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Hard X-ray polarizer to enable simultaneous three-dimensional nanoscale imaging of magnetic structure and lattice strain

Recent progress in the development of dichroic Bragg coherent diffractive imaging, a new technique for simultaneous three-dimensional imaging of strain and magnetization at the nanoscale, is reported. This progress includes the installation of a diamond X-ray phase retarder at beamline 34-ID-C of th...

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Autores principales: Logan, Jonathan, Harder, Ross, Li, Luxi, Haskel, Daniel, Chen, Pice, Winarski, Robert, Fuesz, Peter, Schlagel, Deborah, Vine, David, Benson, Christa, McNulty, Ian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: International Union of Crystallography 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5006654/
https://www.ncbi.nlm.nih.gov/pubmed/27577777
http://dx.doi.org/10.1107/S1600577516009632
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author Logan, Jonathan
Harder, Ross
Li, Luxi
Haskel, Daniel
Chen, Pice
Winarski, Robert
Fuesz, Peter
Schlagel, Deborah
Vine, David
Benson, Christa
McNulty, Ian
author_facet Logan, Jonathan
Harder, Ross
Li, Luxi
Haskel, Daniel
Chen, Pice
Winarski, Robert
Fuesz, Peter
Schlagel, Deborah
Vine, David
Benson, Christa
McNulty, Ian
author_sort Logan, Jonathan
collection PubMed
description Recent progress in the development of dichroic Bragg coherent diffractive imaging, a new technique for simultaneous three-dimensional imaging of strain and magnetization at the nanoscale, is reported. This progress includes the installation of a diamond X-ray phase retarder at beamline 34-ID-C of the Advanced Photon Source. The performance of the phase retarder for tuning X-ray polarization is demonstrated with temperature-dependent X-ray magnetic circular dichroism measurements on a gadolinium foil in transmission and on a Gd(5)Si(2)Ge(2) crystal in diffraction geometry with a partially coherent, focused X-ray beam. Feasibility tests for dichroic Bragg coherent diffractive imaging are presented. These tests include (1) using conventional Bragg coherent diffractive imaging to determine whether the phase retarder introduces aberrations using a nonmagnetic gold nanocrystal as a control sample, and (2) collecting coherent diffraction patterns of a magnetic Gd(5)Si(2)Ge(2) nanocrystal with left- and right-circularly polarized X-rays. Future applications of dichroic Bragg coherent diffractive imaging for the correlation of strain and lattice defects with magnetic ordering and inhomogeneities are considered.
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spelling pubmed-50066542016-09-14 Hard X-ray polarizer to enable simultaneous three-dimensional nanoscale imaging of magnetic structure and lattice strain Logan, Jonathan Harder, Ross Li, Luxi Haskel, Daniel Chen, Pice Winarski, Robert Fuesz, Peter Schlagel, Deborah Vine, David Benson, Christa McNulty, Ian J Synchrotron Radiat Research Papers Recent progress in the development of dichroic Bragg coherent diffractive imaging, a new technique for simultaneous three-dimensional imaging of strain and magnetization at the nanoscale, is reported. This progress includes the installation of a diamond X-ray phase retarder at beamline 34-ID-C of the Advanced Photon Source. The performance of the phase retarder for tuning X-ray polarization is demonstrated with temperature-dependent X-ray magnetic circular dichroism measurements on a gadolinium foil in transmission and on a Gd(5)Si(2)Ge(2) crystal in diffraction geometry with a partially coherent, focused X-ray beam. Feasibility tests for dichroic Bragg coherent diffractive imaging are presented. These tests include (1) using conventional Bragg coherent diffractive imaging to determine whether the phase retarder introduces aberrations using a nonmagnetic gold nanocrystal as a control sample, and (2) collecting coherent diffraction patterns of a magnetic Gd(5)Si(2)Ge(2) nanocrystal with left- and right-circularly polarized X-rays. Future applications of dichroic Bragg coherent diffractive imaging for the correlation of strain and lattice defects with magnetic ordering and inhomogeneities are considered. International Union of Crystallography 2016-08-04 /pmc/articles/PMC5006654/ /pubmed/27577777 http://dx.doi.org/10.1107/S1600577516009632 Text en © Jonathan Logan 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
Logan, Jonathan
Harder, Ross
Li, Luxi
Haskel, Daniel
Chen, Pice
Winarski, Robert
Fuesz, Peter
Schlagel, Deborah
Vine, David
Benson, Christa
McNulty, Ian
Hard X-ray polarizer to enable simultaneous three-dimensional nanoscale imaging of magnetic structure and lattice strain
title Hard X-ray polarizer to enable simultaneous three-dimensional nanoscale imaging of magnetic structure and lattice strain
title_full Hard X-ray polarizer to enable simultaneous three-dimensional nanoscale imaging of magnetic structure and lattice strain
title_fullStr Hard X-ray polarizer to enable simultaneous three-dimensional nanoscale imaging of magnetic structure and lattice strain
title_full_unstemmed Hard X-ray polarizer to enable simultaneous three-dimensional nanoscale imaging of magnetic structure and lattice strain
title_short Hard X-ray polarizer to enable simultaneous three-dimensional nanoscale imaging of magnetic structure and lattice strain
title_sort hard x-ray polarizer to enable simultaneous three-dimensional nanoscale imaging of magnetic structure and lattice strain
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5006654/
https://www.ncbi.nlm.nih.gov/pubmed/27577777
http://dx.doi.org/10.1107/S1600577516009632
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