| Literature DB >> 28825713 |
Manuel Baumgartner1, Kevin Garello1,2, Johannes Mendil1, Can Onur Avci1, Eva Grimaldi1, Christoph Murer1, Junxiao Feng1, Mihai Gabureac1, Christian Stamm1, Yves Acremann3, Simone Finizio4, Sebastian Wintz4, Jörg Raabe4, Pietro Gambardella1.
Abstract
Current-induced spin-orbit torques are one of the most effective ways to manipulate the magnetization in spintronic devices, and hold promise for fast switching applications in non-volatile memory and logic units. Here, we report the direct observation of spin-orbit-torque-driven magnetization dynamics in Pt/Co/AlOx dots during current pulse injection. Time-resolved X-ray images with 25 nm spatial and 100 ps temporal resolution reveal that switching is achieved within the duration of a subnanosecond current pulse by the fast nucleation of an inverted domain at the edge of the dot and propagation of a tilted domain wall across the dot. The nucleation point is deterministic and alternates between the four dot quadrants depending on the sign of the magnetization, current and external field. Our measurements reveal how the magnetic symmetry is broken by the concerted action of the damping-like and field-like spin-orbit torques and the Dzyaloshinskii-Moriya interaction, and show that reproducible switching events can be obtained for over 1012 reversal cycles.Year: 2017 PMID: 28825713 DOI: 10.1038/nnano.2017.151
Source DB: PubMed Journal: Nat Nanotechnol ISSN: 1748-3387 Impact factor: 39.213