Flat Engineered Multichannel Reflectors

Recent advances in engineered gradient metasurfaces have enabled unprecedented opportunities for light manipulation using optically thin sheets, such as anomalous refraction, reflection, or focusing of an incident beam. Here, we introduce a concept of multichannel functional metasurfaces, which are...

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Main Authors: V. S. Asadchy, A. Díaz-Rubio, S. N. Tcvetkova, D.-H. Kwon, A. Elsakka, M. Albooyeh, S. A. Tretyakov
Format: Article
Language:English
Published: American Physical Society 2017-09-01
Series:Physical Review X
Online Access:http://doi.org/10.1103/PhysRevX.7.031046
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spelling doaj-c22e7950b33f4099868f1c3caf7611cc2020-11-24T22:42:54ZengAmerican Physical SocietyPhysical Review X2160-33082017-09-017303104610.1103/PhysRevX.7.031046Flat Engineered Multichannel ReflectorsV. S. AsadchyA. Díaz-RubioS. N. TcvetkovaD.-H. KwonA. ElsakkaM. AlbooyehS. A. TretyakovRecent advances in engineered gradient metasurfaces have enabled unprecedented opportunities for light manipulation using optically thin sheets, such as anomalous refraction, reflection, or focusing of an incident beam. Here, we introduce a concept of multichannel functional metasurfaces, which are able to control incoming and outgoing waves in a number of propagation directions simultaneously. In particular, we reveal a possibility to engineer multichannel reflectors. Under the assumption of reciprocity and energy conservation, we find that there exist three basic functionalities of such reflectors: specular, anomalous, and retroreflections. Multichannel response of a general flat reflector can be described by a combination of these functionalities. To demonstrate the potential of the introduced concept, we design and experimentally test three different multichannel reflectors: three- and five-channel retroreflectors and a three-channel power splitter. Furthermore, by extending the concept to reflectors supporting higher-order Floquet harmonics, we forecast the emergence of other multichannel flat devices, such as isolating mirrors, complex splitters, and multi-functional gratings.http://doi.org/10.1103/PhysRevX.7.031046
collection DOAJ
language English
format Article
sources DOAJ
author V. S. Asadchy
A. Díaz-Rubio
S. N. Tcvetkova
D.-H. Kwon
A. Elsakka
M. Albooyeh
S. A. Tretyakov
spellingShingle V. S. Asadchy
A. Díaz-Rubio
S. N. Tcvetkova
D.-H. Kwon
A. Elsakka
M. Albooyeh
S. A. Tretyakov
Flat Engineered Multichannel Reflectors
Physical Review X
author_facet V. S. Asadchy
A. Díaz-Rubio
S. N. Tcvetkova
D.-H. Kwon
A. Elsakka
M. Albooyeh
S. A. Tretyakov
author_sort V. S. Asadchy
title Flat Engineered Multichannel Reflectors
title_short Flat Engineered Multichannel Reflectors
title_full Flat Engineered Multichannel Reflectors
title_fullStr Flat Engineered Multichannel Reflectors
title_full_unstemmed Flat Engineered Multichannel Reflectors
title_sort flat engineered multichannel reflectors
publisher American Physical Society
series Physical Review X
issn 2160-3308
publishDate 2017-09-01
description Recent advances in engineered gradient metasurfaces have enabled unprecedented opportunities for light manipulation using optically thin sheets, such as anomalous refraction, reflection, or focusing of an incident beam. Here, we introduce a concept of multichannel functional metasurfaces, which are able to control incoming and outgoing waves in a number of propagation directions simultaneously. In particular, we reveal a possibility to engineer multichannel reflectors. Under the assumption of reciprocity and energy conservation, we find that there exist three basic functionalities of such reflectors: specular, anomalous, and retroreflections. Multichannel response of a general flat reflector can be described by a combination of these functionalities. To demonstrate the potential of the introduced concept, we design and experimentally test three different multichannel reflectors: three- and five-channel retroreflectors and a three-channel power splitter. Furthermore, by extending the concept to reflectors supporting higher-order Floquet harmonics, we forecast the emergence of other multichannel flat devices, such as isolating mirrors, complex splitters, and multi-functional gratings.
url http://doi.org/10.1103/PhysRevX.7.031046
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