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利用ZnO纳米棒光学天线阵列改进太赫兹光电导天线

Improvement of Terahertz Photoconductive Antenna using Optical Antenna Array of ZnO Nanorods.

作者信息

Bashirpour Mohammad, Forouzmehr Matin, Hosseininejad Seyed Ehsan, Kolahdouz Mohammadreza, Neshat Mohammad

机构信息

School of Electrical and Computer Engineering, College of Engineering, University of Tehran, Tehran, Iran.

Department of Electrical Engineering, Yazd University, Yazd, Iran.

出版信息

Sci Rep. 2019 Feb 5;9(1):1414. doi: 10.1038/s41598-019-38820-3.

Abstract

An efficient terahertz (THz) photoconductive antenna (PCA), as a major constituent for the generation or detection of THz waves, plays an essential role in bridging microwave-to-photonic gaps. Here, we propose an impressive approach comprising the use of arrayed zinc oxide nanorods (ZnO NRs) as an optical nanoantenna over an anti-reflective layer (silicon nitride) in the antenna gap to boost the photocurrent and consequently the THz signal. The numerical approach applied in investigating the optical behavior of the structure, demonstrates a significant field enhancement within the LT-GaAs layer due to the optical antenna performing simultaneously as a concentrator and an antireflector which behaves as a graded-refractive index layer. ZnO NRs have been fabricated on the PCA gap using the hydrothermal method as a simple, low cost and production compatible fabrication method compared to other complex methods used for the optical nanoantennas. Compared to the conventional PCA with a traditional antireflection coating, the measured THz power by time domain spectroscopy (TDS) is increased more than 4 times on average over the 0.1-1.2 THz range.

摘要

高效太赫兹(THz)光电导天线(PCA)作为产生或探测太赫兹波的主要部件,在弥合微波与光子间隙方面起着至关重要的作用。在此,我们提出一种令人瞩目的方法,即在天线间隙的抗反射层(氮化硅)上方使用阵列式氧化锌纳米棒(ZnO NRs)作为光学纳米天线,以增强光电流,进而增强太赫兹信号。用于研究该结构光学行为的数值方法表明,由于光学天线同时作为聚光器和抗反射器发挥作用,而抗反射器起到渐变折射率层的作用,因此在低温生长砷化镓(LT-GaAs)层内实现了显著的场增强。与用于光学纳米天线的其他复杂方法相比,采用水热法在PCA间隙上制备ZnO NRs,该方法简单、成本低且与生产兼容。与具有传统抗反射涂层的传统PCA相比,在0.1 - 1.2太赫兹范围内,通过时域光谱(TDS)测量的太赫兹功率平均提高了4倍以上。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/30db/6363728/e0631cf5d6a3/41598_2019_38820_Fig1_HTML.jpg

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