THz-Driven Ultrafast Spin-Lattice Scattering in Amorphous Metallic Ferromagnets

We use single-cycle THz fields and the femtosecond magneto-optical Kerr effect to, respectively, excite and probe the magnetization dynamics in two thin-film ferromagnets with different lattice structures: crystalline Fe and amorphous CoFeB. We observe Landau-Lifshitz-torque magnetization dynamics o...

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Veröffentlicht in:Physical review letters 2016-08, Vol.117 (8), p.087205-087205, Article 087205
Hauptverfasser: Bonetti, S, Hoffmann, M C, Sher, M-J, Chen, Z, Yang, S-H, Samant, M G, Parkin, S S P, Dürr, H A
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Sprache:eng
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Zusammenfassung:We use single-cycle THz fields and the femtosecond magneto-optical Kerr effect to, respectively, excite and probe the magnetization dynamics in two thin-film ferromagnets with different lattice structures: crystalline Fe and amorphous CoFeB. We observe Landau-Lifshitz-torque magnetization dynamics of comparable magnitude in both systems, but only the amorphous sample shows ultrafast demagnetization caused by the spin-lattice depolarization of the THz-induced ultrafast spin current. Quantitative modeling shows that such spin-lattice scattering events occur on similar time scales than the conventional spin conserving electronic scattering (∼30  fs). This is significantly faster than optical laser-induced demagnetization. THz conductivity measurements point towards the influence of lattice disorder in amorphous CoFeB as the driving force for enhanced spin-lattice scattering.
ISSN:0031-9007
1079-7114
1079-7114
DOI:10.1103/PhysRevLett.117.087205