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Pure and linear frequency converter temporal metasurface

Pure and linear frequency converter temporal metasurface
Pure and linear frequency converter temporal metasurface
Metasurfaces are ultrathin structures which are constituted by an array of subwavelength scatterers with designable scattering responses. They have opened up unprecedented exciting opportunities for extraordinary wave engineering processes. On the other hand, frequency converters have drawn wide attention due to their vital applications in telecommunication systems, health care devices, radio astronomy, military radars and biological sensing systems. Here, we show that a spurious-free and linear frequency converter metasurface can be realized by leveraging unique properties of engineered transmissive temporal supercells. Such a metasurface is formed by time-modulated supercells; themselves are composed of temporal and static patch resonators and phase shifters. This represents the first frequency converter metasurface possessing large frequency conversion ratio with controllable frequency bands and transmission magnitude. In contrast to conventional nonlinear mixers, the proposed temporal frequency converter offers a linear response. In addition, by taking advantage of the proposed surface-interconnector-phaser-surface (SIPS) architecture, a spurious-free and linear frequency conversion is achievable, where all undesired mixing products are strongly suppressed. The proposed metasurface may be digitally controlled and programmed through a field programmable gate array. This makes the spurious-free and linear frequency converter metasurface a prominent solution for wireless and satellite telecommunication systems, as well as invisibility cloaks and radars. This study opens a way to realize more complicated and enhanced-efficiency spectrum-changing metasurface.

arXiv
Taravati, S.
0026f25d-c919-4273-b956-8fe9795b31ce
Eleftheriades, G.V.
280bbae6-32df-4af5-bcad-110f38ad72e7
Taravati, S.
0026f25d-c919-4273-b956-8fe9795b31ce
Eleftheriades, G.V.
280bbae6-32df-4af5-bcad-110f38ad72e7

[Unknown type: UNSPECIFIED]

Record type: UNSPECIFIED

Abstract

Metasurfaces are ultrathin structures which are constituted by an array of subwavelength scatterers with designable scattering responses. They have opened up unprecedented exciting opportunities for extraordinary wave engineering processes. On the other hand, frequency converters have drawn wide attention due to their vital applications in telecommunication systems, health care devices, radio astronomy, military radars and biological sensing systems. Here, we show that a spurious-free and linear frequency converter metasurface can be realized by leveraging unique properties of engineered transmissive temporal supercells. Such a metasurface is formed by time-modulated supercells; themselves are composed of temporal and static patch resonators and phase shifters. This represents the first frequency converter metasurface possessing large frequency conversion ratio with controllable frequency bands and transmission magnitude. In contrast to conventional nonlinear mixers, the proposed temporal frequency converter offers a linear response. In addition, by taking advantage of the proposed surface-interconnector-phaser-surface (SIPS) architecture, a spurious-free and linear frequency conversion is achievable, where all undesired mixing products are strongly suppressed. The proposed metasurface may be digitally controlled and programmed through a field programmable gate array. This makes the spurious-free and linear frequency converter metasurface a prominent solution for wireless and satellite telecommunication systems, as well as invisibility cloaks and radars. This study opens a way to realize more complicated and enhanced-efficiency spectrum-changing metasurface.

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Published date: 2021

Identifiers

Local EPrints ID: 495369
URI: http://eprints.soton.ac.uk/id/eprint/495369
PURE UUID: 76381432-c85f-455c-86b3-de36d799987d
ORCID for S. Taravati: ORCID iD orcid.org/0000-0003-3992-0050

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Date deposited: 11 Nov 2024 18:46
Last modified: 12 Nov 2024 03:14

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Contributors

Author: S. Taravati ORCID iD
Author: G.V. Eleftheriades

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