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Stoner versus Heisenberg: Ultrafast exchange reduction and magnon generation during laser-induced demagnetization

Authors :
Dominik Legut
Cong Chen
Patrik Grychtol
Thomas J. Silva
Hans T. Nembach
Zhensheng Tao
Dmitriy Zusin
Henry C. Kapteyn
Peter M. Oppeneer
Martin Aeschlimann
Karel Carva
Ronny Knut
Emrah Turgut
Stefan Mathias
Margaret M. Murnane
Justin M. Shaw
Source :
Physical Review B. 94
Publication Year :
2016
Publisher :
American Physical Society (APS), 2016.

Abstract

The excitation of a ferromagnetic film by a femtosecond laser pulse causes an unexpectedly fast quenching of the film's magnetization on subpicosecond time scales. The microscopic physical mechanisms responsible for this remain a scientific puzzle. The authors employ femtosecond extreme ultraviolet pulses produced by high harmonic generation to follow how the magnetization of a thin cobalt film evolves after the excitation by a 40-fs laser pulse. By measuring the time-, energy-, and angle-resolved magneto-optical response of the Co films across the ${M}_{2,3}$ absorption edge, they obtain a set of time-lapsed magnetic asymmetry spectra, which contain a wealth of information about the different mechanisms at work. When combined with advanced ab initio magneto-optical calculations, they identify two dominant contributions: first, a transient reduction of exchange splitting, and second, magnon excitation. This work thus distinguishes between two fundamental models of magnetism, the Stoner and Heisenberg models, which ascribe magnetization dynamics to an exchange splitting reduction and spin wave excitations, respectively.

Details

ISSN :
24699969 and 24699950
Volume :
94
Database :
OpenAIRE
Journal :
Physical Review B
Accession number :
edsair.doi.dedup.....dc535444139e8645f892c33e981c9755
Full Text :
https://doi.org/10.1103/physrevb.94.220408