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      Information entropy of coding metasurface

      research-article
      1 , 2 , * , 1 , 3 , 4
      Light, Science & Applications
      Nature Publishing Group
      coding, entropy, information, metasurface

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          Abstract

          Because of their exceptional capability to tailor the effective medium parameters, metamaterials have been widely used to control electromagnetic waves, which has led to the observation of many interesting phenomena, for example, negative refraction, invisibility cloaking, and anomalous reflections and transmissions. However, the studies of metamaterials or metasurfaces are mainly limited to their physical features; currently, there is a lack of viewpoints on metamaterials and metasurfaces from the information perspective. Here we propose to measure the information of a coding metasurface using Shannon entropy. We establish an analytical connection between the coding pattern of an arbitrary coding metasurface and its far-field pattern. We introduce geometrical entropy to describe the information of the coding pattern (or coding sequence) and physical entropy to describe the information of the far-field pattern of the metasurface. The coding metasurface is demonstrated to enhance the information in transmitting messages, and the amount of enhanced information can be manipulated by designing the coding pattern with different information entropies. The proposed concepts and entropy control method will be helpful in new information systems (for example, communication, radar and imaging) that are based on the coding metasurfaces.

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          Negative refraction makes a perfect lens

          With a conventional lens sharpness of the image is always limited by the wavelength of light. An unconventional alternative to a lens, a slab of negative refractive index material, has the power to focus all Fourier components of a 2D image, even those that do not propagate in a radiative manner. Such "superlenses" can be realized in the microwave band with current technology. Our simulations show that a version of the lens operating at the frequency of visible light can be realized in the form of a thin slab of silver. This optical version resolves objects only a few nanometers across.
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            Gradient-index meta-surfaces as a bridge linking propagating waves and surface waves.

            The arbitrary control of electromagnetic waves is a key aim of photonic research. Although, for example, the control of freely propagating waves (PWs) and surface waves (SWs) has separately become possible using transformation optics and metamaterials, a bridge linking both propagation types has not yet been found. Such a device has particular relevance given the many schemes of controlling electromagnetic waves at surfaces and interfaces, leading to trapped rainbows, lensing, beam bending, deflection, and even anomalous reflection/refraction. Here, we demonstrate theoretically and experimentally that a specific gradient-index meta-surface can convert a PW to a SW with nearly 100% efficiency. Distinct from conventional devices such as prism or grating couplers, the momentum mismatch between PW and SW is compensated by the reflection-phase gradient of the meta-surface, and a nearly perfect PW-SW conversion can happen for any incidence angle larger than a critical value. Experiments in the microwave region, including both far-field and near-field characterizations, are in excellent agreement with full-wave simulations. Our findings may pave the way for many applications, including high-efficiency surface plasmon couplers, anti-reflection surfaces, light absorbers, and so on.
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              Coding metamaterials, digital metamaterials and programmable metamaterials

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                Author and article information

                Journal
                Light Sci Appl
                Light Sci Appl
                Light, Science & Applications
                Nature Publishing Group
                2095-5545
                2047-7538
                November 2016
                03 June 2016
                18 November 2016
                1 November 2016
                : 5
                : 11
                : e16172
                Affiliations
                [1 ]Department of Radio Engineering, State Key Laboratory of Millimeter Waves, Southeast University , 2 Si-Pai-Lou, Nanjing 210096, China
                [2 ]Innovation Centre of Terahertz Science , No. 4, Section 2, North Jianshe Road, Chengdu 610054, China
                [3 ]Synergetic Innovation Center of Wireless Communication Technology, Southeast University , Nanjing 210096, China
                [4 ]School of Electronics Engineering and Computer Sciences, Peking University , Beijing 100871, China
                Author notes
                Article
                lsa2016172
                10.1038/lsa.2016.172
                6059823
                30167131
                33b392d8-7bbf-4cda-8639-619fd0c59992
                Copyright © 2016 The Author(s)

                This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivs 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by-nc-nd/4.0/

                History
                : 16 February 2016
                : 22 May 2016
                : 02 June 2016
                Categories
                Original Article

                coding,entropy,information,metasurface
                coding, entropy, information, metasurface

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