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Electronically-Controlled Beam-Steering through Vanadium Dioxide Metasurfaces.


ABSTRACT: Engineered metamaterials offer unique functionalities for manipulating the spectral and spatial properties of electromagnetic waves in unconventional ways. Here, we report a novel approach for making reconfigurable metasurfaces capable of deflecting electromagnetic waves in an electronically controllable fashion. This is accomplished by tilting the phase front of waves through a two-dimensional array of resonant metasurface unit-cells with electronically-controlled phase-change materials embedded inside. Such metasurfaces can be placed at the output facet of any electromagnetic radiation source to deflect electromagnetic waves at a desired frequency, ranging from millimeter-wave to far-infrared frequencies. Our design does not use any mechanical elements, external light sources, or reflectarrays, creating, for the first time, a highly robust and fully-integrated beam-steering device solution. We demonstrate a proof-of-concept beam-steering metasurface optimized for operation at 100?GHz, offering up to 44° beam deflection in both horizontal and vertical directions. Dynamic control of electromagnetic wave propagation direction through this unique platform could be transformative for various imaging, sensing, and communication applications, among others.

SUBMITTER: Hashemi MR 

PROVIDER: S-EPMC5064393 | biostudies-literature | 2016 Oct

REPOSITORIES: biostudies-literature

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Electronically-Controlled Beam-Steering through Vanadium Dioxide Metasurfaces.

Hashemi Mohammed Reza M MR   Yang Shang-Hua SH   Wang Tongyu T   Sepúlveda Nelson N   Jarrahi Mona M  

Scientific reports 20161014


Engineered metamaterials offer unique functionalities for manipulating the spectral and spatial properties of electromagnetic waves in unconventional ways. Here, we report a novel approach for making reconfigurable metasurfaces capable of deflecting electromagnetic waves in an electronically controllable fashion. This is accomplished by tilting the phase front of waves through a two-dimensional array of resonant metasurface unit-cells with electronically-controlled phase-change materials embedde  ...[more]

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