Grachev Andrey A, Sadovnikov Alexandr V, Nikitov Sergey A
Saratov State University, 410012 Saratov, Russia.
Kotel'nikov Institute of Radioengineering and Electronics, 125009 Moscow, Russia.
Nanomaterials (Basel). 2022 Apr 30;12(9):1520. doi: 10.3390/nano12091520.
Here, we report on the experimental study of spin-wave propagation and interaction in the double-branched Mach-Zehnder interferometer (MZI) scheme. We show that the use of a piezoelectric plate (PP) with separated electrodes connected to each branch of the MZI leads to the tunable interference of the spin-wave signal at the output section. Using a finite element method, we carry out a physical investigation of the mechanisms of the impact of distributed deformations on the magnetic properties of YIG film. Micromagnetic simulations and finite-element modelling can explain the evolution of spin-wave interference patterns under strain induced via the application of an electric field to PP electrodes. We show how the multimode regime of spin-wave propagation is used in the interferometry scheme and how scaling to the nanometer size represents an important step towards a single-mode regime. Our findings provide a simple solution for the creation of tunable spin-wave interferometers for the magnonic logic paradigm.
在此,我们报告关于双分支马赫-曾德尔干涉仪(MZI)方案中自旋波传播与相互作用的实验研究。我们表明,使用带有连接到MZI各分支的分离电极的压电板(PP)会导致输出端自旋波信号的可调谐干涉。利用有限元方法,我们对分布式变形对YIG薄膜磁性能的影响机制进行了物理研究。微磁模拟和有限元建模可以解释通过向PP电极施加电场而产生的应变下自旋波干涉图案的演变。我们展示了自旋波传播的多模机制如何在干涉测量方案中使用,以及缩小到纳米尺寸如何代表迈向单模机制的重要一步。我们的研究结果为创建用于磁振逻辑范式的可调谐自旋波干涉仪提供了一个简单的解决方案。