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Micrometer-resolution imaging using MÖNCH: towards G(2)-less grating interferometry

MÖNCH is a 25 µm-pitch charge-integrating detector aimed at exploring the limits of current hybrid silicon detector technology. The small pixel size makes it ideal for high-resolution imaging. With an electronic noise of about 110 eV r.m.s., it opens new perspectives for many synchrotron application...

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Autores principales: Cartier, Sebastian, Kagias, Matias, Bergamaschi, Anna, Wang, Zhentian, Dinapoli, Roberto, Mozzanica, Aldo, Ramilli, Marco, Schmitt, Bernd, Brückner, Martin, Fröjdh, Erik, Greiffenberg, Dominic, Mayilyan, Davit, Mezza, Davide, Redford, Sophie, Ruder, Christian, Schädler, Lukas, Shi, Xintian, Thattil, Dhanya, Tinti, Gemma, Zhang, Jiaguo, Stampanoni, Marco
Formato: Online Artículo Texto
Lenguaje:English
Publicado: International Union of Crystallography 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5082464/
https://www.ncbi.nlm.nih.gov/pubmed/27787252
http://dx.doi.org/10.1107/S1600577516014788
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author Cartier, Sebastian
Kagias, Matias
Bergamaschi, Anna
Wang, Zhentian
Dinapoli, Roberto
Mozzanica, Aldo
Ramilli, Marco
Schmitt, Bernd
Brückner, Martin
Fröjdh, Erik
Greiffenberg, Dominic
Mayilyan, Davit
Mezza, Davide
Redford, Sophie
Ruder, Christian
Schädler, Lukas
Shi, Xintian
Thattil, Dhanya
Tinti, Gemma
Zhang, Jiaguo
Stampanoni, Marco
author_facet Cartier, Sebastian
Kagias, Matias
Bergamaschi, Anna
Wang, Zhentian
Dinapoli, Roberto
Mozzanica, Aldo
Ramilli, Marco
Schmitt, Bernd
Brückner, Martin
Fröjdh, Erik
Greiffenberg, Dominic
Mayilyan, Davit
Mezza, Davide
Redford, Sophie
Ruder, Christian
Schädler, Lukas
Shi, Xintian
Thattil, Dhanya
Tinti, Gemma
Zhang, Jiaguo
Stampanoni, Marco
author_sort Cartier, Sebastian
collection PubMed
description MÖNCH is a 25 µm-pitch charge-integrating detector aimed at exploring the limits of current hybrid silicon detector technology. The small pixel size makes it ideal for high-resolution imaging. With an electronic noise of about 110 eV r.m.s., it opens new perspectives for many synchrotron applications where currently the detector is the limiting factor, e.g. inelastic X-ray scattering, Laue diffraction and soft X-ray or high-resolution color imaging. Due to the small pixel pitch, the charge cloud generated by absorbed X-rays is shared between neighboring pixels for most of the photons. Therefore, at low photon fluxes, interpolation algorithms can be applied to determine the absorption position of each photon with a resolution of the order of 1 µm. In this work, the characterization results of one of the MÖNCH prototypes are presented under low-flux conditions. A custom interpolation algorithm is described and applied to the data to obtain high-resolution images. Images obtained in grating interferometry experiments without the use of the absorption grating G(2) are shown and discussed. Perspectives for the future developments of the MÖNCH detector are also presented.
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spelling pubmed-50824642016-11-11 Micrometer-resolution imaging using MÖNCH: towards G(2)-less grating interferometry Cartier, Sebastian Kagias, Matias Bergamaschi, Anna Wang, Zhentian Dinapoli, Roberto Mozzanica, Aldo Ramilli, Marco Schmitt, Bernd Brückner, Martin Fröjdh, Erik Greiffenberg, Dominic Mayilyan, Davit Mezza, Davide Redford, Sophie Ruder, Christian Schädler, Lukas Shi, Xintian Thattil, Dhanya Tinti, Gemma Zhang, Jiaguo Stampanoni, Marco J Synchrotron Radiat Research Papers MÖNCH is a 25 µm-pitch charge-integrating detector aimed at exploring the limits of current hybrid silicon detector technology. The small pixel size makes it ideal for high-resolution imaging. With an electronic noise of about 110 eV r.m.s., it opens new perspectives for many synchrotron applications where currently the detector is the limiting factor, e.g. inelastic X-ray scattering, Laue diffraction and soft X-ray or high-resolution color imaging. Due to the small pixel pitch, the charge cloud generated by absorbed X-rays is shared between neighboring pixels for most of the photons. Therefore, at low photon fluxes, interpolation algorithms can be applied to determine the absorption position of each photon with a resolution of the order of 1 µm. In this work, the characterization results of one of the MÖNCH prototypes are presented under low-flux conditions. A custom interpolation algorithm is described and applied to the data to obtain high-resolution images. Images obtained in grating interferometry experiments without the use of the absorption grating G(2) are shown and discussed. Perspectives for the future developments of the MÖNCH detector are also presented. International Union of Crystallography 2016-10-17 /pmc/articles/PMC5082464/ /pubmed/27787252 http://dx.doi.org/10.1107/S1600577516014788 Text en © Sebastian Cartier et al. 2016 http://creativecommons.org/licenses/by/2.0/uk/ This is an open-access article distributed under the terms of the Creative Commons Attribution Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are cited.
spellingShingle Research Papers
Cartier, Sebastian
Kagias, Matias
Bergamaschi, Anna
Wang, Zhentian
Dinapoli, Roberto
Mozzanica, Aldo
Ramilli, Marco
Schmitt, Bernd
Brückner, Martin
Fröjdh, Erik
Greiffenberg, Dominic
Mayilyan, Davit
Mezza, Davide
Redford, Sophie
Ruder, Christian
Schädler, Lukas
Shi, Xintian
Thattil, Dhanya
Tinti, Gemma
Zhang, Jiaguo
Stampanoni, Marco
Micrometer-resolution imaging using MÖNCH: towards G(2)-less grating interferometry
title Micrometer-resolution imaging using MÖNCH: towards G(2)-less grating interferometry
title_full Micrometer-resolution imaging using MÖNCH: towards G(2)-less grating interferometry
title_fullStr Micrometer-resolution imaging using MÖNCH: towards G(2)-less grating interferometry
title_full_unstemmed Micrometer-resolution imaging using MÖNCH: towards G(2)-less grating interferometry
title_short Micrometer-resolution imaging using MÖNCH: towards G(2)-less grating interferometry
title_sort micrometer-resolution imaging using mönch: towards g(2)-less grating interferometry
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5082464/
https://www.ncbi.nlm.nih.gov/pubmed/27787252
http://dx.doi.org/10.1107/S1600577516014788
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