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Perpendicular switching of a single ferromagnetic layer induced by in-plane current injection

Author

Listed:
  • Ioan Mihai Miron

    (Catalan Institute of Nanotechnology (ICN-CIN2), E-08193 Barcelona, Spain)

  • Kevin Garello

    (Catalan Institute of Nanotechnology (ICN-CIN2), E-08193 Barcelona, Spain)

  • Gilles Gaudin

    (SPINTEC, UMR-8191, CEA/CNRS/UJF/GINP, INAC, F-38054 Grenoble, France)

  • Pierre-Jean Zermatten

    (SPINTEC, UMR-8191, CEA/CNRS/UJF/GINP, INAC, F-38054 Grenoble, France)

  • Marius V. Costache

    (Catalan Institute of Nanotechnology (ICN-CIN2), E-08193 Barcelona, Spain)

  • Stéphane Auffret

    (SPINTEC, UMR-8191, CEA/CNRS/UJF/GINP, INAC, F-38054 Grenoble, France)

  • Sébastien Bandiera

    (SPINTEC, UMR-8191, CEA/CNRS/UJF/GINP, INAC, F-38054 Grenoble, France)

  • Bernard Rodmacq

    (SPINTEC, UMR-8191, CEA/CNRS/UJF/GINP, INAC, F-38054 Grenoble, France)

  • Alain Schuhl

    (SPINTEC, UMR-8191, CEA/CNRS/UJF/GINP, INAC, F-38054 Grenoble, France)

  • Pietro Gambardella

    (Catalan Institute of Nanotechnology (ICN-CIN2), E-08193 Barcelona, Spain
    Departament de Física, Universitat Autonoma de Barcelona, E-08193 Barcelona, Spain
    Institució Catalana de Recerca i Estudis Avançats (ICREA), E-08010 Barcelona, Spain)

Abstract

Modern computing technology is based on writing, storing and retrieving information encoded as magnetic bits. Although the giant magnetoresistance effect has improved the electrical read out of memory elements, magnetic writing remains the object of major research efforts1. Despite several reports of methods to reverse the polarity of nanosized magnets by means of local electric fields2,3 and currents4,5,6, the simple reversal of a high-coercivity, single-layer ferromagnet remains a challenge. Materials with large coercivity and perpendicular magnetic anisotropy represent the mainstay of data storage media, owing to their ability to retain a stable magnetization state over long periods of time and their amenability to miniaturization7. However, the same anisotropy properties that make a material attractive for storage also make it hard to write to8. Here we demonstrate switching of a perpendicularly magnetized cobalt dot driven by in-plane current injection at room temperature. Our device is composed of a thin cobalt layer with strong perpendicular anisotropy and Rashba interaction induced by asymmetric platinum and AlO x interface layers9,10. The effective switching field is orthogonal to the direction of the magnetization and to the Rashba field. The symmetry of the switching field is consistent with the spin accumulation induced by the Rashba interaction and the spin-dependent mobility observed in non-magnetic semiconductors11,12, as well as with the torque induced by the spin Hall effect in the platinum layer13,14. Our measurements indicate that the switching efficiency increases with the magnetic anisotropy of the cobalt layer and the oxidation of the aluminium layer, which is uppermost, suggesting that the Rashba interaction has a key role in the reversal mechanism. To prove the potential of in-plane current switching for spintronic applications, we construct a reprogrammable magnetic switch that can be integrated into non-volatile memory and logic architectures. This device is simple, scalable and compatible with present-day magnetic recording technology.

Suggested Citation

  • Ioan Mihai Miron & Kevin Garello & Gilles Gaudin & Pierre-Jean Zermatten & Marius V. Costache & Stéphane Auffret & Sébastien Bandiera & Bernard Rodmacq & Alain Schuhl & Pietro Gambardella, 2011. "Perpendicular switching of a single ferromagnetic layer induced by in-plane current injection," Nature, Nature, vol. 476(7359), pages 189-193, August.
  • Handle: RePEc:nat:nature:v:476:y:2011:i:7359:d:10.1038_nature10309
    DOI: 10.1038/nature10309
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