论文标题
滑行对称的声学波导,用于极端传感和隔离
Glide-Symmetric Acoustic Waveguides for Extreme Sensing and Isolation
论文作者
论文摘要
Glide Symmetry提供了新的自由度来设计周期性结构的性质,因此已在各种电磁结构中被利用。但是,到目前为止,几乎没有探索Glide对称性在声学领域所产生的影响。在本文中,我们探讨了滑行对称的声学波导,突出了它们的分散特性和指导性能,并在声学设备的背景下展示了机会。在这里,我们通过分析得出应用半分析模式匹配技术的分散功能。然后,我们证明了如何使用滑行对称声波的异常分散性能来实现非常清晰的频率响应。基于这些结果,我们为表现出较高灵敏度和线性性的液体分析物提出了一个传感平台。此外,通过引入流体运动,我们利用这些响应来设计基于声学的声音隔离器,基于声学的Mach-Zehnder干涉法,与其他不依赖于滑行对称的声音相比,其设计在足迹和复杂性方面更有利。
Glide symmetry offers new degrees of freedom to engineer the properties of periodic structures, and thus it has been exploited in various electromagnetic structures. However, so far there has been little exploration on the impact that glide symmetry can offer in the field of acoustics. In this paper, we explore glide-symmetric acoustic waveguides, highlighting their dispersion characteristics and guiding properties and demonstrating opportunities in the context of acoustic devices. Here we analytically derive their dispersive features applying a semi-analytical mode matching technique. We then demonstrate how the unusual dispersion properties of glide-symmetric acoustic waveguides can be used to achieve very sharp frequency responses. Based on these results, we propose a sensing platform for liquid analytes that exhibits large sensitivity and linearity. Furthermore, by introducing fluid motion, we leverage these responses to design an acoustic isolator based on acoustic Mach-Zehnder interferometry, whose design is more favorable in terms of footprint and complexity in comparison to other acoustic nonreciprocal devices that do not rely on glide symmetry.