首页> 外文期刊>IEEE Transactions on Magnetics >Voltage-Controlled, Nonreciprocal Millimeter-Wave Propagation From Magnetoelastic Membranes Infused With Aligned Nickel Microparticles
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Voltage-Controlled, Nonreciprocal Millimeter-Wave Propagation From Magnetoelastic Membranes Infused With Aligned Nickel Microparticles

机译:磁控膜注入取向镍微粒后的电压控制,不可逆的毫米波传播

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摘要

Differential Faraday rotation of the linear polarization of millimeter-wave (mmW) Gaussian beams has been observed from a magnetoelastic material system consisting of a silicone membrane that was infused with aligned nickel microparticles, mounted to a piezoelectric annulus, and immersed in a static magnetic field. The piezoelectric crystal was driven near its radial mode of resonance by an ac voltage signal so as to periodically stretch the membrane about the axis of mmW propagation. The stretching modulated the distribution of nickel microparticles and resulted in a change in magnetic properties of the material, specifically the effective Verdet constant. A customized, quasi-optical apparatus was phase locked with the ac driving signal to determine the difference in Faraday rotation due to the stretched and un-stretched states of the membrane.
机译:从磁弹性材料系统中观察到毫米波(mmW)高斯光束的线性极化的法拉第旋转差。该磁弹性材料系统由硅树脂膜组成,硅树脂膜中注入有对准的镍微粒,安装在压电环上,并浸没在静磁场中。交流电压信号驱动压电晶体接近其径向共振模式,从而周期性地围绕mmW传播轴拉伸膜。拉伸调节了镍微粒的分布,并导致了材料磁性能的变化,特别是有效维尔德常数。将定制的准光学设备与交流驱动信号锁相,以确定由于膜的拉伸和未拉伸状态而引起的法拉第旋转的差异。

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