School of Materials Science and Engineering, Gwangju Institute of Science and Technology (GIST), Gwangju, 500-712, Republic of Korea.
Gruenberg Center for Magnetic Nanomaterials, Gwangju Institute of Science and Technology (GIST), Gwangju, 500-712, Republic of Korea.
Sci Rep. 2017 Jul 3;7(1):4515. doi: 10.1038/s41598-017-04883-3.
Electrical spin switching in an antiferromagnet is one of the key issues for both academic interest and industrial demand in new-type spin devices because an antiferromagnetic system has a negligible stray field due to an alternating sign between sub-lattices, in contrast to a ferromagnetic system. Naturally, questions arise regarding how fast and, simultaneously, how robustly the magnetization can be switched by external stimuli, e.g., magnetic field and spin current. First, the exploitation of ultrafast precessional motion of magnetization in antiferromagnetic oxide has been studied intensively. Regarding robustness, the so-called inertia-driven switching scenario has been generally accepted as the switching mechanism in antiferromagnet system. However, in order to understand the switching dynamics in a canted antiferromagnet, excited by magnetic field, accurate equation of motion and corresponding interpretation are necessary. Here, we re-investigate the inertia-driven switching process, triggered by the strict phase matching between effective driving field, dh/dt, and antiferromagnetic order parameters, l. Such theoretical approaches make it possible to observe the static parameters of an antiferromagnet, hosting Dzyaloshinskii-Moriya (DM) interaction. Indeed, we estimate successfully static parameters, such as DM, exchange, and anisotropy energies, from dynamical behaviour in YFeO, studied using terahertz time-domain spectroscopy.
反铁磁体中的电自旋开关是新型自旋器件在学术兴趣和工业需求方面的关键问题之一,因为与铁磁体系统相反,反铁磁体系统由于子晶格之间的交替符号,其杂散场可以忽略不计。自然而然地,人们会提出这样的问题,即外部刺激(例如磁场和自旋电流)可以多快且同时多稳健地切换磁化强度。首先,人们已经对反铁磁氧化物中磁化强度的超快进动运动的利用进行了深入研究。关于稳健性,所谓的惯性驱动切换方案通常被认为是反铁磁体系统中的切换机制。然而,为了理解磁场激发下倾斜反铁磁体的开关动力学,需要准确的运动方程和相应的解释。在这里,我们重新研究了由有效驱动场 dh/dt 和反铁磁序参量 l 之间的严格相位匹配引发的惯性驱动切换过程。这种理论方法使得观察具有 Dzyaloshinskii-Moriya (DM) 相互作用的反铁磁体的静态参数成为可能。实际上,我们成功地从太赫兹时域光谱研究的 YFeO 中的动态行为估算了 DM、交换和各向异性能量等静态参数。