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使用多个耦合闪耀共振的宽带/宽角闪耀面。

Wide-band/angle Blazed Surfaces using Multiple Coupled Blazing Resonances.

机构信息

Dept. Electrical Engineering, Sharif University of Technology, Tehran, Iran.

Dept. Electrical Engineering, University of California Los Angeles, Los Angeles, CA, 90095, USA.

出版信息

Sci Rep. 2017 Feb 17;7:42286. doi: 10.1038/srep42286.

Abstract

Blazed gratings can reflect an oblique incident wave back in the path of incidence, unlike mirrors and metal plates that only reflect specular waves. Perfect blazing (and zero specular scattering) is a type of Wood's anomaly that has been observed when a resonance condition occurs in the unit-cell of the blazed grating. Such elusive anomalies have been studied thus far as individual perfect blazing points. In this work, we present reflective blazed surfaces that, by design, have multiple coupled blazing resonances per cell. This enables an unprecedented way of tailoring the blazing operation, for widening and/or controlling of blazing bandwidth and incident angle range of operation. The surface can thus achieve blazing at multiple wavelengths, each corresponding to different incident wavenumbers. The multiple blazing resonances are combined similar to the case of coupled resonator filters, forming a blazing passband between the incident wave and the first grating order. Blazed gratings with single and multi-pole blazing passbands are fabricated and measured showing increase in the bandwidth of blazing/specular-reflection-rejection, demonstrated here at X-band for convenience. If translated to appropriate frequencies, such technique can impact various applications such as Littrow cavities and lasers, spectroscopy, radar, and frequency scanned antenna reflectors.

摘要

闪耀光栅可以将斜入射波沿入射方向反射回,而不像镜子和金属板只能反射镜面波。完美闪耀(零镜面散射)是一种伍德异常现象,当闪耀光栅的单元发生共振时就会出现这种现象。到目前为止,人们一直将这种难以捉摸的异常现象作为单个完美闪耀点进行研究。在这项工作中,我们提出了具有多个耦合闪耀共振的反射闪耀表面。这使得可以以前所未有的方式对闪耀操作进行调整,从而扩展和/或控制闪耀带宽和工作入射角范围。因此,表面可以在多个波长处实现闪耀,每个波长对应于不同的入射波数。多个闪耀共振类似于耦合谐振器滤波器的情况,在入射波和第一光栅阶之间形成闪耀通带。制造和测量了具有单极和多极闪耀通带的闪耀光栅,为了方便起见,这里在 X 波段展示了闪耀/镜面反射抑制带宽的增加。如果转换到适当的频率,这种技术可以影响各种应用,如里特罗腔和激光器、光谱学、雷达和频率扫描天线反射器。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/562e/5314452/6eaf50c88b7f/srep42286-f1.jpg

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