High-efficiency radiation beyond the critical angle via phase-gradient antireflection metasurfaces

IF 6.6 2区 物理与天体物理 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Nanophotonics Pub Date : 2025-01-31 DOI:10.1515/nanoph-2024-0545
Xiaoxuan Ma, Hainan He, Runqi Jia, Hongchen Chu, Yun Lai
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Abstract

Total internal reflection generally occurs at incident angles beyond the critical angle, confining electromagnetic waves in dielectrics with higher refractive indices. In this work, we present a metasurface-based solution to transform such total reflection into high-efficiency transmission. We demonstrate that a phase-gradient antireflection metasurface designed on the dielectric surface not only compensates for the transverse wave vectors of the incident and transmitted waves but also addresses the impendence mismatch between the two media, eventually achieving high-efficiency transmission with flexibly-controlled wavefronts beyond the critical angle. The design of this unique metasurface is enabled by applying the reciprocity principle to circumvent the traditional limitation of total internal reflection. The theory and functionalities of the phase-gradient antireflection metasurfaces are verified through both simulations and microwave experiments. Our work opens a new avenue for high-efficiency radiation manipulation beyond the critical angle, enabling rich applications such as high-efficiency waveguide-to-free-space couplers, high-radiation-efficiency quantum dots, and high-radiation-efficiency light-emitting diodes.
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通过相位梯度增透超表面实现超过临界角的高效辐射
全内反射通常发生在超过临界角的入射角,限制了电磁波在高折射率介质中的传播。在这项工作中,我们提出了一种基于超表面的解决方案,将这种全反射转化为高效传输。我们证明了在介质表面设计相位梯度增反射超表面不仅补偿了入射波和透射波的横波矢量,而且解决了两种介质之间的阻抗不匹配,最终实现了超过临界角的柔性控制波前的高效传输。这种独特的超表面的设计是通过应用互易原理来克服传统的全内反射限制的。通过仿真和微波实验验证了相梯度增透超表面的理论和功能。我们的工作为超越临界角的高效辐射操纵开辟了新的途径,使高效波导-自由空间耦合器,高辐射效率量子点和高辐射效率发光二极管等丰富的应用成为可能。
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来源期刊
Nanophotonics
Nanophotonics NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
13.50
自引率
6.70%
发文量
358
审稿时长
7 weeks
期刊介绍: Nanophotonics, published in collaboration with Sciencewise, is a prestigious journal that showcases recent international research results, notable advancements in the field, and innovative applications. It is regarded as one of the leading publications in the realm of nanophotonics and encompasses a range of article types including research articles, selectively invited reviews, letters, and perspectives. The journal specifically delves into the study of photon interaction with nano-structures, such as carbon nano-tubes, nano metal particles, nano crystals, semiconductor nano dots, photonic crystals, tissue, and DNA. It offers comprehensive coverage of the most up-to-date discoveries, making it an essential resource for physicists, engineers, and material scientists.
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