Department of Mathematics, Imperial College London, South Kensington Campus, London, UK.
Optics and Photonics, University of Nottingham, Nottingham, UK.
Sci Rep. 2017 Jul 28;7(1):6750. doi: 10.1038/s41598-017-07151-6.
Recent years have heralded the introduction of metasurfaces that advantageously combine the vision of sub-wavelength wave manipulation, with the design, fabrication and size advantages associated with surface excitation. An important topic within metasurfaces is the tailored rainbow trapping and selective spatial frequency separation of electromagnetic and acoustic waves using graded metasurfaces. This frequency dependent trapping and spatial frequency segregation has implications for energy concentrators and associated energy harvesting, sensing and wave filtering techniques. Different demonstrations of acoustic and electromagnetic rainbow devices have been performed, however not for deep elastic substrates that support both shear and compressional waves, together with surface Rayleigh waves; these allow not only for Rayleigh wave rainbow effects to exist but also for mode conversion from surface into shear waves. Here we demonstrate experimentally not only elastic Rayleigh wave rainbow trapping, by taking advantage of a stop-band for surface waves, but also selective mode conversion of surface Rayleigh waves to shear waves. These experiments performed at ultrasonic frequencies, in the range of 400-600 kHz, are complemented by time domain numerical simulations. The metasurfaces we design are not limited to guided ultrasonic waves and are a general phenomenon in elastic waves that can be translated across scales.
近年来,已经出现了一些将亚波长波操控的愿景与表面激发相关的设计、制造和尺寸优势相结合的超表面。超表面的一个重要课题是利用梯度超表面对电磁和声波进行定制化的彩虹捕获和选择性空间频率分离。这种频率相关的捕获和空间频率分离对于能量集中器以及相关的能量收集、传感和波过滤技术具有重要意义。已经有一些关于声和电磁彩虹器件的演示,但是这些演示都没有针对能够同时支持剪切波和压缩波以及表面瑞利波的深弹性衬底,这不仅允许存在瑞利波彩虹效应,还可以实现从表面到剪切波的模式转换。在这里,我们不仅通过利用表面波的阻带实验演示了弹性瑞利波彩虹捕获,还演示了表面瑞利波选择性地转换为剪切波。这些在超声频率范围内(400-600 kHz)进行的实验得到了时域数值模拟的补充。我们设计的超表面不仅限于导超声波,而且是弹性波中的一种普遍现象,可以在不同尺度上进行转换。