Ali Adnan, Mitra Anirban, Aïssa Brahim
Qatar Environment and Energy Research Institute (QEERI), Hamad Bin Khalifa University (HBKU), Qatar Foundation, Doha P.O. Box 34110, Qatar.
Department of Physics, Indian Institute of Technology Roorkee, Roorkee 247667, India.
Nanomaterials (Basel). 2022 Mar 21;12(6):1027. doi: 10.3390/nano12061027.
Throughout human history, the control of light, electricity and heat has evolved to become the cornerstone of various innovations and developments in electrical and electromagnetic technologies. Wireless communications, laser and computer technologies have all been achieved by altering the way light and other energy forms act naturally and how to manage them in a controlled manner. At the nanoscale, to control light and heat, matured nanostructure fabrication techniques have been developed in the last two decades, and a wide range of groundbreaking processes have been achieved. Photonic crystals, nanolithography, plasmonics phenomena and nanoparticle manipulation are the main areas where these techniques have been applied successfully and led to an emergent material sciences branch known as metamaterials. Metamaterials and functional material development strategies are focused on the structures of the matter itself, which has led to unconventional and unique electromagnetic properties through the manipulation of light-and in a more general picture the electromagnetic waves-in widespread manner. Metamaterial's nanostructures have precise shape, geometry, size, direction and arrangement. Such configurations are impacting the electromagnetic light waves to generate novel properties that are difficult or even impossible to obtain with natural materials. This review discusses these metamaterials and metasurfaces from the perspectives of materials, mechanisms and advanced metadevices in depth, with the aim to serve as a solid reference for future works in this exciting and rapidly emerging topic.
纵观人类历史,对光、电和热的控制已发展成为电气和电磁技术中各种创新与发展的基石。无线通信、激光和计算机技术都是通过改变光和其他能量形式的自然行为方式以及如何以可控方式对其进行管理而实现的。在纳米尺度上,为了控制光和热,在过去二十年中已经开发出成熟的纳米结构制造技术,并取得了一系列开创性的进展。光子晶体、纳米光刻、等离激元现象和纳米粒子操纵是这些技术成功应用并催生了一个名为超材料的新兴材料科学分支的主要领域。超材料和功能材料的发展策略聚焦于物质本身的结构,通过广泛地操纵光——更广义地说是电磁波——从而产生了非常规且独特的电磁特性。超材料的纳米结构具有精确的形状、几何结构、尺寸、方向和排列。这种结构正在影响电磁光波,以产生天然材料难以甚至无法获得的新特性。本文从材料、机理和先进的超器件等角度深入探讨了这些超材料和超表面,旨在为这一令人兴奋且迅速兴起的主题的未来研究提供坚实的参考。