X-ray photoelectron spectroscopy study of spin valves with specularly reflective oxide layers
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摘要: 采用X射線光電子能譜(XPS)研究了帶有兩種納米氧化層(NOL)Ta/Ni80Fe20/Ir19Mn81/Co90Fe10//NOL1//Co90Fe10/Cu/Co90Fe10//NOL2/Ta的鏡面反射自旋閥薄膜的化學結構.研究結果表明:CoFe/NOL1和NOL2/Ta界面處發生了熱力學有利的化學反應.CoFe磁性敏感層仍保持金屬特性,部分氧化的CoFe和Ta發生界面反應,使得Ta覆蓋層被氧化成Ta2O5,形成NOL2.由于仍存在部分金屬CoFe,NOL1為不連續的氧化層,使得與IrMn層仍存在直接的交換耦合作用.在退火過程中,IrMn層中的Mn原子擴散到NOL1中;然而,由于NOL1和擴散的Mn原子發生界面反應,生成Mn的氧化物,從而阻止Mn原子的進一步擴散,使其偏聚在NOL1中.Abstract: Chemical structures of the specular spin valve with two nano-oxide layers (Ta/Ni80Fe20/Ir19Mn81/Co90Fe10//NOL1//Co90Fe10/Cu/Co90Fe10//NOL2/Ta) were studied by X-ray photoelectron spectroscopy (XPS) and peak decomposition technique. The results show that there are thermodynamically favorable reactions at the CoFe/NOL1 and NOL2/Ta interfaces. The CoFe sense layer remains metallic, and the Ta capping layer near the CoFe sense layer is oxidized to Ta2O5 acting as the NOL2, which is formed through the interface reaction between the oxidized CoFe and the Ta layer. ROLl is a discontinuous oxidation layer because of the existence of some residual metallic CoFe, which allows the direct exchange coupling to exist. Mn atoms of the IrMn layer diffuse into NOL1 during annealing. However, it's further diffusion can be inhibited due to the formation of Mn oxides by the reaction between ROLl and the Mn diffused from IrMn during annealing.
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Key words:
- nano-oxide layer /
- X-ray photoelectron spectroscopy /
- spin valve /
- exchange coupling
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