Kim Sanghoon, Pathak Sachin, Rhim Sonny H, Cha Jongin, Jekal Soyoung, Hong Soon Cheol, Lee Hyun Hwi, Park Sung-Hun, Lee Han-Koo, Park Jae-Hoon, Lee Soogil, Steinrück Hans-Georg, Mehta Apurva, Wang Shan X, Hong Jongill
Department of Materials Science and Engineering, Yonsei University, Seoul, 03722, Korea.
Department of Physics, University of Ulsan, Ulsan, 44610, Korea.
Adv Sci (Weinh). 2022 Aug;9(24):e2201749. doi: 10.1002/advs.202201749. Epub 2022 Jun 24.
Orbital anisotropy at interfaces in magnetic heterostructures has been key to pioneering spin-orbit-related phenomena. However, modulating the interface's electronic structure to make it abnormally asymmetric has been challenging because of lack of appropriate methods. Here, the authors report that low-energy proton irradiation achieves a strong level of inversion asymmetry and unusual strain at interfaces in [Co/Pd] superlattices through nondestructive, selective removal of oxygen from Co O /Pd superlattices during irradiation. Structural investigations corroborate that progressive reduction of Co O into Co establishes pseudomorphic growth with sharp interfaces and atypically large tensile stress. The normal component of orbital to spin magnetic moment at the interface is the largest among those observed in layered Co systems, which is associated with giant orbital anisotropy theoretically confirmed, and resulting very large interfacial magnetic anisotropy is observed. All results attribute not only to giant orbital anisotropy but to enhanced interfacial spin-orbit coupling owing to the pseudomorphic nature at the interface. They are strongly supported by the observation of reversal of polarity of temperature-dependent Anomalous Hall signal, a signature of Berry phase. This work suggests that establishing both giant orbital anisotropy and strong spin-orbit coupling at the interface is key to exploring spintronic devices with new functionalities.
磁性异质结构界面处的轨道各向异性一直是开拓自旋轨道相关现象的关键。然而,由于缺乏合适的方法,调节界面的电子结构使其异常不对称一直具有挑战性。在此,作者报告称,低能质子辐照通过在辐照过程中从CoO/Pd超晶格中无损、选择性地去除氧,在[Co/Pd]超晶格的界面处实现了强烈的反转不对称和异常应变。结构研究证实,CoO逐渐还原为Co会形成具有清晰界面和非典型大拉伸应力的赝晶生长。界面处轨道磁矩与自旋磁矩的法向分量在层状Co系统中观察到的情况中是最大的,这与理论上证实的巨大轨道各向异性相关,并且观察到了由此产生的非常大的界面磁各向异性。所有结果不仅归因于巨大的轨道各向异性,还归因于由于界面处的赝晶性质而增强的界面自旋轨道耦合。温度依赖的反常霍尔信号极性反转的观察结果有力地支持了这些结果,这是贝里相位的一个特征。这项工作表明,在界面处同时建立巨大的轨道各向异性和强自旋轨道耦合是探索具有新功能的自旋电子器件的关键。