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将微系统与超材料集成以实现超器件

Integrating microsystems with metamaterials towards metadevices.

作者信息

Zhao Xiaoguang, Duan Guangwu, Li Aobo, Chen Chunxu, Zhang Xin

机构信息

Department of Mechanical Engineering, Boston University, Boston, MA USA.

出版信息

Microsyst Nanoeng. 2019 Jan 28;5:5. doi: 10.1038/s41378-018-0042-1. eCollection 2019.

Abstract

Electromagnetic metamaterials, which are a major type of artificially engineered materials, have boosted the development of optical and photonic devices due to their unprecedented and controllable effective properties, including electric permittivity and magnetic permeability. Metamaterials consist of arrays of subwavelength unit cells, which are also known as meta-atoms. Importantly, the effective properties of metamaterials are mainly determined by the geometry of the constituting subwavelength unit cells rather than their chemical composition, enabling versatile designs of their electromagnetic properties. Recent research has mainly focused on reconfigurable, tunable, and nonlinear metamaterials towards the development of metamaterial devices, namely, metadevices, via integrating actuation mechanisms and quantum materials with meta-atoms. Microelectromechanical systems (MEMS), or microsystems, provide powerful platforms for the manipulation of the effective properties of metamaterials and the integration of abundant functions with metamaterials. In this review, we will introduce the fundamentals of metamaterials, approaches to integrate MEMS with metamaterials, functional metadevices from the synergy, and outlooks for metamaterial-enabled photonic devices.

摘要

电磁超材料是人工工程材料的主要类型之一,由于其具有包括介电常数和磁导率在内的前所未有的且可控的有效特性,推动了光学和光子器件的发展。超材料由亚波长单元结构阵列组成,这些单元结构也被称为超原子。重要的是,超材料的有效特性主要由构成亚波长单元结构的几何形状而非其化学成分决定,这使得能够对其电磁特性进行多种设计。近期的研究主要集中在通过将驱动机制和量子材料与超原子集成,朝着超材料器件即超器件的发展方向,研究可重构、可调谐和非线性超材料。微机电系统(MEMS)或微系统为操纵超材料的有效特性以及将丰富功能与超材料集成提供了强大平台。在本综述中,我们将介绍超材料的基本原理、将MEMS与超材料集成的方法、协同作用产生的功能性超器件以及基于超材料的光子器件的前景。

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