Asymmetric Diffraction in Plasmonic Meta-Gratings Using an IT-Shaped Nanoslit Array

Diffraction is a fundamental phenomenon that reveals the wave nature of light. When a plane wave is transmitted or reflected from a grating or other periodic structures, diffracted light waves propagate at several angles that are specified by the period of the given structure. When the optical perio...

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Main Authors: Hee-Dong Jeong, Seong-Won Moon, Seung-Yeol Lee
Format: Article
Language:English
Published: MDPI AG 2021-06-01
Series:Sensors
Subjects:
Online Access:https://www.mdpi.com/1424-8220/21/12/4097
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spelling doaj-f92b983e33da4ea79b3a108803275d562021-07-01T00:09:47ZengMDPI AGSensors1424-82202021-06-01214097409710.3390/s21124097Asymmetric Diffraction in Plasmonic Meta-Gratings Using an IT-Shaped Nanoslit ArrayHee-Dong Jeong0Seong-Won Moon1Seung-Yeol Lee2School of Electronic and Electrical Engineering, College of IT Engineering, Kyungpook National University, Daegu 41566, KoreaSchool of Electronic and Electrical Engineering, College of IT Engineering, Kyungpook National University, Daegu 41566, KoreaSchool of Electronic and Electrical Engineering, College of IT Engineering, Kyungpook National University, Daegu 41566, KoreaDiffraction is a fundamental phenomenon that reveals the wave nature of light. When a plane wave is transmitted or reflected from a grating or other periodic structures, diffracted light waves propagate at several angles that are specified by the period of the given structure. When the optical period is shorter than the wavelength, constructive interference of diffracted light rays from the subwavelength-scale grating forms a uniform plane wave. Many studies have shown that through the appropriate design of meta-atom geometry, metasurfaces can be used to control light properties. However, most semitransparent metasurfaces are designed to perform symmetric operation with regard to diffraction, meaning that light diffraction occurs identically for front- and back-side illumination. We propose a simple single-layer plasmonic metasurface that achieves asymmetric diffraction by optimizing the transmission phase from two types of nanoslits with I- and T-shaped structures. As the proposed structure is designed to have a different effective period for each observation side, it is either diffractive or nondiffractive depending on the direction of observation. The designed structure exhibits a diffraction angle of 54°, which can be further tuned by applying different period conditions. We expect the proposed asymmetric diffraction meta-grating to have great potential for the miniaturized optical diffraction control systems in the infrared band and compact optical diffraction filters for integrated optics.https://www.mdpi.com/1424-8220/21/12/4097asymmetric diffractionmetasurfacenanostructured optical filternon-reciprocal
collection DOAJ
language English
format Article
sources DOAJ
author Hee-Dong Jeong
Seong-Won Moon
Seung-Yeol Lee
spellingShingle Hee-Dong Jeong
Seong-Won Moon
Seung-Yeol Lee
Asymmetric Diffraction in Plasmonic Meta-Gratings Using an IT-Shaped Nanoslit Array
Sensors
asymmetric diffraction
metasurface
nanostructured optical filter
non-reciprocal
author_facet Hee-Dong Jeong
Seong-Won Moon
Seung-Yeol Lee
author_sort Hee-Dong Jeong
title Asymmetric Diffraction in Plasmonic Meta-Gratings Using an IT-Shaped Nanoslit Array
title_short Asymmetric Diffraction in Plasmonic Meta-Gratings Using an IT-Shaped Nanoslit Array
title_full Asymmetric Diffraction in Plasmonic Meta-Gratings Using an IT-Shaped Nanoslit Array
title_fullStr Asymmetric Diffraction in Plasmonic Meta-Gratings Using an IT-Shaped Nanoslit Array
title_full_unstemmed Asymmetric Diffraction in Plasmonic Meta-Gratings Using an IT-Shaped Nanoslit Array
title_sort asymmetric diffraction in plasmonic meta-gratings using an it-shaped nanoslit array
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2021-06-01
description Diffraction is a fundamental phenomenon that reveals the wave nature of light. When a plane wave is transmitted or reflected from a grating or other periodic structures, diffracted light waves propagate at several angles that are specified by the period of the given structure. When the optical period is shorter than the wavelength, constructive interference of diffracted light rays from the subwavelength-scale grating forms a uniform plane wave. Many studies have shown that through the appropriate design of meta-atom geometry, metasurfaces can be used to control light properties. However, most semitransparent metasurfaces are designed to perform symmetric operation with regard to diffraction, meaning that light diffraction occurs identically for front- and back-side illumination. We propose a simple single-layer plasmonic metasurface that achieves asymmetric diffraction by optimizing the transmission phase from two types of nanoslits with I- and T-shaped structures. As the proposed structure is designed to have a different effective period for each observation side, it is either diffractive or nondiffractive depending on the direction of observation. The designed structure exhibits a diffraction angle of 54°, which can be further tuned by applying different period conditions. We expect the proposed asymmetric diffraction meta-grating to have great potential for the miniaturized optical diffraction control systems in the infrared band and compact optical diffraction filters for integrated optics.
topic asymmetric diffraction
metasurface
nanostructured optical filter
non-reciprocal
url https://www.mdpi.com/1424-8220/21/12/4097
work_keys_str_mv AT heedongjeong asymmetricdiffractioninplasmonicmetagratingsusinganitshapednanoslitarray
AT seongwonmoon asymmetricdiffractioninplasmonicmetagratingsusinganitshapednanoslitarray
AT seungyeollee asymmetricdiffractioninplasmonicmetagratingsusinganitshapednanoslitarray
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