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Giant nonreciprocity of surface acoustic waves enabled by the magnetoelastic interaction

机译:通过磁力弹性相互作用使能表面声波的巨大非侵入性

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Nonreciprocity, the defining characteristic of isolators, circulators, and a wealth of other applications in radio/microwave communications technologies, is generally difficult to achieve as most physical systems incorporate symmetries that prevent the effect. In particular, acoustic waves are an important medium for information transport, but they are inherently symmetric in time. In this work, we report giant nonreciprocity in the transmission of surface acoustic waves (SAWs) on lithium niobate substrate coated with ferromagnet/insulator/ferromagnet (FeGaB/Alsub2/subOsub3/sub/FeGaB) multilayer structure. We exploit this structure with a unique asymmetric band diagram and expand on magnetoelastic coupling theory to show how the magnetic bands couple with acoustic waves only in a single direction. We measure 48.4-dB (power ratio of 1:69,200) isolation that outperforms current state-of-the-art microwave isolator devices in a previously unidentified acoustic wave system that facilitates unprecedented size, weight, and power reduction. In addition, these results offer a promising platform to study nonreciprocal SAW devices.
机译:非传导性,隔离器,循环器和大量其他应用中的定义特征在无线电/微波通信技术中,通常难以实现,因为大多数物理系统都包含阻止效果的对称性。特别地,声波是信息传输的重要媒介,但它们是固有的对称的。在这项工作中,我们在涂覆有铁圆环/绝缘体/铁磁性/铁甘薯(Fegab / Al 2 3 3 的锂铌酸锂基材上的铌声波(Saws)的传输中报告巨型非侵略性。 / Fegab)多层结构。我们利用这种结构具有独特的不对称频带图并在磁力耦合理论上展开,以显示磁带如何仅在一个方向上与声波耦合。我们测量48.4dB(功率比为1:69,200)隔离,以前不认定的声波系统中的当前最先进的声波隔离器装置,便于前所未有的尺寸,重量和功率降低。此外,这些结果提供了一个有希望的平台,用于研究非透视锯器件。

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