Large Magnetoresistance of Isolated Domain Walls in La2/3Sr1/3MnO3 Nanowires

Author:

Orfila Gloria1,Sanchez‐Manzano David2ORCID,Arora Ashima3,Cuellar Fabian1,Ruiz‐Gómez Sandra4ORCID,Rodriguez‐Corvillo Sara1,López Sandra1,Peralta Andrea1,Carreira Santiago J.2,Gallego Fernando1ORCID,Tornos Javier1,Rouco Victor1,Riquelme Juan J.56,Munuera Carmen56ORCID,Mompean Federico J.56,Garcia‐Hernandez Mar56,Sefrioui Zouhair16,Villegas Javier E.2ORCID,Perez Lucas17ORCID,Rivera‐Calzada Alberto16ORCID,Leon Carlos16,Valencia Sergio3ORCID,Santamaria Jacobo16ORCID

Affiliation:

1. GFMC, Department Física de Materiales, Facultad de Física Universidad Complutense Madrid 28040 Spain

2. Unité Mixte de Physique CNRS Thales Palaiseau 91767 France

3. Department Spin and Topology in Quantum Materials Helmholtz‐Zentrum Berlin für Materialien und Energie 12489 Berlin Germany

4. Physics of Quantum Materials Max Planck Institute for Chemical Physics of Solids 01187 Dresden Germany

5. Departamento de Sistemas con baja dimensionalidad Instituto de Ciencia de Materiales de Madrid (ICMM), CSIC 28049 Cantoblanco Spain

6. Unidad Asociada UCM/CSIC Laboratorio de Heteroestructuras con aplicación en spintrónica 28140 Madrid Spain

7. Instituto Madrileño de Estudios Avanzados – IMDEA Nanoscience 28049 Madrid Spain

Abstract

AbstractGeneration, manipulation, and sensing of magnetic domain walls are cornerstones in the design of efficient spintronic devices. Half‐metals are amenable for this purpose as large low field magnetoresistance signals can be expected from spin accumulation at spin textures. Among half metals, La1−xSrxMnO3 (LSMO) manganites are considered as promising candidates for their robust half‐metallic ground state, Curie temperature above room temperature (Tc = 360 K, for x = 1/3), and chemical stability. Yet domain wall magnetoresistance is poorly understood, with large discrepancies in the reported values and conflicting interpretation of experimental data due to the entanglement of various source of magnetoresistance, namely, spin accumulation, anisotropic magnetoresistance, and colossal magnetoresistance. In this work, the domain wall magnetoresistance is measured in LSMO cross‐shape nanowires with single‐domain walls nucleated across the current path. Magnetoresistance values above 10% are found to be originating at the spin accumulation caused by the mistracking effect of the spin texture of the domain wall by the conduction electrons. Fundamentally, this result shows the importance on non‐adiabatic processes at spin textures despite the strong Hund coupling to the localized t2g electrons of the manganite. These large magnetoresistance values are high enough for encoding and reading magnetic bits in future oxide spintronic sensors.

Funder

Agence Nationale de la Recherche

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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