Ishibashi Mio, Shiota Yoichi, Li Tian, Funada Shinsaku, Moriyama Takahiro, Ono Teruo
Institute for Chemical Research, Kyoto University, Uji, Kyoto 611-0011, Japan.
Sci Adv. 2020 Apr 24;6(17):eaaz6931. doi: 10.1126/sciadv.aaz6931. eCollection 2020 Apr.
The nonreciprocity of propagating spin waves, i.e., the difference in amplitude and/or frequency depending on the propagation direction, is essential for the realization of spin wave-based logic circuits. However, the nonreciprocal frequency shifts demonstrated so far are not large enough for applications because they originate from interfacial effects. In addition, switching of the spin wave nonreciprocity in the electrical way remains a challenging issue. Here, we show a switchable giant nonreciprocal frequency shift of propagating spin waves in interlayer exchange-coupled synthetic antiferromagnets. The observed frequency shift is attributed to large asymmetric spin wave dispersion caused by a mutual dipolar interaction between two magnetic layers. Furthermore, we find that the sign of the frequency shift depends on relative configuration of two magnetizations, based on which we demonstrate an electrical switching of the nonreciprocity. Our findings provide a route for switchable and highly nonreciprocal spin wave-based applications.
传播自旋波的非互易性,即振幅和/或频率随传播方向的差异,对于实现基于自旋波的逻辑电路至关重要。然而,迄今为止所展示的非互易频移对于应用来说还不够大,因为它们源于界面效应。此外,以电学方式切换自旋波的非互易性仍然是一个具有挑战性的问题。在此,我们展示了层间交换耦合合成反铁磁体中传播自旋波的可切换巨大非互易频移。所观察到的频移归因于两个磁性层之间的相互偶极相互作用引起的大的不对称自旋波色散。此外,我们发现频移的符号取决于两个磁化强度的相对配置,基于此我们展示了非互易性的电学切换。我们的发现为基于可切换且高度非互易自旋波的应用提供了一条途径。