Emergence of Interfacial Magnetism in Strongly‐Correlated Nickelate‐Titanate Superlattices

Author:

Asmara Teguh Citra12ORCID,Green Robert J.34,Suter Andreas5,Wei Yuan1,Zhang Wenliang1,Knez Daniel6,Harris Grant3,Tseng Yi1,Yu Tianlun1,Betto Davide7,Garcia‐Fernandez Mirian8,Agrestini Stefano8,Klein Yannick Maximilian9,Kumar Neeraj10,Galdino Carlos William1,Salman Zaher5,Prokscha Thomas5,Medarde Marisa9,Müller Elisabeth11,Soh Yona10,Brookes Nicholas B.7,Zhou Ke‐Jin8,Radovic Milan1,Schmitt Thorsten1ORCID

Affiliation:

1. PSI Center for Photon Science Paul Scherrer Institute Forschungsstrasse 111 Villigen PSI CH‐5232 Switzerland

2. European X‐Ray Free‐Electron Laser Facility GmbH Holzkoppel 4 22869 Schenefeld Germany

3. Department of Physics & Engineering Physics University of Saskatchewan 116 Science Place Saskatoon SK S7N 5E2 Canada

4. Stewart Blusson Quantum Matter Institute University of British Columbia 2355 East Mall Vancouver BC V6T 1Z4 Canada

5. Laboratory for Muon‐Spin Spectroscopy Paul Scherrer Institute Forschungsstrasse 111 Villigen PSI CH‐5232 Switzerland

6. Institute of Electron Microscopy and Nanoanalysis Graz University of Technology Steyrergasse 17 Graz 8010 Austria

7. European Synchrotron Radiation Facility 71, avenue des Martyrs, Cedex 9 Grenoble F‐38043 France

8. Diamond Light Source Harwell Science and Innovation Campus Didcot Oxfordshire OX11 0DE UK

9. Laboratory for Multiscale Materials Experiments Paul Scherrer Institute Forschungsstrasse 111 Villigen PSI CH‐5232 Switzerland

10. Paul Scherrer Institute Forschungsstrasse 111 Villigen PSI CH‐5232 Switzerland

11. Electron Microscopy Facility Paul Scherrer Institut Forschungsstrasse 111 Villigen PSI CH‐5232 Switzerland

Abstract

AbstractStrongly‐correlated transition‐metal oxides are widely known for their various exotic phenomena. This is exemplified by rare‐earth nickelates such as LaNiO3, which possess intimate interconnections between their electronic, spin, and lattice degrees of freedom. Their properties can be further enhanced by pairing them in hybrid heterostructures, which can lead to hidden phases and emergent phenomena. An important example is the LaNiO3/LaTiO3 superlattice, where an interlayer electron transfer has been observed from LaTiO3 into LaNiO3 leading to a high‐spin state. However, macroscopic emergence of magnetic order associated with this high‐spin state has so far not been observed. Here, by using muon spin rotation, x‐ray absorption, and resonant inelastic x‐ray scattering, direct evidence of an emergent antiferromagnetic order with high magnon energy and exchange interactions at the LaNiO3/LaTiO3 interface is presented. As the magnetism is purely interfacial, a single LaNiO3/LaTiO3 interface can essentially behave as an atomically thin strongly‐correlated quasi‐2D antiferromagnet, potentially allowing its technological utilization in advanced spintronic devices. Furthermore, its strong quasi‐2D magnetic correlations, orbitally‐polarized planar ligand holes, and layered superlattice design make its electronic, magnetic, and lattice configurations resemble the precursor states of superconducting cuprates and nickelates, but with an S→1 spin state instead.

Funder

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

H2020 European Research Council

Publisher

Wiley

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