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Spin-current-mediated rapid magnon localisation and coalescence after ultrafast optical pumping of ferrimagnetic alloys

Authors :
Iacocca, E.
Liu, T-M.
Reid, A. H.
Fu, Z.
Ruta, S.
Granitzka, P. W.
Jal, E.
Bonetti, S.
Gray, A. X.
Graves, C. E.
Kukreja, R.
Chen, Z.
Higley, D. J.
Chase, T.
Guyader, L. Le
Hirsch, K.
Ohldag, H.
Schlotter, W. F.
Dakovski, G. L.
Coslovich, G.
Hoffmann, M. C.
Carron, S.
Tsukamoto, A.
Savoini, M.
Kirilyuk, A.
Kimel, A. V.
Rasing, Th.
Stöhr, J.
Evans, R. F. L.
Ostler, T.
Chantrell, R. W.
Hoefer, M. A.
Silva, T. J.
Dürr, H. A.
Source :
Nature Communications 10, 1756 (2019)
Publication Year :
2018

Abstract

Sub-picosecond magnetisation manipulation via femtosecond optical pumping has attracted wide attention ever since its original discovery in 1996. However, the spatial evolution of the magnetisation is not yet well understood, in part due to the difficulty in experimentally probing such rapid dynamics. Here, we find evidence of rapid magnetic order recovery in materials with perpendicular magnetic anisotropy via nonlinear magnon processes. We identify both localisation and coalescence regimes, whereby localised magnetic textures nucleate and subsequently evolve in accordance with a power law formalism. Coalescence is observed for optical excitations both above and below the switching threshold. Simulations indicate that the ultrafast generation of noncollinear magnetisation via optical pumping establishes exchange-mediated spin currents with an equivalent 100% spin polarised charge current density of $10^8$ A/cm$^2$. Such large spin currents precipitate rapid recovery of magnetic order after optical pumping. These processes suggest an ultrafast optical route for the stabilization of desired meta-stable states, e.g., isolated skyrmions.

Details

Database :
arXiv
Journal :
Nature Communications 10, 1756 (2019)
Publication Type :
Report
Accession number :
edsarx.1809.02076
Document Type :
Working Paper
Full Text :
https://doi.org/10.1038/s41467-019-09577-0