of the microstructure is possible when the scattering signal is retrieved within a range of auto-correlation lengths of the features of interest. High visibility of fringes in this length range is desirable, but no straightforward framework exists for choosing design parameters of the imaging system for such optimization. The purpose of this work is to present an optimization protocol for DP-XGI based on a Fresnel propagation simulation framework which evaluates different parameters of the optical system, utilizing the mean visibility of the fringes at the detector plane as a figure of merit to optimize the DP-XGI for a conventional lab x-ray source. The performance of the numerical simulation with realistic component parameters is validated with the experimental results obtained at a lab-based setup. The results of the validation confirm the robustness of the model for the evaluation of the different components of the interferometer and its optimization at low and high energies.

Additional Information

© 2023 Optica Publishing Group under the terms of the Optica Open Access Publishing Agreement. We acknowledge our technicians Gordan Mikuljan and Philipp Zuppiger from the TOMCAT group at the Paul Scherrer Institute for their technical support. Matias Kagias acknowledges the Swiss National Foundation for financial support (grant Nr. P400P2_194371). The authors would like to thank the anonymous reviewers for their useful comments. Funding. Fonds Wetenschappelijk Onderzoek (3179I12018); Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung (159263, R'Equip 189662, Sinergia Nr. CRSII5_183568); SwissLOS Lottery Fund of the Kanton of Aargau, Switzerland; Interreg Vlaanderen-Nederland (Smart*Light); Regional Development Funds (Smart*Light); Provincie Oost-Vlaanderen (Smart*Light) (0386). Data availability. Data underlying the results presented in this paper are not publicly available at this time but may be obtained from the authors upon reasonable request. The authors declare no conflicts of interest related to this article.

Attached Files

Published - optcon-2-1-232.pdf

Files

optcon-2-1-232.pdf

Files (4.7 MB)

Name Size
md5:17326d1c569a1b78456b9819adf1b050
4.7 MB Preview Download

Additional details

Identifiers

Eprint ID
119847
Resolver ID
CaltechAUTHORS:20230307-205876300.26

Related works

Describes
10.1364/OPTCON.478294 (DOI)

Funding

Swiss National Science Foundation (SNSF)
P400P2_194371
Fonds Wetenschappelijk Onderzoek (FWO)
3179I12018
Swiss National Science Foundation (SNSF)
159263
Swiss National Science Foundation (SNSF)
189662
Swiss National Science Foundation (SNSF)
CRSII5_183568
Kanton of Aargau
Interreg Vlaanderen-Nederland
Regional Development Funds
Provincie Oost-Vlaanderen
0386

Dates

Created
2023-05-17
Created from EPrint's datestamp field
Updated
2023-05-17
Created from EPrint's last_modified field