Choudhury Samiran, Chaurasiya Avinash Kumar, Mondal Amrit Kumar, Rana Bivas, Miura Katsuya, Takahashi Hiromasa, Otani YoshiChika, Barman Anjan
Department of Condensed Matter Physics and Material Sciences, S. N. Bose National Centre for Basic Sciences, Block JD, Sector III, Salt Lake, Kolkata 700 106, India.
Center for Emergent Matter Science, RIKEN, 2-1 Hirosawa, Wako 351-0198, Japan.
Sci Adv. 2020 Oct 2;6(40). doi: 10.1126/sciadv.aba5457. Print 2020 Oct.
Development of energy-efficient on-demand magnonic nanochannels (MNCs) can revolutionize on-chip data communication and processing. We have developed a dynamic MNC array by periodically tailoring perpendicular magnetic anisotropy using the electric field. Brillouin light scattering spectroscopy is used to probe the spin wave (SW) dispersion of MNCs formed by applying a static electric field at the CoFeB/MgO interface through the one-dimensional stripe-like array of indium tin oxide electrodes placed on top of Ta/CoFeB/MgO/AlO heterostructures. Magnonic bands, consisting of two SW frequency modes, appear with a bandgap under the application of moderate gate voltage, which can be switched off by withdrawing the voltage. The experimental results are reproduced by plane wave method-based numerical calculations, and simulated SW mode profiles show propagating SWs through nanochannels with different magnetic properties. The anticrossing between these two modes gives rise to the observed magnonic bandgap.
开发节能型按需磁振纳米通道(MNCs)可彻底改变片上数据通信和处理。我们通过利用电场周期性地调整垂直磁各向异性,开发出了一种动态MNC阵列。布里渊光散射光谱用于探测通过置于Ta/CoFeB/MgO/AlO异质结构顶部的氧化铟锡电极的一维条纹状阵列,在CoFeB/MgO界面施加静电场形成的MNCs的自旋波(SW)色散。由两种SW频率模式组成的磁振能带在施加适度栅极电压时出现带隙,撤去电压时带隙可关闭。基于平面波方法的数值计算重现了实验结果,模拟的SW模式分布图显示了自旋波通过具有不同磁特性的纳米通道传播。这两种模式之间的反交叉产生了观察到的磁振带隙。