Effects of Interfacial Oxidization on Magnetic Damping and Spin-Orbit Torques

Authors
Lee, DongJoonJeong, WonMinYun, DeokHyunPark, Seung-YoungJu, Byeong-KwonLee, Kyung-JinMin, Byoung-ChulKoo, Hyun CheolLee, OukJae
Issue Date
2021-04
Publisher
American Chemical Society
Citation
ACS Applied Materials & Interfaces, v.13, no.16, pp.19414 - 19421
Abstract
We investigate the effects of interfacial oxidation on the perpendicular magnetic anisotropy, magnetic damping, and spin-orbit torques in heavy-metal (Pt)/ferromagnet (Co or NiFe)/capping (MgO/Ta, HfOx, or TaN) structures. At room temperature, the capping materials influence the effective surface magnetic anisotropy energy density, which is associated with the formation of interfacial magnetic oxides. The magnetic damping parameter of Co is considerably influenced by the capping material (especially MgO) while that of NiFe is not. This is possibly due to extra magnetic damping via spin-pumping process across the Co/CoO interface and incoherent magnon generation (spin fluctuation) developed in the antiferromagnetic CoO. It is also observed that both antidamping and field-like spin-orbit torque efficiencies vary with the capping material in the thickness ranges we examined. Our results reveal the crucial role of interfacial oxides on the perpendicular magnetic anisotropy, magnetic damping, and spin-orbit torques.
Keywords
spintronics; spin-orbit torque; spin-Hall effect; Gilbert damping; interfacial magnetic oxide; magnetic resonance
ISSN
1944-8244
URI
https://pubs.kist.re.kr/handle/201004/117210
DOI
10.1021/acsami.1c00608
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KIST Article > 2021
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