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Autor
Aeschlimann, Martin 1 Akashdeep, Akashdeep 1 D'Souza, Sunil Wilfred 1 Elmers, Hans-Joachim 1 Fedchenko, Olena 1 Hellenes, Anna Birk 1 Hoesch, Moritz 1 Jakob, Gerhard 1 Jungwirth, Tomas 1 Kläui, Mathias 1 Kutnyakhov, Dmytro 1 Minár, Jan 1 Nguyen, Quynh 1 Odenbreit, Lukas 1 Rossnagel, Kai 1 Scholz, Markus 1 Schönhense, Gerd 1 Sinova, Jairo 1 Stadtmüller, Benjamin 1 Tkach, Olena 1
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Pracoviště
Deutsches Elektronen Synchrotron DESY 22607 ... 1 Institut für Experimentalphysik Universität ... 1 Institut für Experimentelle und Angewandte P... 1 Institut für Physik Johannes Gutenberg Unive... 1 Institute of Physics Academy of Sciences of ... 1 Linac Coherent Light Source SLAC National Ac... 1 Ruprecht Haensel Laboratory Deutsches Elektr... 1 School of Physics and Astronomy University o... 1 Sumy State University Rymski Korsakov 2 4000... 1 University of West Bohemia New Technologies ... 1 Universität Kaiserslautern Department of Phy... 1
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Nejvíce citovaný článek - PubMed ID 10040793
- Fedchenko, Olena
- Minár, Jan
- Akashdeep, Akashdeep
- D'Souza, Sunil Wilfred
- Vasilyev, Dmitry
- Tkach, Olena
- Odenbreit, Lukas
- Nguyen, Quynh
- Kutnyakhov, Dmytro
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Wind, Nils
Autor Wind, Nils ORCID Ruprecht Haensel Laboratory, Deutsches Elektronen-Synchrotron DESY, 22607 Hamburg, Germany Institut für Experimentalphysik, Universität Hamburg, 22761 Hamburg, Germany Institut für Experimentelle und Angewandte Physik, Christian-Albrechts-Universität zu Kiel, 24098 Kiel, Germany
PubMed
38295181
PubMed Central
PMC10830110
DOI
10.1126/sciadv.adj4883
Knihovny.cz E-zdroje
Altermagnets are an emerging elementary class of collinear magnets. Unlike ferromagnets, their distinct crystal symmetries inhibit magnetization while, unlike antiferromagnets, they promote strong spin polarization in the band structure. The corresponding unconventional mechanism of time-reversal symmetry breaking without magnetization in the electronic spectra has been regarded as a primary signature of altermagnetism but has not been experimentally visualized to date. We directly observe strong time-reversal symmetry breaking in the band structure of altermagnetic RuO2 by detecting magnetic circular dichroism in angle-resolved photoemission spectra. Our experimental results, supported by ab initio calculations, establish the microscopic electronic structure basis for a family of interesting phenomena and functionalities in fields ranging from topological matter to spintronics, which are based on the unconventional time-reversal symmetry breaking in altermagnets.
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Po ukončení testovacího provozu bude odkaz přesměrován adresu produkční verze portálu Medvik.