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Laser-wakefield accelerators for high-resolution X-ray imaging of complex microstructures

Laser-wakefield accelerators (LWFAs) are high acceleration-gradient plasma-based particle accelerators capable of producing ultra-relativistic electron beams. Within the strong focusing fields of the wakefield, accelerated electrons undergo betatron oscillations, emitting a bright pulse of X-rays wi...

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Autores principales: Hussein, A. E., Senabulya, N., Ma, Y., Streeter, M. J. V., Kettle, B., Dann, S. J. D., Albert, F., Bourgeois, N., Cipiccia, S., Cole, J. M., Finlay, O., Gerstmayr, E., González, I. Gallardo, Higginbotham, A., Jaroszynski, D. A., Falk, K., Krushelnick, K., Lemos, N., Lopes, N. C., Lumsdon, C., Lundh, O., Mangles, S. P. D., Najmudin, Z., Rajeev, P. P., Schlepütz, C. M., Shahzad, M., Smid, M., Spesyvtsev, R., Symes, D. R., Vieux, G., Willingale, L., Wood, J. C., Shahani, A. J., Thomas, A. G. R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6397215/
https://www.ncbi.nlm.nih.gov/pubmed/30824838
http://dx.doi.org/10.1038/s41598-019-39845-4
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author Hussein, A. E.
Senabulya, N.
Ma, Y.
Streeter, M. J. V.
Kettle, B.
Dann, S. J. D.
Albert, F.
Bourgeois, N.
Cipiccia, S.
Cole, J. M.
Finlay, O.
Gerstmayr, E.
González, I. Gallardo
Higginbotham, A.
Jaroszynski, D. A.
Falk, K.
Krushelnick, K.
Lemos, N.
Lopes, N. C.
Lumsdon, C.
Lundh, O.
Mangles, S. P. D.
Najmudin, Z.
Rajeev, P. P.
Schlepütz, C. M.
Shahzad, M.
Smid, M.
Spesyvtsev, R.
Symes, D. R.
Vieux, G.
Willingale, L.
Wood, J. C.
Shahani, A. J.
Thomas, A. G. R.
author_facet Hussein, A. E.
Senabulya, N.
Ma, Y.
Streeter, M. J. V.
Kettle, B.
Dann, S. J. D.
Albert, F.
Bourgeois, N.
Cipiccia, S.
Cole, J. M.
Finlay, O.
Gerstmayr, E.
González, I. Gallardo
Higginbotham, A.
Jaroszynski, D. A.
Falk, K.
Krushelnick, K.
Lemos, N.
Lopes, N. C.
Lumsdon, C.
Lundh, O.
Mangles, S. P. D.
Najmudin, Z.
Rajeev, P. P.
Schlepütz, C. M.
Shahzad, M.
Smid, M.
Spesyvtsev, R.
Symes, D. R.
Vieux, G.
Willingale, L.
Wood, J. C.
Shahani, A. J.
Thomas, A. G. R.
author_sort Hussein, A. E.
collection PubMed
description Laser-wakefield accelerators (LWFAs) are high acceleration-gradient plasma-based particle accelerators capable of producing ultra-relativistic electron beams. Within the strong focusing fields of the wakefield, accelerated electrons undergo betatron oscillations, emitting a bright pulse of X-rays with a micrometer-scale source size that may be used for imaging applications. Non-destructive X-ray phase contrast imaging and tomography of heterogeneous materials can provide insight into their processing, structure, and performance. To demonstrate the imaging capability of X-rays from an LWFA we have examined an irregular eutectic in the aluminum-silicon (Al-Si) system. The lamellar spacing of the Al-Si eutectic microstructure is on the order of a few micrometers, thus requiring high spatial resolution. We present comparisons between the sharpness and spatial resolution in phase contrast images of this eutectic alloy obtained via X-ray phase contrast imaging at the Swiss Light Source (SLS) synchrotron and X-ray projection microscopy via an LWFA source. An upper bound on the resolving power of 2.7 ± 0.3 μm of the LWFA source in this experiment was measured. These results indicate that betatron X-rays from laser wakefield acceleration can provide an alternative to conventional synchrotron sources for high resolution imaging of eutectics and, more broadly, complex microstructures.
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spelling pubmed-63972152019-03-05 Laser-wakefield accelerators for high-resolution X-ray imaging of complex microstructures Hussein, A. E. Senabulya, N. Ma, Y. Streeter, M. J. V. Kettle, B. Dann, S. J. D. Albert, F. Bourgeois, N. Cipiccia, S. Cole, J. M. Finlay, O. Gerstmayr, E. González, I. Gallardo Higginbotham, A. Jaroszynski, D. A. Falk, K. Krushelnick, K. Lemos, N. Lopes, N. C. Lumsdon, C. Lundh, O. Mangles, S. P. D. Najmudin, Z. Rajeev, P. P. Schlepütz, C. M. Shahzad, M. Smid, M. Spesyvtsev, R. Symes, D. R. Vieux, G. Willingale, L. Wood, J. C. Shahani, A. J. Thomas, A. G. R. Sci Rep Article Laser-wakefield accelerators (LWFAs) are high acceleration-gradient plasma-based particle accelerators capable of producing ultra-relativistic electron beams. Within the strong focusing fields of the wakefield, accelerated electrons undergo betatron oscillations, emitting a bright pulse of X-rays with a micrometer-scale source size that may be used for imaging applications. Non-destructive X-ray phase contrast imaging and tomography of heterogeneous materials can provide insight into their processing, structure, and performance. To demonstrate the imaging capability of X-rays from an LWFA we have examined an irregular eutectic in the aluminum-silicon (Al-Si) system. The lamellar spacing of the Al-Si eutectic microstructure is on the order of a few micrometers, thus requiring high spatial resolution. We present comparisons between the sharpness and spatial resolution in phase contrast images of this eutectic alloy obtained via X-ray phase contrast imaging at the Swiss Light Source (SLS) synchrotron and X-ray projection microscopy via an LWFA source. An upper bound on the resolving power of 2.7 ± 0.3 μm of the LWFA source in this experiment was measured. These results indicate that betatron X-rays from laser wakefield acceleration can provide an alternative to conventional synchrotron sources for high resolution imaging of eutectics and, more broadly, complex microstructures. Nature Publishing Group UK 2019-03-01 /pmc/articles/PMC6397215/ /pubmed/30824838 http://dx.doi.org/10.1038/s41598-019-39845-4 Text en © The Author(s) 2019 Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/.
spellingShingle Article
Hussein, A. E.
Senabulya, N.
Ma, Y.
Streeter, M. J. V.
Kettle, B.
Dann, S. J. D.
Albert, F.
Bourgeois, N.
Cipiccia, S.
Cole, J. M.
Finlay, O.
Gerstmayr, E.
González, I. Gallardo
Higginbotham, A.
Jaroszynski, D. A.
Falk, K.
Krushelnick, K.
Lemos, N.
Lopes, N. C.
Lumsdon, C.
Lundh, O.
Mangles, S. P. D.
Najmudin, Z.
Rajeev, P. P.
Schlepütz, C. M.
Shahzad, M.
Smid, M.
Spesyvtsev, R.
Symes, D. R.
Vieux, G.
Willingale, L.
Wood, J. C.
Shahani, A. J.
Thomas, A. G. R.
Laser-wakefield accelerators for high-resolution X-ray imaging of complex microstructures
title Laser-wakefield accelerators for high-resolution X-ray imaging of complex microstructures
title_full Laser-wakefield accelerators for high-resolution X-ray imaging of complex microstructures
title_fullStr Laser-wakefield accelerators for high-resolution X-ray imaging of complex microstructures
title_full_unstemmed Laser-wakefield accelerators for high-resolution X-ray imaging of complex microstructures
title_short Laser-wakefield accelerators for high-resolution X-ray imaging of complex microstructures
title_sort laser-wakefield accelerators for high-resolution x-ray imaging of complex microstructures
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6397215/
https://www.ncbi.nlm.nih.gov/pubmed/30824838
http://dx.doi.org/10.1038/s41598-019-39845-4
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