González-Ruano César, Caso Diego, Johnsen Lina G, Tiusan Coriolan, Hehn Michel, Banerjee Niladri, Linder Jacob, Aliev Farkhad G
Departamento Física de la Materia Condensada C-III, Instituto Nicolás Cabrera (INC) and Condensed Matter Physics Institute (IFIMAC), Universidad Autónoma de Madrid, Madrid, 28049, Spain.
Department of Physics, Center for Quantum Spintronics, Norwegian University of Science and Technology, 7491, Trondheim, Norway.
Sci Rep. 2021 Sep 24;11(1):19041. doi: 10.1038/s41598-021-98079-5.
Controlling the perpendicular magnetic anisotropy (PMA) in thin films has received considerable attention in recent years due to its technological importance. PMA based devices usually involve heavy-metal (oxide)/ferromagnetic-metal bilayers, where, thanks to interfacial spin-orbit coupling (SOC), the in-plane (IP) stability of the magnetisation is broken. Here we show that in V/MgO/Fe(001) epitaxial junctions with competing in-plane and out-of-plane (OOP) magnetic anisotropies, the SOC mediated interaction between a ferromagnet (FM) and a superconductor (SC) enhances the effective PMA below the superconducting transition. This produces a partial magnetisation reorientation without any applied field for all but the largest junctions, where the IP anisotropy is more robust; for the smallest junctions there is a reduction of the field required to induce a complete OOP transition ([Formula: see text]) due to the stronger competition between the IP and OOP anisotropies. Our results suggest that the degree of effective PMA could be controlled by the junction lateral size in the presence of superconductivity and an applied electric field. We also discuss how the [Formula: see text] field could be affected by the interaction between magnetic stray fields and superconducting vortices. Our experimental findings, supported by numerical modelling of the ferromagnet-superconductor interaction, open pathways to active control of magnetic anisotropy in the emerging dissipation-free superconducting spin electronics.
近年来,由于其技术重要性,控制薄膜中的垂直磁各向异性(PMA)受到了广泛关注。基于PMA的器件通常涉及重金属(氧化物)/铁磁金属双层,由于界面自旋轨道耦合(SOC),磁化强度的面内(IP)稳定性被打破。在此,我们表明,在具有竞争的面内和面外(OOP)磁各向异性的V/MgO/Fe(001)外延结中,铁磁体(FM)与超导体(SC)之间的SOC介导相互作用在超导转变温度以下增强了有效PMA。这会导致除最大结之外的所有结在没有任何外加磁场的情况下产生部分磁化重新取向,在最大结中,IP各向异性更强;对于最小结,由于IP和OOP各向异性之间更强的竞争,诱导完全OOP转变所需的磁场([公式:见正文])会降低。我们的结果表明,在存在超导性和外加电场的情况下,有效PMA的程度可以通过结的横向尺寸来控制。我们还讨论了[公式:见正文]场如何受到磁杂散场与超导涡旋之间相互作用的影响。我们的实验结果得到了铁磁体 - 超导体相互作用数值模拟的支持,为新兴的无耗散超导自旋电子学中磁各向异性的主动控制开辟了道路。