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  4. Comparative study on spin-orbit torque efficiencies from W/ferromagnetic and W/ferrimagnetic heterostructures
 
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Comparative study on spin-orbit torque efficiencies from W/ferromagnetic and W/ferrimagnetic heterostructures

Journal
Physical Review Materials
Journal Volume
2
Journal Issue
1
Date Issued
2018
Author(s)
Wang, T.-C.
Chen, T.-Y.
Wu, C.-T.
Yen, H.-W.
CHI-FENG PAI  
HUNG-WEI YEN  
DOI
10.1103/PhysRevMaterials.2.014403
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/491153
URL
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85054811542&doi=10.1103%2fPhysRevMaterials.2.014403&partnerID=40&md5=9b1dbbabcab61fc115725ea60e8c92fe
Abstract
It has been shown that W in its resistive form possesses the largest spin-Hall ratio among all heavy transition metals, which makes it a good candidate for generating efficient dampinglike spin-orbit torque (DL-SOT) acting upon adjacent ferromagnetic or ferrimagnetic (FM) layer. Here we provide a systematic study on the spin transport properties of W/FM magnetic heterostructures with the FM layer being ferromagnetic Co20Fe60B20 or ferrimagnetic Co63Tb37 with perpendicular magnetic anisotropy. The DL-SOT efficiency |ξDL|, which is characterized by a current-induced hysteresis loop shift method, is found to be correlated to the microstructure of W buffer layer in both W/Co20Fe60B20 and W/Co63Tb37 systems. Maximum values of |ξDL|≈0.144 and |ξDL|≈0.116 are achieved when the W layer is partially amorphous in the W/Co20Fe60B20 and W/Co63Tb37 heterostructures, respectively. Our results suggest that the spin-Hall effect from resistive phase of W can be utilized to effectively control both ferromagnetic and ferrimagnetic layers through a DL-SOT mechanism.
Type
journal article

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