Jalali Milad, Chen Qian, Tang Xuejian, Guo Qingjie, Liang Jian, Zhou Xiaochao, Zhang Dong, Huang Zhaocong, Zhai Ya
Key Laboratory of Quantum Materials and Devices of Ministry of Education, School of Physics, Southeast University, Nanjing 211189, China.
School of Physical Science and Information Technology, Liaocheng University, Liaocheng 252059, China.
Materials (Basel). 2024 May 16;17(10):2404. doi: 10.3390/ma17102404.
Magnonics is an emerging field within spintronics that focuses on developing novel magnetic devices capable of manipulating information through the modification of spin waves in nanostructures with submicron size. Here, we provide a confined magnetic rectangular element to modulate the standing spin waves, by changing the saturation magnetisation (), exchange constant (), and the aspect ratio of rectangular magnetic elements via micromagnetic simulation. It is found that the bulk mode and the edge mode of the magnetic element form a hybrid with each other. With the decrease in , both the Kittel mode and the standing spin waves undergo a shift towards higher frequencies. On the contrary, as decreases, the frequencies of standing spin waves become smaller, while the Kittel mode is almost unaffected. Moreover, when the length-to-width aspect ratio of the element is increased, standing spin waves along the width and length become split, leading to the observation of additional modes in the magnetic spectra. For each mode, the vibration style is discussed. These spin dynamic modes were further confirmed via FMR experiments, which agree well with the simulation results.
磁振子学是自旋电子学中的一个新兴领域,专注于开发能够通过在亚微米尺寸的纳米结构中改变自旋波来操纵信息的新型磁性器件。在此,我们通过微磁模拟,提供一种受限磁性矩形元件,通过改变饱和磁化强度()、交换常数()以及矩形磁性元件的长宽比来调制驻波自旋波。研究发现,磁性元件的体模和边模相互形成杂化。随着的减小,基特尔模和驻波自旋波都向更高频率移动。相反,当时,驻波自旋波的频率变小,而基特尔模几乎不受影响。此外,当元件的长宽比增加时,沿宽度和长度方向的驻波自旋波会分裂,从而在磁谱中观察到额外的模式。针对每种模式,讨论了其振动方式。这些自旋动力学模式通过铁磁共振实验得到进一步证实,实验结果与模拟结果吻合良好。