X-ray in-line holography and holotomography at the NanoMAX beamline
Coherent X-ray imaging techniques, such as in-line holography, exploit the high brilliance provided by diffraction-limited storage rings to perform imaging sensitive to the electron density through contrast due to the phase shift, rather than conventional attenuation contrast. Thus, coherent X-ray i...
Main Authors: | , , , , , , , , , , , , , , |
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Format: | Article |
Language: | English |
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International Union of Crystallography
2022-01-01
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Series: | Journal of Synchrotron Radiation |
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Online Access: | http://scripts.iucr.org/cgi-bin/paper?S1600577521012200 |
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author | Sebastian Kalbfleisch Yuhe Zhang Maik Kahnt Khachiwan Buakor Max Langer Till Dreier Hanna Dierks Philip Stjärneblad Emanuel Larsson Korneliya Gordeyeva Lert Chayanun Daniel Söderberg Jesper Wallentin Martin Bech Pablo Villanueva-Perez |
author_facet | Sebastian Kalbfleisch Yuhe Zhang Maik Kahnt Khachiwan Buakor Max Langer Till Dreier Hanna Dierks Philip Stjärneblad Emanuel Larsson Korneliya Gordeyeva Lert Chayanun Daniel Söderberg Jesper Wallentin Martin Bech Pablo Villanueva-Perez |
author_sort | Sebastian Kalbfleisch |
collection | DOAJ |
description | Coherent X-ray imaging techniques, such as in-line holography, exploit the high brilliance provided by diffraction-limited storage rings to perform imaging sensitive to the electron density through contrast due to the phase shift, rather than conventional attenuation contrast. Thus, coherent X-ray imaging techniques enable high-sensitivity and low-dose imaging, especially for low-atomic-number (Z) chemical elements and materials with similar attenuation contrast. Here, the first implementation of in-line holography at the NanoMAX beamline is presented, which benefits from the exceptional focusing capabilities and the high brilliance provided by MAX IV, the first operational diffraction-limited storage ring up to approximately 300 eV. It is demonstrated that in-line holography at NanoMAX can provide 2D diffraction-limited images, where the achievable resolution is only limited by the 70 nm focal spot at 13 keV X-ray energy. Also, the 3D capabilities of this instrument are demonstrated by performing holotomography on a chalk sample at a mesoscale resolution of around 155 nm. It is foreseen that in-line holography will broaden the spectra of capabilities of MAX IV by providing fast 2D and 3D electron density images from mesoscale down to nanoscale resolution. |
first_indexed | 2024-12-18T10:09:42Z |
format | Article |
id | doaj.art-b54c14adef7548318f43594f65d2e755 |
institution | Directory Open Access Journal |
issn | 1600-5775 |
language | English |
last_indexed | 2024-12-18T10:09:42Z |
publishDate | 2022-01-01 |
publisher | International Union of Crystallography |
record_format | Article |
series | Journal of Synchrotron Radiation |
spelling | doaj.art-b54c14adef7548318f43594f65d2e7552022-12-21T21:11:27ZengInternational Union of CrystallographyJournal of Synchrotron Radiation1600-57752022-01-0129122422910.1107/S1600577521012200mo5242X-ray in-line holography and holotomography at the NanoMAX beamlineSebastian Kalbfleisch0Yuhe Zhang1Maik Kahnt2Khachiwan Buakor3Max Langer4Till Dreier5Hanna Dierks6Philip Stjärneblad7Emanuel Larsson8Korneliya Gordeyeva9Lert Chayanun10Daniel Söderberg11Jesper Wallentin12Martin Bech13Pablo Villanueva-Perez14MAX IV Laboratory, Lund University, 22100 Lund, SwedenDivision of Synchrotron Radiation Research and NanoLund, Department of Physics, Lund University, 22100 Lund, SwedenMAX IV Laboratory, Lund University, 22100 Lund, SwedenDivision of Synchrotron Radiation Research and NanoLund, Department of Physics, Lund University, 22100 Lund, SwedenUniv. Grenoble Alpes, CNRS, UMR 5525, VetAgro Sup, Grenoble INP, TIMC, 38000 Grenoble, FranceDepartment for Medical Radiation Physics, Clinical Sciences Lund, Lund University, 221 85 Lund, SwedenDivision of Synchrotron Radiation Research and NanoLund, Department of Physics, Lund University, 22100 Lund, SwedenDivision of Synchrotron Radiation Research and NanoLund, Department of Physics, Lund University, 22100 Lund, SwedenDivision of Solid Mechanics and LUNARC, Department of Construction Sciences, Lund University, 22100 Lund, SwedenWallenberg Wood Science Center, Department of Fibre and Polymer Technology, KTH Royal Institute of Technology, 10044 Stockholm, SwedenDivision of Synchrotron Radiation Research and NanoLund, Department of Physics, Lund University, 22100 Lund, SwedenWallenberg Wood Science Center, Department of Fibre and Polymer Technology, KTH Royal Institute of Technology, 10044 Stockholm, SwedenDivision of Synchrotron Radiation Research and NanoLund, Department of Physics, Lund University, 22100 Lund, SwedenDepartment for Medical Radiation Physics, Clinical Sciences Lund, Lund University, 221 85 Lund, SwedenDivision of Synchrotron Radiation Research and NanoLund, Department of Physics, Lund University, 22100 Lund, SwedenCoherent X-ray imaging techniques, such as in-line holography, exploit the high brilliance provided by diffraction-limited storage rings to perform imaging sensitive to the electron density through contrast due to the phase shift, rather than conventional attenuation contrast. Thus, coherent X-ray imaging techniques enable high-sensitivity and low-dose imaging, especially for low-atomic-number (Z) chemical elements and materials with similar attenuation contrast. Here, the first implementation of in-line holography at the NanoMAX beamline is presented, which benefits from the exceptional focusing capabilities and the high brilliance provided by MAX IV, the first operational diffraction-limited storage ring up to approximately 300 eV. It is demonstrated that in-line holography at NanoMAX can provide 2D diffraction-limited images, where the achievable resolution is only limited by the 70 nm focal spot at 13 keV X-ray energy. Also, the 3D capabilities of this instrument are demonstrated by performing holotomography on a chalk sample at a mesoscale resolution of around 155 nm. It is foreseen that in-line holography will broaden the spectra of capabilities of MAX IV by providing fast 2D and 3D electron density images from mesoscale down to nanoscale resolution.http://scripts.iucr.org/cgi-bin/paper?S1600577521012200holographyholotomography2d and 3d x-ray imagingcoherent imagingdiffraction-limited storage ring |
spellingShingle | Sebastian Kalbfleisch Yuhe Zhang Maik Kahnt Khachiwan Buakor Max Langer Till Dreier Hanna Dierks Philip Stjärneblad Emanuel Larsson Korneliya Gordeyeva Lert Chayanun Daniel Söderberg Jesper Wallentin Martin Bech Pablo Villanueva-Perez X-ray in-line holography and holotomography at the NanoMAX beamline Journal of Synchrotron Radiation holography holotomography 2d and 3d x-ray imaging coherent imaging diffraction-limited storage ring |
title | X-ray in-line holography and holotomography at the NanoMAX beamline |
title_full | X-ray in-line holography and holotomography at the NanoMAX beamline |
title_fullStr | X-ray in-line holography and holotomography at the NanoMAX beamline |
title_full_unstemmed | X-ray in-line holography and holotomography at the NanoMAX beamline |
title_short | X-ray in-line holography and holotomography at the NanoMAX beamline |
title_sort | x ray in line holography and holotomography at the nanomax beamline |
topic | holography holotomography 2d and 3d x-ray imaging coherent imaging diffraction-limited storage ring |
url | http://scripts.iucr.org/cgi-bin/paper?S1600577521012200 |
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