论文标题

具有逼真的晶粒结构的自旋纳米振荡器的频率稳定性

Frequency Stability of Spin-Hall Nano-Oscillators with Realistic Grain Structure

论文作者

Capriata, Corrado Carlo Maria, Jiang, Sheng, Dvornik, Mykola, Åkerman, Johan, Malm, Bengt Gunnar

论文摘要

纳米收缩自旋式纳米振荡器(NC-SHNOS)是微波旋转器设备中最有前途的替代方案之一。它们可以提供高度连贯且可调性的微波信号,并且可以在低温下制造,这使其与后端的CMOS处理兼容。对于其应用,每个设备的频率稳定性至关重要,特别是对于振荡器阵列的同步。在这项工作中,我们专注于使用测量和微磁模拟的现实晶粒结构对SHNO频率稳定性的影响。薄铁磁金属膜中的晶粒会影响SHNO的输出特征,因为在晶界处的交换耦合在本地减少。这项工作提供了一种新型的微磁模拟方法,用于系统地研究设备之间的频率不稳定性或变异性。在实验上,发现了〜270 MHz的设备对设备频率变异性,在某些极端情况下,在高电流操作范围内观察到双模式振荡。这种振荡行为是在模拟中复制的,其中包含晶粒的频率可变性约为100 MHz,并且对于某些特定的配置,晶粒的频率可变性约为100 MHz和双模式振荡。双模式与位于纳米收缩边缘的两个振荡区域的部分脱钩或非连锁操作一致。

Nano-constriction spin-Hall nano-oscillators (NC-SHNOs) are one of the most promising alternatives among the microwave spintronics devices. They can provide highly coherent and widely tuneable microwave signals and can be fabricated at low temperatures, which makes them compatible with back-end-of-the-line CMOS processing. For its applications, the frequency stability of each device is crucial, in particular for synchronization of oscillator arrays. In this work, we focus on the influence of a realistic grain structure on the SHNO frequency stability using both measurements as well as micromagnetic simulations. Grains in the thin ferromagnetic metal films can influence the output characteristic of the SHNO since the exchange coupling is reduced locally at the grain boundaries. This work provides a novel micromagnetic simulation method, for systematic investigation of frequency instability or variability from device-to-device. Experimentally, a device-to-device frequency variability of ~270 MHz was found and in some extreme cases, a double-mode oscillation was observed in the high current operation range. This oscillation behavior was reproduced in simulations, where the inclusion of grains resulted in a frequency variability of ~100 MHz and double-mode oscillations for some particular configurations. The double modes are consistent with a partial decoupling, or non-coherent operation, of two oscillating regions located at the nano-constriction edges.

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