Cargando…

Super-strong magnetic field-dominated ion beam dynamics in focusing plasma devices

High energy density physics is the field of physics dedicated to the study of matter and plasmas in extreme conditions of temperature, densities and pressures. It encompasses multiple disciplines such as material science, planetary science, laboratory and astrophysical plasma science. For the latter...

Descripción completa

Detalles Bibliográficos
Autores principales: Morace, A., Abe, Y., Honrubia, J. J., Iwata, N., Arikawa, Y., Nakata, Y., Johzaki, T., Yogo, A., Sentoku, Y., Mima, K., Ma, T., Mariscal, D., Sakagami, H., Norimatsu, T., Tsubakimoto, K., Kawanaka, J., Tokita, S., Miyanaga, N., Shiraga, H., Sakawa, Y., Nakai, M., Azechi, H., Fujioka, S., Kodama, R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9046386/
https://www.ncbi.nlm.nih.gov/pubmed/35477961
http://dx.doi.org/10.1038/s41598-022-10829-1
_version_ 1784695512995201024
author Morace, A.
Abe, Y.
Honrubia, J. J.
Iwata, N.
Arikawa, Y.
Nakata, Y.
Johzaki, T.
Yogo, A.
Sentoku, Y.
Mima, K.
Ma, T.
Mariscal, D.
Sakagami, H.
Norimatsu, T.
Tsubakimoto, K.
Kawanaka, J.
Tokita, S.
Miyanaga, N.
Shiraga, H.
Sakawa, Y.
Nakai, M.
Azechi, H.
Fujioka, S.
Kodama, R.
author_facet Morace, A.
Abe, Y.
Honrubia, J. J.
Iwata, N.
Arikawa, Y.
Nakata, Y.
Johzaki, T.
Yogo, A.
Sentoku, Y.
Mima, K.
Ma, T.
Mariscal, D.
Sakagami, H.
Norimatsu, T.
Tsubakimoto, K.
Kawanaka, J.
Tokita, S.
Miyanaga, N.
Shiraga, H.
Sakawa, Y.
Nakai, M.
Azechi, H.
Fujioka, S.
Kodama, R.
author_sort Morace, A.
collection PubMed
description High energy density physics is the field of physics dedicated to the study of matter and plasmas in extreme conditions of temperature, densities and pressures. It encompasses multiple disciplines such as material science, planetary science, laboratory and astrophysical plasma science. For the latter, high energy density states can be accompanied by extreme radiation environments and super-strong magnetic fields. The creation of high energy density states in the laboratory consists in concentrating/depositing large amounts of energy in a reduced mass, typically solid material sample or dense plasma, over a time shorter than the typical timescales of heat conduction and hydrodynamic expansion. Laser-generated, high current–density ion beams constitute an important tool for the creation of high energy density states in the laboratory. Focusing plasma devices, such as cone-targets are necessary in order to focus and direct these intense beams towards the heating sample or dense plasma, while protecting the proton generation foil from the harsh environments typical of an integrated high-power laser experiment. A full understanding of the ion beam dynamics in focusing devices is therefore necessary in order to properly design and interpret the numerous experiments in the field. In this work, we report a detailed investigation of large-scale, kilojoule-class laser-generated ion beam dynamics in focusing devices and we demonstrate that high-brilliance ion beams compress magnetic fields to amplitudes exceeding tens of kilo-Tesla, which in turn play a dominant role in the focusing process, resulting either in a worsening or enhancement of focusing capabilities depending on the target geometry.
format Online
Article
Text
id pubmed-9046386
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Nature Publishing Group UK
record_format MEDLINE/PubMed
spelling pubmed-90463862022-04-29 Super-strong magnetic field-dominated ion beam dynamics in focusing plasma devices Morace, A. Abe, Y. Honrubia, J. J. Iwata, N. Arikawa, Y. Nakata, Y. Johzaki, T. Yogo, A. Sentoku, Y. Mima, K. Ma, T. Mariscal, D. Sakagami, H. Norimatsu, T. Tsubakimoto, K. Kawanaka, J. Tokita, S. Miyanaga, N. Shiraga, H. Sakawa, Y. Nakai, M. Azechi, H. Fujioka, S. Kodama, R. Sci Rep Article High energy density physics is the field of physics dedicated to the study of matter and plasmas in extreme conditions of temperature, densities and pressures. It encompasses multiple disciplines such as material science, planetary science, laboratory and astrophysical plasma science. For the latter, high energy density states can be accompanied by extreme radiation environments and super-strong magnetic fields. The creation of high energy density states in the laboratory consists in concentrating/depositing large amounts of energy in a reduced mass, typically solid material sample or dense plasma, over a time shorter than the typical timescales of heat conduction and hydrodynamic expansion. Laser-generated, high current–density ion beams constitute an important tool for the creation of high energy density states in the laboratory. Focusing plasma devices, such as cone-targets are necessary in order to focus and direct these intense beams towards the heating sample or dense plasma, while protecting the proton generation foil from the harsh environments typical of an integrated high-power laser experiment. A full understanding of the ion beam dynamics in focusing devices is therefore necessary in order to properly design and interpret the numerous experiments in the field. In this work, we report a detailed investigation of large-scale, kilojoule-class laser-generated ion beam dynamics in focusing devices and we demonstrate that high-brilliance ion beams compress magnetic fields to amplitudes exceeding tens of kilo-Tesla, which in turn play a dominant role in the focusing process, resulting either in a worsening or enhancement of focusing capabilities depending on the target geometry. Nature Publishing Group UK 2022-04-27 /pmc/articles/PMC9046386/ /pubmed/35477961 http://dx.doi.org/10.1038/s41598-022-10829-1 Text en © The Author(s) 2022 https://creativecommons.org/licenses/by/4.0/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 licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence 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 licence, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Morace, A.
Abe, Y.
Honrubia, J. J.
Iwata, N.
Arikawa, Y.
Nakata, Y.
Johzaki, T.
Yogo, A.
Sentoku, Y.
Mima, K.
Ma, T.
Mariscal, D.
Sakagami, H.
Norimatsu, T.
Tsubakimoto, K.
Kawanaka, J.
Tokita, S.
Miyanaga, N.
Shiraga, H.
Sakawa, Y.
Nakai, M.
Azechi, H.
Fujioka, S.
Kodama, R.
Super-strong magnetic field-dominated ion beam dynamics in focusing plasma devices
title Super-strong magnetic field-dominated ion beam dynamics in focusing plasma devices
title_full Super-strong magnetic field-dominated ion beam dynamics in focusing plasma devices
title_fullStr Super-strong magnetic field-dominated ion beam dynamics in focusing plasma devices
title_full_unstemmed Super-strong magnetic field-dominated ion beam dynamics in focusing plasma devices
title_short Super-strong magnetic field-dominated ion beam dynamics in focusing plasma devices
title_sort super-strong magnetic field-dominated ion beam dynamics in focusing plasma devices
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9046386/
https://www.ncbi.nlm.nih.gov/pubmed/35477961
http://dx.doi.org/10.1038/s41598-022-10829-1
work_keys_str_mv AT moracea superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT abey superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT honrubiajj superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT iwatan superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT arikaway superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT nakatay superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT johzakit superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT yogoa superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT sentokuy superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT mimak superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT mat superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT mariscald superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT sakagamih superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT norimatsut superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT tsubakimotok superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT kawanakaj superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT tokitas superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT miyanagan superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT shiragah superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT sakaway superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT nakaim superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT azechih superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT fujiokas superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices
AT kodamar superstrongmagneticfielddominatedionbeamdynamicsinfocusingplasmadevices