Ma Fusheng, Ezawa Motohiko, Zhou Yan
Temasek Laboratories, National University of Singapore, Singapore.
Department of Applied Physics, University of Tokyo, Hongo 7-3-1, Tokyo 113-8656, Japan.
Sci Rep. 2015 Oct 15;5:15154. doi: 10.1038/srep15154.
Magnetic skyrmions are promising candidates as information carriers for the next-generation spintronic devices because of their small size, facile current-driven motion and topological stability. The controllable nucleation and motion of skyrmions in magnetic nanostructures will be essential in future skyrmionic devices. Here, we present the microwave assisted nucleation and motion of skyrmion-chains in magnetic nanotrack by micromagnetic simulation. A skyrmion-chain is a one-dimensional cluster of equally spaced skyrmions. A skyrmion-chain conveys an integer bit n when it consists of n skyrmions. A series of skyrmion-chains with various lengths is generated and moved in the nanotrack driven by spin-polarized current. The period, length and spacing of the skyrmion-chains can be dynamically manipulated by controlling either the frequency of the microwave field or the time dependent spin-polarized current density. A skyrmion-chain behaves as a massless particle, where it stops without delay when the current is stopped. Their velocity is found to be linearly dependent on the current density and insensitive to the frequency and amplitude of the excitation microwave field. Uniform motion of trains of skyrmion-chains in nanotrack offers a promising approach for spintronic multi-bit memories containing series of skyrmion-chains to represent data stream.
磁斯格明子因其尺寸小、易于电流驱动运动和拓扑稳定性,有望成为下一代自旋电子器件的信息载体。磁纳米结构中斯格明子的可控成核和运动对于未来的斯格明子器件至关重要。在此,我们通过微磁模拟展示了磁纳米轨道中斯格明子链的微波辅助成核和运动。斯格明子链是等间距斯格明子的一维簇。当斯格明子链由n个斯格明子组成时,它传输一个整数位n。一系列不同长度的斯格明子链在自旋极化电流驱动下在纳米轨道中生成并移动。通过控制微波场的频率或随时间变化的自旋极化电流密度,可以动态操纵斯格明子链的周期、长度和间距。斯格明子链表现为无质量粒子,当电流停止时它会立即停止。发现它们的速度与电流密度呈线性相关,并且对激发微波场的频率和幅度不敏感。纳米轨道中斯格明子链列的匀速运动为包含一系列斯格明子链以表示数据流的自旋电子多位存储器提供了一种有前景的方法。