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Bifunctional Manipulation of Terahertz Waves with High‐Efficiency Transmissive Dielectric Metasurfaces

Multifunctional terahertz (THz) devices in transmission mode are highly desired in integration‐optics applications, but conventional devices are bulky in size and inefficient. While ultra‐thin multifunctional THz devices are recently demonstrated based on reflective metasurfaces, their transmissive...

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Autores principales: Wang, Zhuo, Yao, Yao, Pan, Weikang, Zhou, Haoyang, Chen, Yizhen, Lin, Jing, Hao, Jiaming, Xiao, Shiyi, He, Qiong, Sun, Shulin, Zhou, Lei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9896063/
https://www.ncbi.nlm.nih.gov/pubmed/36494100
http://dx.doi.org/10.1002/advs.202205499
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author Wang, Zhuo
Yao, Yao
Pan, Weikang
Zhou, Haoyang
Chen, Yizhen
Lin, Jing
Hao, Jiaming
Xiao, Shiyi
He, Qiong
Sun, Shulin
Zhou, Lei
author_facet Wang, Zhuo
Yao, Yao
Pan, Weikang
Zhou, Haoyang
Chen, Yizhen
Lin, Jing
Hao, Jiaming
Xiao, Shiyi
He, Qiong
Sun, Shulin
Zhou, Lei
author_sort Wang, Zhuo
collection PubMed
description Multifunctional terahertz (THz) devices in transmission mode are highly desired in integration‐optics applications, but conventional devices are bulky in size and inefficient. While ultra‐thin multifunctional THz devices are recently demonstrated based on reflective metasurfaces, their transmissive counterparts suffer from severe limitations in efficiency and functionality. Here, based on high aspect‐ratio silicon micropillars exhibiting wide transmission‐phase tuning ranges with high transmission‐amplitudes, a set of dielectric metasurfaces is designed and fabricated to achieve efficient spin‐multiplexed wavefront controls on THz waves. As a benchmark test, the photonic‐spin‐Hall‐effect is experimentally demonstrated with a record high absolute efficiency of 92% using a dielectric metasurface encoded with geometric phases only. Next, spin‐multiplexed controls on circularly polarized THz beams (e.g., anomalous refraction and focusing) are experimentally demonstrated with experimental efficiency reaching 88%, based on a dielectric meta‐device encoded with both spin‐independent resonant phases and spin‐dependent geometric phases. Finally, high‐efficiency spin‐multiplexed dual holographic images are experimentally realized with the third meta‐device encoded with both resonant and geometric phases. Both near‐field and far‐field measurements are performed to characterize these devices, yielding results in agreement with full‐wave simulations. The study paves the way to realize multifunctional, high‐performance, and ultra‐compact THz devices for applications in biology sensing, communications, and so on.
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spelling pubmed-98960632023-02-08 Bifunctional Manipulation of Terahertz Waves with High‐Efficiency Transmissive Dielectric Metasurfaces Wang, Zhuo Yao, Yao Pan, Weikang Zhou, Haoyang Chen, Yizhen Lin, Jing Hao, Jiaming Xiao, Shiyi He, Qiong Sun, Shulin Zhou, Lei Adv Sci (Weinh) Research Articles Multifunctional terahertz (THz) devices in transmission mode are highly desired in integration‐optics applications, but conventional devices are bulky in size and inefficient. While ultra‐thin multifunctional THz devices are recently demonstrated based on reflective metasurfaces, their transmissive counterparts suffer from severe limitations in efficiency and functionality. Here, based on high aspect‐ratio silicon micropillars exhibiting wide transmission‐phase tuning ranges with high transmission‐amplitudes, a set of dielectric metasurfaces is designed and fabricated to achieve efficient spin‐multiplexed wavefront controls on THz waves. As a benchmark test, the photonic‐spin‐Hall‐effect is experimentally demonstrated with a record high absolute efficiency of 92% using a dielectric metasurface encoded with geometric phases only. Next, spin‐multiplexed controls on circularly polarized THz beams (e.g., anomalous refraction and focusing) are experimentally demonstrated with experimental efficiency reaching 88%, based on a dielectric meta‐device encoded with both spin‐independent resonant phases and spin‐dependent geometric phases. Finally, high‐efficiency spin‐multiplexed dual holographic images are experimentally realized with the third meta‐device encoded with both resonant and geometric phases. Both near‐field and far‐field measurements are performed to characterize these devices, yielding results in agreement with full‐wave simulations. The study paves the way to realize multifunctional, high‐performance, and ultra‐compact THz devices for applications in biology sensing, communications, and so on. John Wiley and Sons Inc. 2022-12-09 /pmc/articles/PMC9896063/ /pubmed/36494100 http://dx.doi.org/10.1002/advs.202205499 Text en © 2022 The Authors. Advanced Science published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Wang, Zhuo
Yao, Yao
Pan, Weikang
Zhou, Haoyang
Chen, Yizhen
Lin, Jing
Hao, Jiaming
Xiao, Shiyi
He, Qiong
Sun, Shulin
Zhou, Lei
Bifunctional Manipulation of Terahertz Waves with High‐Efficiency Transmissive Dielectric Metasurfaces
title Bifunctional Manipulation of Terahertz Waves with High‐Efficiency Transmissive Dielectric Metasurfaces
title_full Bifunctional Manipulation of Terahertz Waves with High‐Efficiency Transmissive Dielectric Metasurfaces
title_fullStr Bifunctional Manipulation of Terahertz Waves with High‐Efficiency Transmissive Dielectric Metasurfaces
title_full_unstemmed Bifunctional Manipulation of Terahertz Waves with High‐Efficiency Transmissive Dielectric Metasurfaces
title_short Bifunctional Manipulation of Terahertz Waves with High‐Efficiency Transmissive Dielectric Metasurfaces
title_sort bifunctional manipulation of terahertz waves with high‐efficiency transmissive dielectric metasurfaces
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9896063/
https://www.ncbi.nlm.nih.gov/pubmed/36494100
http://dx.doi.org/10.1002/advs.202205499
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