Spin transfer torque generated magnetic droplet solitons (invited)
Author(s) -
S. Chung,
Seyed Majid Mohseni,
S. R. Sani,
Ezio Iacocca,
Randy K. Dumas,
Thị Ngọc Anh Nguyễn,
Ye. Pogoryelov,
P. K. Muduli,
Anders Eklund,
Mark A. Hoefer,
Johan Åkerman
Publication year - 2014
Publication title -
journal of applied physics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.699
H-Index - 319
eISSN - 1089-7550
pISSN - 0021-8979
DOI - 10.1063/1.4870696
Subject(s) - condensed matter physics , magnetic field , magnetoresistance , physics , spin transfer torque , zeeman energy , magnetization , spin (aerodynamics) , paramagnetism , magnetic anisotropy , zeeman effect , quantum mechanics , thermodynamics
We present recent experimental and numerical advancements in the understanding of spin transfer torque generated magnetic droplet solitons. The experimental work focuses on nano-contact spin torque oscillators (NC-STOs) based on orthogonal (pseudo) spin valves where the Co fixed layer has an easy-plane anisotropy, and the [Co/Ni] free layer has a strong perpendicular magnetic anisotropy. The NC-STO resistance and microwave signal generation are measured simultaneously as a function of drive current and applied perpendicular magnetic field. Both exhibit dramatic transitions at a certain current dependent critical field value, where the microwave frequency drops 10 GHz, modulation sidebands appear, and the resistance exhibits a jump, while the magnetoresistance changes sign. We interpret these observations as the nucleation of a magnetic droplet soliton with a large fraction of its magnetization processing with an angle greater than 90°, i.e., around a direction opposite that of the applied field. This interpretation is corroborated by numerical simulations. When the field is further increased, we find that the droplet eventually collapses under the pressure from the Zeeman energy.
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