4.8 Article

Picosecond spin-orbit torque-induced coherent magnetization switching in a ferromagnet

Journal

SCIENCE ADVANCES
Volume 9, Issue 36, Pages -

Publisher

AMER ASSOC ADVANCEMENT SCIENCE
DOI: 10.1126/sciadv.adh5562

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In this study, we experimentally demonstrate ultrafast spin-orbit torque-induced coherent magnetization switching dynamics in a ferromagnet and propose a unique magnetization switching mechanism that can significantly increase the writing speed of magnetic random-access memory devices.
Electrically controllable nonvolatile magnetic memories show great potential for the replacement of conventional semiconductor-based memory technologies. Here, we experimentally demonstrate ultrafast spin-orbit torque (SOT)-induced coherent magnetization switching dynamics in a ferromagnet. We use an ultrafast photo-conducting switch and a coplanar strip line to generate and guide a similar to 9-picosecond electrical pulse into a heavy metal/ferromagnet multilayer to induce ultrafast SOT. We then use magneto-optical probing to investigate the magnetization dynamics with sub-picosecond resolution. Ultrafast heating by the approximately 9 picosecond current pulse induces a thermal anisotropy torque which, in combination with the damping-like torque, coherently rotates the magnetization to obtain zero-crossing of magnetization in similar to 70 picoseconds. A macro-magnetic simulation coupled with an ultrafast heating model agrees well with the experiment and suggests coherent magnetization switching without any incubation delay on an unprecedented time scale. Our work proposes a unique magnetization switching mechanism toward markedly increasing the writing speed of SOT magnetic random-access memory devices.

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