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Ultrafast optical demagnetization manipulates nanoscale spin structure in domain walls

During ultrafast demagnetization of a magnetically ordered solid, angular momentum has to be transferred between the spins, electrons, and phonons in the system on femto- and picosecond timescales. Although the intrinsic spin-transfer mechanisms are intensely debated, additional extrinsic mechanisms...

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Autores principales: Pfau, B., Schaffert, S., Müller, L., Gutt, C., Al-Shemmary, A., Büttner, F., Delaunay, R., Düsterer, S., Flewett, S., Frömter, R., Geilhufe, J., Guehrs, E., Günther, C.M., Hawaldar, R., Hille, M., Jaouen, N., Kobs, A., Li, K., Mohanty, J., Redlin, H., Schlotter, W.F., Stickler, D., Treusch, R., Vodungbo, B., Kläui, M., Oepen, H.P., Lüning, J., Grübel, G., Eisebitt, S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Pub. Group 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3493637/
https://www.ncbi.nlm.nih.gov/pubmed/23033076
http://dx.doi.org/10.1038/ncomms2108
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author Pfau, B.
Schaffert, S.
Müller, L.
Gutt, C.
Al-Shemmary, A.
Büttner, F.
Delaunay, R.
Düsterer, S.
Flewett, S.
Frömter, R.
Geilhufe, J.
Guehrs, E.
Günther, C.M.
Hawaldar, R.
Hille, M.
Jaouen, N.
Kobs, A.
Li, K.
Mohanty, J.
Redlin, H.
Schlotter, W.F.
Stickler, D.
Treusch, R.
Vodungbo, B.
Kläui, M.
Oepen, H.P.
Lüning, J.
Grübel, G.
Eisebitt, S.
author_facet Pfau, B.
Schaffert, S.
Müller, L.
Gutt, C.
Al-Shemmary, A.
Büttner, F.
Delaunay, R.
Düsterer, S.
Flewett, S.
Frömter, R.
Geilhufe, J.
Guehrs, E.
Günther, C.M.
Hawaldar, R.
Hille, M.
Jaouen, N.
Kobs, A.
Li, K.
Mohanty, J.
Redlin, H.
Schlotter, W.F.
Stickler, D.
Treusch, R.
Vodungbo, B.
Kläui, M.
Oepen, H.P.
Lüning, J.
Grübel, G.
Eisebitt, S.
author_sort Pfau, B.
collection PubMed
description During ultrafast demagnetization of a magnetically ordered solid, angular momentum has to be transferred between the spins, electrons, and phonons in the system on femto- and picosecond timescales. Although the intrinsic spin-transfer mechanisms are intensely debated, additional extrinsic mechanisms arising due to nanoscale heterogeneity have only recently entered the discussion. Here we use femtosecond X-ray pulses from a free-electron laser to study thin film samples with magnetic domain patterns. We observe an infrared-pump-induced change of the spin structure within the domain walls on the sub-picosecond timescale. This domain-topography-dependent contribution connects the intrinsic demagnetization process in each domain with spin-transport processes across the domain walls, demonstrating the importance of spin-dependent electron transport between differently magnetized regions as an ultrafast demagnetization channel. This pathway exists independent from structural inhomogeneities such as chemical interfaces, and gives rise to an ultrafast spatially varying response to optical pump pulses.
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spelling pubmed-34936372012-11-09 Ultrafast optical demagnetization manipulates nanoscale spin structure in domain walls Pfau, B. Schaffert, S. Müller, L. Gutt, C. Al-Shemmary, A. Büttner, F. Delaunay, R. Düsterer, S. Flewett, S. Frömter, R. Geilhufe, J. Guehrs, E. Günther, C.M. Hawaldar, R. Hille, M. Jaouen, N. Kobs, A. Li, K. Mohanty, J. Redlin, H. Schlotter, W.F. Stickler, D. Treusch, R. Vodungbo, B. Kläui, M. Oepen, H.P. Lüning, J. Grübel, G. Eisebitt, S. Nat Commun Article During ultrafast demagnetization of a magnetically ordered solid, angular momentum has to be transferred between the spins, electrons, and phonons in the system on femto- and picosecond timescales. Although the intrinsic spin-transfer mechanisms are intensely debated, additional extrinsic mechanisms arising due to nanoscale heterogeneity have only recently entered the discussion. Here we use femtosecond X-ray pulses from a free-electron laser to study thin film samples with magnetic domain patterns. We observe an infrared-pump-induced change of the spin structure within the domain walls on the sub-picosecond timescale. This domain-topography-dependent contribution connects the intrinsic demagnetization process in each domain with spin-transport processes across the domain walls, demonstrating the importance of spin-dependent electron transport between differently magnetized regions as an ultrafast demagnetization channel. This pathway exists independent from structural inhomogeneities such as chemical interfaces, and gives rise to an ultrafast spatially varying response to optical pump pulses. Nature Pub. Group 2012-10-02 /pmc/articles/PMC3493637/ /pubmed/23033076 http://dx.doi.org/10.1038/ncomms2108 Text en Copyright © 2012, Nature Publishing Group, a division of Macmillan Publishers Limited. All Rights Reserved. http://creativecommons.org/licenses/by-nc-sa/3.0/ This work is licensed under a Creative Commons Attribution-NonCommercial-Share Alike 3.0 Unported License. To view a copy of this license, visit http://creativecommons.org/licenses/by-nc-sa/3.0/
spellingShingle Article
Pfau, B.
Schaffert, S.
Müller, L.
Gutt, C.
Al-Shemmary, A.
Büttner, F.
Delaunay, R.
Düsterer, S.
Flewett, S.
Frömter, R.
Geilhufe, J.
Guehrs, E.
Günther, C.M.
Hawaldar, R.
Hille, M.
Jaouen, N.
Kobs, A.
Li, K.
Mohanty, J.
Redlin, H.
Schlotter, W.F.
Stickler, D.
Treusch, R.
Vodungbo, B.
Kläui, M.
Oepen, H.P.
Lüning, J.
Grübel, G.
Eisebitt, S.
Ultrafast optical demagnetization manipulates nanoscale spin structure in domain walls
title Ultrafast optical demagnetization manipulates nanoscale spin structure in domain walls
title_full Ultrafast optical demagnetization manipulates nanoscale spin structure in domain walls
title_fullStr Ultrafast optical demagnetization manipulates nanoscale spin structure in domain walls
title_full_unstemmed Ultrafast optical demagnetization manipulates nanoscale spin structure in domain walls
title_short Ultrafast optical demagnetization manipulates nanoscale spin structure in domain walls
title_sort ultrafast optical demagnetization manipulates nanoscale spin structure in domain walls
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3493637/
https://www.ncbi.nlm.nih.gov/pubmed/23033076
http://dx.doi.org/10.1038/ncomms2108
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