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

被引:0
|
作者
Mohammad Bashirpour
Matin Forouzmehr
Seyed Ehsan Hosseininejad
Mohammadreza Kolahdouz
Mohammad Neshat
机构
[1] University of Tehran,School of Electrical and Computer Engineering, College of Engineering
[2] Yazd University,Department of Electrical Engineering
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
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.
引用
收藏
相关论文
共 50 条
  • [1] Improvement of Terahertz Photoconductive Antenna using Optical Antenna Array of ZnO Nanorods
    Bashirpour, Mohammad
    Forouzmehr, Matin
    Hosseininejad, Seyed Ehsan
    Kolahdouz, Mohammadreza
    Neshat, Mohammad
    [J]. SCIENTIFIC REPORTS, 2019, 9 (1)
  • [2] Research on terahertz photoconductive antenna and its array
    Liu, Yongfang
    Zhang, Yongping
    [J]. AOPC 2020: ADVANCED LASER TECHNOLOGY AND APPLICATION, 2020, 11562
  • [3] Enhanced photoconductive terahertz antenna array devices
    Awad, M.
    Nagel, M.
    Kurz, H.
    [J]. 2007 JOINT 32ND INTERNATIONAL CONFERENCE ON INFRARED AND MILLIMETER WAVES AND 15TH INTERNATIONAL CONFERENCE ON TERAHERTZ ELECTRONICS, VOLS 1 AND 2, 2007, : 185 - 186
  • [4] Significant performance improvement of a terahertz photoconductive antenna using a hybrid structure
    Bashirpour, M.
    Ghorbani, S.
    Kolahdouz, M.
    Neshat, M.
    Masnadi-Shirazi, M.
    Aghababa, H.
    [J]. RSC ADVANCES, 2017, 7 (83): : 53010 - 53017
  • [5] Terahertz line detection by a microlens array coupled photoconductive antenna array
    Pradarutti, B.
    Mueller, R.
    Freese, W.
    Matthaeus, G.
    Riehemann, S.
    Notni, G.
    Nolte, S.
    Tuennermann, A.
    [J]. OPTICS EXPRESS, 2008, 16 (22): : 18443 - 18450
  • [6] Enhancement of terahertz photoconductive antenna operation by optical nanoantennas
    Lepeshov, Sergey
    Gorodetsky, Andrei
    Krasnok, Alexander
    Rafailov, Edik
    Belov, Pavel
    [J]. LASER & PHOTONICS REVIEWS, 2017, 11 (01)
  • [7] Intense Terahertz Radiation from GaAs Photoconductive Antenna Array
    Shi, Wei
    Xue, Hong
    Ma, Xiangrong
    Zhang, Zhenzhen
    [J]. PIERS 2009 BEIJING: PROGESS IN ELECTROMAGNETICS RESEARCH SYMPOSIUM, PROCEEDINGS I AND II, 2009, : 1698 - 1701
  • [8] High power terahertz radiation with diamond photoconductive antenna array
    Yoneda, H
    Tokuyama, K
    Ueda, K
    Yamamoto, H
    Baba, K
    [J]. 2000 25TH INTERNATIONAL CONFERENCE ON INFRARED AND MILLIMETER WAVES CONFERENCE DIGEST, 2000, : 61 - 62
  • [9] Research on Terahertz Photoconductive Antenna
    Xie Meng
    Lu Guizhen
    [J]. 2017 IEEE 5TH INTERNATIONAL SYMPOSIUM ON ELECTROMAGNETIC COMPATIBILITY (EMC-BEIJING), 2017,
  • [10] Optical Scanning Techniques for Characterization of Terahertz Photoconductive Antenna Arrays
    Tiedje, Henry F.
    Saeedkia, Daryoosh
    Nagel, Michael
    Haugen, Harold K.
    [J]. IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 2010, 58 (07) : 2040 - 2045