Heigl Michael, Vogler Christoph, Mandru Andrada-Oana, Zhao Xue, Hug Hans Josef, Suess Dieter, Albrecht Manfred
Institute of Physics, University of Augsburg, Augsburg 86159, Germany.
Faculty of Physics, University of Vienna, Vienna 1090, Austria.
ACS Appl Nano Mater. 2020 Sep 25;3(9):9218-9225. doi: 10.1021/acsanm.0c01835. Epub 2020 Aug 5.
Giant exchange bias shifts of several Tesla have been reported in ferrimagnetic/ferromagnetic bilayer systems, which could be highly beneficial for contemporary high energy density permanent magnets and spintronic devices. However, the lack of microscopic studies of the reversal owing to the difficulty of measuring few nanometer-wide magnetic structures in high fields precludes the assessment of the lateral size of the inhomogeneity in relation to the intended application. In this study, the magnetic reversal process of nanoscale exchange-coupled bilayer systems, consisting of a ferrimagnetic TbFeCo alloy layer and a ferromagnetic [Co/Ni/Pt] multilayer, was investigated. In particular, minor loop measurements, probing solely on the reversal characteristics of the softer ferromagnetic layer, reveal two distinct reversal mechanisms, which depend critically on the thickness of the ferromagnetic layer. For thick layers, irreversible switching of the macroscopic minor loop is observed. The underlying microscopic origin of this reversal process was studied in detail by high-resolution magnetic force microscopy, showing that the reversal is triggered by in-plane domain walls propagating through the ferromagnetic layer. In contrast, thin ferromagnetic layers show a hysteresis-free reversal, which is nucleation-dominated due to grain-to-grain variations in magnetic anisotropy of the Co/Ni/Pt multilayer and an inhomogeneous exchange coupling with the magnetically hard TbFeCo layer, as confirmed by micromagnetic simulations.
在亚铁磁/铁磁双层系统中已报道了高达数特斯拉的巨大交换偏置位移,这对当代高能量密度永磁体和自旋电子器件可能极为有益。然而,由于在高场中测量几纳米宽的磁性结构存在困难,缺乏对反转的微观研究,这妨碍了根据预期应用评估不均匀性的横向尺寸。在本研究中,对由亚铁磁TbFeCo合金层和铁磁[Co/Ni/Pt]多层膜组成的纳米级交换耦合双层系统的磁反转过程进行了研究。特别是,仅探测较软铁磁层反转特性的小回线测量揭示了两种不同的反转机制,这主要取决于铁磁层的厚度。对于厚层,观察到宏观小回线的不可逆切换。通过高分辨率磁力显微镜详细研究了这种反转过程的潜在微观起源,结果表明反转是由平面内畴壁穿过铁磁层传播触发的。相比之下,薄铁磁层表现出无磁滞反转,这是由于Co/Ni/Pt多层膜磁各向异性的晶粒间变化以及与硬磁TbFeCo层的不均匀交换耦合导致的成核主导,微磁模拟证实了这一点。