Key Factors in Achieving High Responsivity for Graphene-Based Terahertz Detection

被引:0
|
作者
Xiao, Long [1 ,2 ]
Degl'Innocenti, Riccardo [3 ]
Wang, Zhiping [2 ]
机构
[1] MIT, Dept Elect Engn & Comp Sci, Cambridge, MA 02139 USA
[2] Agcy Sci Technol & Res, Singapore Inst Mfg Technol, 2 Fusionopolis Way,Innovis 08-04, Singapore 138634, Singapore
[3] Univ Lancaster, Dept Engn, Lancaster LA1 4YW, England
来源
ADVANCED PHOTONICS RESEARCH | 2024年 / 5卷 / 08期
基金
英国工程与自然科学研究理事会;
关键词
antenna arrays; coupled antenna elements; graphene detectors; terahertz radiations;
D O I
10.1002/adpr.202300272
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Terahertz (THz) radiation is highly promising for various applications, from industrial inspections to medical diagnoses. Given the typically ultralow-level power of generated THz radiation, the achievement of high responsivity in THz detection stands as a critical imperative for its applications. Graphene-based detectors have become an attractive choice for THz detection due to the graphene unique 2D material structure, allowing a broad absorption spectrum and ultrafast response. Various plasmonic antenna arrays are also employed to couple with graphene, compensating for its modest optical absorption. However, the configuration of the plasmonic antenna arrays plays a crucial role in THz detection as it determines the graphene physical mechanisms of photodetection, directly impacting the final responsivity. Here, the key factors for achieving high responsivity are investigated and it is presented that reducing the gap size of the plasmonic antenna arrays to the nanoscale and implementing a series-connection configuration can result in a remarkable increase in responsivity, often by several orders of magnitude. Importantly, this approach effectively prevents short circuits and minimizes dark current, further enhancing the overall performance of the detection system. Terahertz (THz) is highly promising for various applications, from industrial inspections to medical diagnoses. Graphene-based detectors, featuring a unique 2D structure, offer a broad THz radiation absorption spectrum. In this study, it is revealed that nanoscale plasmonic antenna arrays, coupled with a series-connection configuration, significantly boost responsivity by several orders of magnitude, enhancing overall detection system performance, particularly for high-quality THz imaging.image (c) 2024 WILEY-VCH GmbH
引用
收藏
页数:6
相关论文
共 50 条
  • [21] Graphene-based devices in terahertz science and technology
    Otsuji, T.
    Tombet, S. A. Boubanga
    Satou, A.
    Fukidome, H.
    Suemitsu, M.
    Sano, E.
    Popov, V.
    Ryzhii, M.
    Ryzhii, V.
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2012, 45 (30)
  • [22] Graphene-based terahertz antenna with polarization reconfiguration
    Fakhte, Saeed
    Taskhiri, Mohammad Mahdi
    PHYSICA SCRIPTA, 2023, 98 (11)
  • [23] Tunable focus graphene-based terahertz lens
    Li, Jiu-Sheng
    OPTICS COMMUNICATIONS, 2016, 359 : 268 - 271
  • [24] A graphene-based broadband terahertz metamaterial modulator
    Deng, Guangsheng
    Xia, Tianyu
    Yang, Jun
    Yin, Zhiping
    JOURNAL OF ELECTROMAGNETIC WAVES AND APPLICATIONS, 2017, 31 (18) : 2016 - 2024
  • [25] Graphene-based tunable metamaterial terahertz filters
    Yang, Kai
    Liu, Shuchang
    Arezoomandan, Sara
    Nahata, Ajay
    Sensale-Rodriguez, Berardi
    APPLIED PHYSICS LETTERS, 2014, 105 (09)
  • [26] Graphene-based reconfigurable terahertz plasmonics and metamaterials
    Arezoomandan, Sara
    Quispe, Hugo O. Condori
    Ramey, Nicholas
    Nieves, Cesar A.
    Sensale-Rodriguez, Berardi
    CARBON, 2017, 112 : 177 - 184
  • [27] Evaluation of graphene-based terahertz photoconductive antennas
    Koohi, M. Zolfagharloo
    Neshat, M.
    SCIENTIA IRANICA, 2015, 22 (03) : 1299 - 1305
  • [28] Electromechanically tunable graphene-based terahertz metasurface
    Roy, Shuvajit
    Debnath, Kapil
    OPTICS COMMUNICATIONS, 2023, 534
  • [30] Graphene-Based\ Waveguide Terahertz Wave Attenuator
    Hu Jian-rong
    Li Jiu-sheng
    Qiu Guo-hua
    JOURNAL OF INFRARED MILLIMETER AND TERAHERTZ WAVES, 2016, 37 (07) : 668 - 675