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有源太赫兹超材料器件

Active terahertz metamaterial devices.

作者信息

Chen Hou-Tong, Padilla Willie J, Zide Joshua M O, Gossard Arthur C, Taylor Antoinette J, Averitt Richard D

机构信息

Center for Integrated Nanotechnologies, Materials Physics & Applications Division, Los Alamos National Laboratory, Los Alamos, New Mexico 87545, USA.

出版信息

Nature. 2006 Nov 30;444(7119):597-600. doi: 10.1038/nature05343.

Abstract

The development of artificially structured electromagnetic materials, termed metamaterials, has led to the realization of phenomena that cannot be obtained with natural materials. This is especially important for the technologically relevant terahertz (1 THz = 10(12) Hz) frequency regime; many materials inherently do not respond to THz radiation, and the tools that are necessary to construct devices operating within this range-sources, lenses, switches, modulators and detectors-largely do not exist. Considerable efforts are underway to fill this 'THz gap' in view of the useful potential applications of THz radiation. Moderate progress has been made in THz generation and detection; THz quantum cascade lasers are a recent example. However, techniques to control and manipulate THz waves are lagging behind. Here we demonstrate an active metamaterial device capable of efficient real-time control and manipulation of THz radiation. The device consists of an array of gold electric resonator elements (the metamaterial) fabricated on a semiconductor substrate. The metamaterial array and substrate together effectively form a Schottky diode, which enables modulation of THz transmission by 50 per cent, an order of magnitude improvement over existing devices.

摘要

人工结构化电磁材料(即超材料)的发展,已使一些用天然材料无法实现的现象得以实现。这对于与技术相关的太赫兹(1太赫兹 = 10¹²赫兹)频率范围尤为重要;许多材料本质上对太赫兹辐射没有响应,而构建在该范围内工作的器件(源、透镜、开关、调制器和探测器)所必需的工具在很大程度上并不存在。鉴于太赫兹辐射具有潜在的有用应用,人们正在付出巨大努力来填补这一“太赫兹空白”。在太赫兹产生和检测方面已取得一定进展;太赫兹量子级联激光器就是近期的一个例子。然而,控制和操纵太赫兹波的技术仍滞后。在此,我们展示了一种有源超材料器件,它能够对太赫兹辐射进行高效实时控制和操纵。该器件由在半导体衬底上制造的金电谐振器元件阵列(超材料)组成。超材料阵列和衬底共同有效地形成了一个肖特基二极管,这使得太赫兹传输能够调制50%,比现有器件有一个数量级的提升。

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