Lee DongJoon, Jeong WonMin, Yun DeokHyun, Park Seung-Young, Ju Byeong-Kwon, Lee Kyung-Jin, Min Byoung-Chul, Koo Hyun Cheol, Lee OukJae
KU-KIST Graduate School of Converging Science and Technology, Korea University, Seoul 02841, Korea.
Center for Spintronics, Korea Institute of Science and Technology, Seoul 02792, Korea.
ACS Appl Mater Interfaces. 2021 Apr 28;13(16):19414-19421. doi: 10.1021/acsami.1c00608. Epub 2021 Mar 25.
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, HfO, 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.
我们研究了界面氧化对重金属(Pt)/铁磁体(Co或NiFe)/覆盖层(MgO/Ta、HfO或TaN)结构中垂直磁各向异性、磁阻尼和自旋轨道转矩的影响。在室温下,覆盖层材料会影响有效表面磁各向异性能量密度,这与界面磁性氧化物的形成有关。Co的磁阻尼参数受覆盖层材料(尤其是MgO)的影响很大,而NiFe的磁阻尼参数则不受影响。这可能是由于通过Co/CoO界面的自旋泵浦过程产生的额外磁阻尼以及反铁磁CoO中产生的非相干磁振子(自旋涨落)所致。我们还观察到,在所研究的厚度范围内,反阻尼和类场自旋轨道转矩效率均随覆盖层材料而变化。我们的结果揭示了界面氧化物在垂直磁各向异性、磁阻尼和自旋轨道转矩方面的关键作用。