Reversible electric-field control of magnetization at oxide interfaces
Electric-field control of magnetism has remained a major challenge which would greatly impact data storage technology. Although progress in this direction has been recently achieved, reversible magnetization switching by an electric field requires the assistance of a bias magnetic field. Here we tak...
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Veröffentlicht in: | Nature Communications 2014-06, Vol.5 (1), p.4215-4215, Article 4215 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Electric-field control of magnetism has remained a major challenge which would greatly impact data storage technology. Although progress in this direction has been recently achieved, reversible magnetization switching by an electric field requires the assistance of a bias magnetic field. Here we take advantage of the novel electronic phenomena emerging at interfaces between correlated oxides and demonstrate reversible, voltage‐driven magnetization switching without magnetic field. Sandwiching a non-superconducting cuprate between two manganese oxide layers, we find a novel form of magnetoelectric coupling arising from the orbital reconstruction at the interface between interfacial Mn spins and localized states in the CuO
2
planes. This results in a ferromagnetic coupling between the manganite layers that can be controlled by a voltage. Consequently, magnetic tunnel junctions can be electrically toggled between two magnetization states, and the corresponding spin‐dependent resistance states, in the absence of a magnetic field.
Control of magnetism by an electric field is of interest for applications such as information storage. Here, the authors achieve this magnetoelectric coupling in a non-superconducting cuprate, sandwiched between two ferromagnetic manganese oxide layers, whose magnetization can be switched with the sole action of an electric field. |
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ISSN: | 2041-1723 2041-1723 |
DOI: | 10.1038/ncomms5215 |