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超薄高效全空间潘查拉特纳姆-贝里超表面

Ultra-thin and high-efficiency full-space Pancharatnam-Berry metasurface.

作者信息

Mao Ruiqi, Wang Guangming, Cai Tong, Liu Kaiyue, Wang Dengpan, Wu Borui

出版信息

Opt Express. 2020 Oct 12;28(21):31216-31225. doi: 10.1364/OE.405086.

Abstract

Full-space metasurfaces (MSs) attract significant attention in the field of electromagnetic (EM) wave manipulation due to their advantages of functionality integration, spatial integration and wide applications in modern communication systems. However, almost all reported full-space metasurfaces are realized by multilayer dielectric cascaded structures, which not only has the disadvantages of high cost and complex fabrication but also is inconvenient to device integration. Thus, it is of great interest to achieve high-efficiency full-space metasurfaces through simple design and easy fabrication procedures. Here, we propose a full-space MS that can efficiently manipulate the circularly polarized (CP) waves in dual frequency bands by only using a single substrate layer, the reflection and transmission properties can be independently controlled by rotating the optimized meta-structures on the metasurface. Our full-space metasurface has the potential to design multifunctional devices. To prove the concept, we fabricate the device and measured it in microwave chamber. For the reflection mode, our metasurface can behave as a CP beam splitter at the frequency of f = 8.3 GHz and exhibit high efficiencies in the range of 84.1%-84.9%. For the transmission mode, our metasurface acts as a meta-lens at the frequency of f = 12.8 GHz for the LCP incidence, and the measured relative efficiency of the meta-lens reaches about 82.7%. Our findings provide an alternative way to design full-space metasurfaces and yield many applications in EM integration systems.

摘要

全空间超表面(MSs)因其功能集成、空间集成以及在现代通信系统中的广泛应用等优势,在电磁波(EM)操控领域引起了广泛关注。然而,几乎所有已报道的全空间超表面都是通过多层介质级联结构实现的,这种结构不仅具有成本高、制造复杂的缺点,而且不利于器件集成。因此,通过简单设计和易于制造的工艺来实现高效的全空间超表面具有重要意义。在此,我们提出一种全空间MS,仅使用单个基底层就能在双频段高效操控圆极化(CP)波,通过旋转超表面上优化的超结构可独立控制反射和透射特性。我们的全空间超表面具有设计多功能器件的潜力。为了验证这一概念,我们制造了该器件并在微波暗室中进行测量。对于反射模式,我们的超表面在频率f = 8.3 GHz时可作为CP分束器,效率在84.1% - 84.9%范围内。对于透射模式,我们的超表面在频率f = 12.8 GHz时,对于左旋圆极化(LCP)入射可作为超透镜,测量得到的超透镜相对效率约为82.7%。我们的研究结果为设计全空间超表面提供了一种替代方法,并在电磁集成系统中有许多应用。

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