Li Huihui, Dong Bowen, Hu Qi, Zhang Yunsen, Wang Guilei, Meng Hao, Zhao Chao
Beijing Superstring Academy of Memory Technology, Beijing 100176, China.
Changxin Memory Technologies, Inc., Hefei 230601, China.
Nanomaterials (Basel). 2022 Oct 30;12(21):3838. doi: 10.3390/nano12213838.
A nanostrip magnonic-crystal waveguide with spatially periodic width modulation can serve as a gigahertz-range spin-wave filter. Compared with the regular constant-width nanostrip, the periodic width modulation creates forbidden bands (band gaps) at the Brillouin zone boundaries due to the spin-wave reflection by the periodic potential owing to the long-range dipolar interactions. Previous works have shown that there is a critical challenge in tuning the band structures of the magnonic-crystal waveguide once it is fabricated. In this work, using micromagnetic simulations, we show that voltage-controlled magnetic anisotropy can effectively tune the band structures of a ferromagnetic-dielectric heterostructural magnonic-crystal waveguide. A uniformly applied voltage of 0.1 V/nm can lead to a significant frequency shift of ~9 GHz. A spin-wave transistor prototype employing such a kind of spin-wave filter is proposed to realize various logical operations. Our results could be significant for future magnonic computing applications.
一种具有空间周期性宽度调制的纳米带磁子晶体波导可作为千兆赫兹范围的自旋波滤波器。与常规的等宽纳米带相比,由于长程偶极相互作用导致的周期性势场引起的自旋波反射,周期性宽度调制在布里渊区边界处产生了禁带(带隙)。先前的研究表明,一旦制造出磁子晶体波导,在调整其能带结构方面存在一个关键挑战。在这项工作中,我们通过微磁模拟表明,电压控制的磁各向异性可以有效地调整铁磁 - 介电异质结构磁子晶体波导的能带结构。0.1 V/nm的均匀施加电压可导致约9 GHz的显著频率偏移。提出了一种采用这种自旋波滤波器的自旋波晶体管原型,以实现各种逻辑运算。我们的结果对于未来的磁子计算应用可能具有重要意义。