Programmable metamaterials

R. Wu, L. Wu, S. He, Shuo Liu, T. Cui
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引用次数: 1

Abstract

As a major approach for controlling electromagnetic (EM) waves, metamaterials have experienced an abundant and rapid development in the 21st century. They have provided flexible and powerful techniques for controlling EM waves and brought many unique applications that are difficult to realise with natural materials. With increasing demands on dynamic controls of the EM waves, many innovations have been conducted in both three-dimensional metamaterials and two-dimensional metasurfaces, in which the meta-atom has been gradually evolved from passive to active. In 2014, coding and digital mechanisms were initially introduced to the metamaterials, further advancing the appearance of digitally programmable metamaterials. The programmable metamaterials have shown great potentials in not only real-time manipulations of the EM waves, but also direct information processing on the EM wave level. In this article, we present an in-depth review of the programmable EM metamaterials and metasurfaces, focusing on the programmable features including theoretical concepts, implementing methods and applications in EM controls. We first give a short retrospect of traditional metamaterials and metasurfaces, followed by the concepts and detailed discussions of digital coding and field-programmable metamaterials. Then, we introduce space-domain, time-domain and space–time-domain programmable metamaterials and metasurfaces, mainly focusing on their theories, functionalities, experimental implementations, and system-level applications. Finally, we conclude the current advances of the programmable metamaterials and metasurfaces, and give a prospect for the future developments.
可编程的超材料
超材料作为一种控制电磁波的主要手段,在21世纪得到了广泛而迅速的发展。它们为控制电磁波提供了灵活而强大的技术,并带来了许多难以用天然材料实现的独特应用。随着人们对电磁波动态控制的要求越来越高,在三维超材料和二维超表面上都进行了许多创新,其中元原子逐渐从被动向主动演变。2014年,编码和数字机制被初步引入到超材料中,进一步推进了数字可编程超材料的出现。可编程超材料不仅在对电磁波的实时操纵方面显示出巨大的潜力,而且在对电磁波进行直接的信息处理方面也显示出巨大的潜力。在本文中,我们对可编程电磁超材料和超表面进行了深入的综述,重点介绍了可编程特性,包括理论概念、实现方法和在电磁控制中的应用。我们首先简要回顾了传统的超材料和超表面,然后是数字编码和现场可编程超材料的概念和详细讨论。然后,我们介绍了空间域、时间域和时空域可编程超材料和超表面,重点介绍了它们的理论、功能、实验实现和系统级应用。最后,对可编程超材料和超表面的研究进展进行了总结,并对未来的发展进行了展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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