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Fieldlike and antidamping spin-orbit torques in as-grown and annealed Ta/CoFeB/MgO layers.

Authors :
Avci, Can Onur
Garello, Kevin
Nistor, Corneliu
Godey, Sylvie
Ballesteros, Belén
Mugarza, Aitor
Barla, Alessandro
Valvidares, Manuel
Pellegrin, Eric
Ghosh, Abhijit
Miron, Ioan Mihai
Boulle, Olivier
Auffret, Stephane
Gaudin, Gilles
Gambardella, Pietro
Source :
Physical Review B: Condensed Matter & Materials Physics. Jun2014, Vol. 89 Issue 21, p214419-1-214419-13. 13p.
Publication Year :
2014

Abstract

We present a comprehensive study of the current-induced spin-orbit torques in perpendicularly magnetized Ta/CoFeB/MgO layers. The samples were annealed in steps up to 300 °C and characterized using x-ray-absorption spectroscopy, transmission electron microscopy, resistivity, and Hall effect measurements. By performing adiabatic harmonic Hall voltage measurements, we show that the transverse (fieldlike) and longitudinal (antidampinglike) spin-orbit torques are composed of constant and magnetization-dependent contributions, both of which vary strongly with annealing. Such variations correlate with changes of the saturation magnetization and magnetic anisotropy and are assigned to chemical and structural modifications of the layers. The relative variation of the constant and anisotropic torque terms as a function of annealing temperature is opposite for the fieldlike and antidamping torques. Measurements of the switching probability using sub-μs current pulses show that the critical current increases with the magnetic anisotropy of the layers, whereas the switching efficiency, measured as the ratio of magnetic anisotropy energy and pulse energy, decreases. The optimal annealing temperature to achieve maximum magnetic anisotropy, saturation magnetization, and switching efficiency is determined to be between 240 and 270 °C. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
10980121
Volume :
89
Issue :
21
Database :
Academic Search Index
Journal :
Physical Review B: Condensed Matter & Materials Physics
Publication Type :
Academic Journal
Accession number :
97676278
Full Text :
https://doi.org/10.1103/PhysRevB.89.214419