Khan Risalat A, Nembach Hans T, Ali Mannan, Shaw Justin M, Marrows Christopher H, Moore Thomas A
School of Physics and Astronomy, University of Leeds, Leeds LS2 9JT, UK.
Quantum Electromagnetics Division, National Institute of Standards and Technology, Boulder, Colorado 80305, USA.
Phys Rev B. 2018 Aug;98(6). doi: 10.1103/physrevb.98.064413.
Antiferromagnetic materials present us with rich and exciting physics, which we can exploit to open new avenues in spintronic device applications. We explore perpendicularly magnetized exchange biased systems of Pt/Co/IrMn and Pt/Co/FeMn, where the crossover from paramagnetic to antiferromagnetic behavior in the IrMn and FeMn layers is accessed by varying the thickness. We demonstrate, through magneto-optical imaging, that the magnetic domain morphology of the ferromagnetic Co layer is influenced by the Néel order of the antiferromagnet (AFM) layers. We relate these variations to the anisotropy energy of the AFM layer and the ferromagnet-antiferromagnet (FM-AFM) interlayer exchange coupling. We also quantify the interfacial Dzyaloshinskii-Moriya interaction (DMI) in these systems by Brillouin light scattering spectroscopy. The DMI remains unchanged, within experimental uncertainty, for different phases of the AFM layers, which allows us to conclude that the DMI is largely insensitive to both AFM layer spin order and exchange bias. Understanding such fundamental mechanisms is crucial for the development of future devices employing chiral spin textures, such as Néel domain walls and skyrmions, in FM-AFM heterostructures.
反铁磁材料为我们展现了丰富而令人兴奋的物理特性,我们可以利用这些特性在自旋电子器件应用中开辟新途径。我们研究了Pt/Co/IrMn和Pt/Co/FeMn的垂直磁化交换偏置系统,其中通过改变厚度来实现IrMn和FeMn层中从顺磁行为到反铁磁行为的转变。通过磁光成像,我们证明了铁磁Co层的磁畴形态受反铁磁(AFM)层的奈尔序影响。我们将这些变化与AFM层的各向异性能量以及铁磁-反铁磁(FM-AFM)层间交换耦合联系起来。我们还通过布里渊光散射光谱对这些系统中的界面Dzyaloshinskii-Moriya相互作用(DMI)进行了量化。在实验不确定性范围内,对于AFM层的不同相,DMI保持不变,这使我们能够得出结论,即DMI在很大程度上对AFM层的自旋序和交换偏置均不敏感。理解此类基本机制对于在FM-AFM异质结构中开发采用手性自旋纹理(如奈尔畴壁和斯格明子)的未来器件至关重要。