Transient Non‐Collinear Magnetic State for All‐Optical Magnetization Switching

Author:

Parchenko Sergii123ORCID,Frej Antoni4,Ueda Hiroki56,Carley Robert3,Mercadier Laurent3,Gerasimova Natalia3,Mercurio Giuseppe3,Schlappa Justine3,Yaroslavtsev Alexander3,Agarwal Naman37,Gort Rafael3,Scherz Andreas3,Zvezdin Anatoly89,Stupakiewicz Andrzej4,Staub Urs5

Affiliation:

1. Laboratory for Mesoscopic Systems Department of Materials ETH Zurich Zurich 8093 Switzerland

2. Laboratory for Multiscale Materials Experiments Paul Scherrer Institute Villigen PSI 5232 Switzerland

3. European XFEL Holzkoppel 4 22869 Schenefeld Germany

4. Faculty of Physics University of Bialystok 1L Ciolkowskiego Bialystok 15‐245 Poland

5. Swiss Light Source Paul Scherrer Institute Villigen 5232 Switzerland

6. SwissFEL Paul Scherrer Institut Villigen 5232 Switzerland

7. Department of Physics and Astronomy Aarhus University Aarhus 8000 Denmark

8. Prokhorov General Physics Institute of the Russian Academy of Sciences Vavilova 38 Moscow 119991 Russia

9. Russia – New Spintronic Technologies Bolshoy Bulvar 30, bld. 1 Moscow 121205 Russia

Abstract

AbstractResonant absorption of a photon by bound electrons in a solid can promote an electron to another orbital state or transfer it to a neighboring atomic site. Such a transition in a magnetically ordered material could affect the magnetic order. While this process is an obvious road map for optical control of magnetization, experimental demonstration of such a process remains challenging. Exciting a significant fraction of magnetic ions requires a very intense incoming light beam, as orbital resonances are often weak compared to above‐band‐gap excitations. In the latter case, a sizeable reduction of the magnetization occurs as the absorbed energy increases the spin temperature, masking the non‐thermal optical effects. Here, using ultrafast X‐ray spectroscopy, this work is able to resolve changes in the magnetization state induced by resonant absorption of infrared photons in Co‐doped yttrium iron garnet, with negligible thermal effects. This work finds that the optical excitation of the Co ions affects the two distinct magnetic Fe sublattices differently, resulting in a transient non‐collinear magnetic state. The present results indicate that the all‐optical magnetization switching (AOS) most likely occurs due to the creation of a transient, non‐collinear magnetic state followed by coherent spin rotations of the Fe moments.

Funder

Russian Science Foundation

H2020 Marie Skłodowska-Curie Actions

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

Fundacja na rzecz Nauki Polskiej

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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