Published November 17, 2022 | Version v1
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Data for the article "Strain-induced shape anisotropy in antiferromagnetic structures"

  • 1. Institute ofPhysics, Johannes Gutenberg-University Mainz, 55099 Mainz, Germany
  • 2. Centro de Investigación en Química Biolóxica e Materiais Moleculares (CIQUS), Departamento de Química-Física, Universidade de Santiago de Compostela, Santiago de Compostela 15782, Spain 4Helmholtz-Zentrum
  • 3. Helmholtz-Zentrum Berlin für Materialien und Energie, Albert-Einstein-Strasse 15, 12489 Berlin, Germany
  • 4. Department ofApplied Physics, The University ofTokyo, Tokyo 113-8656, Japan

Description

Data for the article "Strain-induced shape anisotropy in antiferromagnetic structures" 

URL: https://link.aps.org/doi/10.1103/PhysRevB.106.094430
DOI: 10.1103/PhysRevB.106.094430

Notes

The authors thank T. Reimer for skillful technical as- sistance. We thank HZB for the allocation of synchrotron radiation beam time, and we thankfully acknowledge the fi- nancial support by HZB. The work has benefited from insights gained from experiments that were performed at the CIRCE beamline at ALBA Synchrotron with the collaboration of ALBA staff. L.B. acknowledges the European Union's Hori- zon 2020 research and innovation program under the Marie Skłodowska-Curie Grant Agreement No. ARTES 793159. L.B. and M.K. acknowledge support from the Graduate School of Excellence Materials Science in Mainz (MAINZ) Grant No. DFG 266, the DAAD (Spintronics network, Project No. 57334897 and Insulator Spin-Orbitronics, Project No. 57524834), and all groups from Mainz acknowledge that this work was funded by the Deutsche Forschungsgemein- schaft (DFG, German Research Foundation), TRR Grant No. 173-268565370 (Projects No. A01, No. A03, No. A11, No. B02, and No. B12) and KAUST (Grant No. OSR-2019- CRG8-4048). J.S. additionally acknowledges the Alexander von Humboldt Foundation and O.G and J.S. acknowledge the EU FET Open RIA Grant No. 766566 and the Deutsche Forschungsgemeinschaft (DFG, German Research Founda- tion), Grant No. TRR 288-422213477 (Project No. A09) and the Grant Agency of the Czech Republic Grant No. 19- 28375X. R.R. also acknowledges support from the European Commission through the Project 734187-SPICOLOST (Grant No. H2020-MSCA-RISE-2016), the European Union's Hori- zon 2020 research and innovation program through the Marie Sklodowska-Curie Actions Grant Agreement No. SPEC 894006, the MCIN/AEI (Grant No. RYC 2019-026915-I), the Xunta de Galicia (Grant No. ED431B 2021/013, Centro Singular de Investigación de Galicia Accreditation 2019- 2022, Grant No. ED431G 2019/03), and the European Union [European Regional Development Fund (ERDF)]. M.K. acknowledges financial support from the Horizon 2020 Framework Programme of the European Commission un- der FET-Open Grant Agreement No. 863155 (s-Nebula) and from the Research Council of Norway through its Cen- ters of Excellence funding scheme, Project No. 262633 "QuSpin." This work was also supported by ERATO "Spin Quantum Rectification Project" (Grant No. JPMJER1402) and the Grant-in-Aid for Scientific Research on Innova- tive Area, "Nano Spin Conversion Science" (Grant No. JP26103005), Grant-in-Aid for Scientific Research (S) (Grant No. JP19H05600) from JSPS KAKENHI, Japan.

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Related works

Is supplement to
Journal article: 10.1103/PhysRevB.106.094430 (DOI)

Funding

European Commission
SPEC - Spin-Phonon interaction for Energy Conversion 894006
European Commission
SPICOLOST - Spin conversion, logic storage in oxide-based electronics 734187
European Commission
ASPIN - Antiferromagntic spintronics 766566
European Commission
ARTES - AntifeRromagnetic spin Transport and Switching 793159
European Commission
s-NEBULA - Novel Spin-Based Building Blocks for Advanced TeraHertz Applications 863155