论文标题
非线性镁纳米环谐振器
A nonlinear magnonic nano-ring resonator
论文作者
论文摘要
旨在将自旋波用作数据处理设备中的载体的镁化领域,近年来引起了人们的兴趣。我们在微磁性上介绍和研究一种非线性纳米磁环磁环谐振器设备,用于实现宏伟的逻辑门和神经形态镁电路。在线性方案中,该设备使用临界谐振耦合的现象有效地抑制了自旋波的传播,从而表现出Notch滤波器的行为。通过增加自旋波输入功率,共振频率被移动导致传输曲线,具体取决于频率,让人联想到神经元的激活函数或显示功率限制器的特性。开发了一种分析理论,以描述线性和非线性方案中宏伟环谐振器的传输曲线,并通过全面的微磁研究验证。所提出的磁环谐振器为非常规的磁通路提供了一个多功能的非线性构建块。
The field of magnonics, which aims at using spin waves as carriers in data processing devices, has attracted increasing interest in recent years. We present and study micromagnetically a nonlinear nanoscale magnonic ring resonator device for enabling implementations of magnonic logic gates and neuromorphic magnonic circuits. In the linear regime, this device efficiently suppresses spin-wave transmission using the phenomenon of critical resonant coupling, thus exhibiting the behavior of a notch filter. By increasing the spin-wave input power, the resonance frequency is shifted leading to transmission curves, depending on the frequency, reminiscent of the activation functions of neurons or showing the characteristics of a power limiter. An analytical theory is developed to describe the transmission curve of magnonic ring resonators in the linear and nonlinear regimes and validated by a comprehensive micromagnetic study. The proposed magnonic ring resonator provides a multi-functional nonlinear building block for unconventional magnonic circuits.