• Laser & Optoelectronics Progress
  • Vol. 61, Issue 5, 0504001 (2024)
Qilin Xu1 and Kexue Sun1、2、*
Author Affiliations
  • 1College of Electronic and Optical Engineering & College of Flexible Electronics (Future Technology), Nanjing University of Posts and Telecommunications, Nanjing 210023, Jiangsu , China
  • 2Nation and Local Joint Engineering Laboratory of RF Integration & Micro-Assembly Technology, Nanjing 210023, Jiangsu , China
  • show less
    DOI: 10.3788/LOP230761 Cite this Article Set citation alerts
    Qilin Xu, Kexue Sun. Light Absorption Performance of Graphene Photodetector Based on Localized Surface Plasmon Resonance Effect[J]. Laser & Optoelectronics Progress, 2024, 61(5): 0504001 Copy Citation Text show less
    References

    [1] Chen H Y, Su L X, Jiang M M et al. Highly desirable photodetectors derived from versatile plasmonic nanostructures[J]. Advanced Functional Materials, 27, 1704181(2017).

    [2] Li Z Y, Allen J, Allen M et al. Review on III-V semiconductor single nanowire-based room temperature infrared photodetectors[J]. Materials, 13, 1400(2020).

    [3] Zuo X R, Li Z Y, Wong W W et al. Design of InAs nanosheet arrays with ultrawide polarization-independent high absorption for infrared photodetection[J]. Applied Physics Letters, 120, 071109(2022).

    [4] Avouris P. Graphene: electronic and photonic properties and devices[J]. Nano Letters, 10, 4285-4294(2010).

    [5] Jiang H, Wei J X, Sun F Y et al. Enhanced photogating effect in graphene photodetectors via potential fluctuation engineering[J]. ACS Nano, 16, 4458-4466(2022).

    [6] Nair R R, Blake P, Grigorenko A N et al. Fine structure constant defines visual transparency of graphene[J]. Science, 320, 1308(2008).

    [7] Zhou H, Zhang L, Tong J C et al. Surface plasmon enhanced GeSn photodetectors operating at 2 µm[J]. Optics Express, 29, 8498-8509(2021).

    [8] Wang J, He M Y, Han X W et al. Localized field enhanced graphene-based near-infrared photodetector(Invited)[J]. Infrared and Laser Engineering, 51, 20210823(2022).

    [9] Wu P P, Fu Y Q, Yang J. Graphene photodetectors based on surface plasmons[J]. Laser & Optoelectronics Progress, 58, 0700002(2021).

    [10] Takemura K. Surface plasmon resonance (SPR)- and localized SPR (LSPR)-based virus sensing systems: optical vibration of nano- and micro-metallic materials for the development of next-generation virus detection technology[J]. Biosensors, 11, 250(2021).

    [11] Jian C C, Zhang J Q, He W M et al. Au-Al intermetallic compounds: a series of more efficient LSPR materials for hot carriers-based applications than noble metal Au[J]. Nano Energy, 82, 105763(2021).

    [12] Oumekloul Z, Lahlali S, Mir A et al. Evolution of LSPR of gold nanowire chain embedded in dielectric multilayers[J]. Optical Materials, 86, 343-351(2018).

    [13] Li J F, Zhao C, Liu B Y et al. Metamaterial grating-integrated graphene photodetector with broadband high responsivity[J]. Applied Surface Science, 473, 633-640(2019).

    [14] Wang L M, Zhang Y C, Wang B et al. High-performance infrared Ge-based plasmonic photodetector enhanced by dual absorption mechanism[J]. APL Photonics, 5, 096104(2020).

    [15] Bruna M, Borini S. Optical constants of graphene layers in the visible range[J]. Applied Physics Letters, 94, 031901(2009).

    [16] Andryieuski A, Lavrinenko A V. Graphene metamaterials based tunable terahertz absorber: effective surface conductivity approach[J]. Optics Express, 21, 9144-9155(2013).

    [17] Novoselov K S, Geim A K, Morozov S V et al. Electric field effect in atomically thin carbon films[J]. Science, 306, 666-669(2004).

    [18] Yu Y J, Zhao Y, Ryu S et al. Tuning the graphene work function by electric field effect[J]. Nano Letters, 9, 3430-3434(2009).

    [19] El barghouti M, Akjouj A, Mir A. Effect of graphene layer on the localized surface plasmon resonance (LSPR) and the sensitivity in periodic nanostructure[J]. Photonics and Nanostructures-Fundamentals and Applications, 31, 107-114(2018).

    [20] Hibino H, Kageshima H, Kotsugi M et al. Dependence of electronic properties of epitaxial few-layer graphene on the number of layers investigated by photoelectron emission microscopy[J]. Physical Review B, 79, 125437(2009).

    [21] Li J L, Sun K X. Study on optical absorption characteristics of graphene photodetector based on nano-metal modification[J]. Laser & Optoelectronics Progress, 59, 2124003(2022).

    Qilin Xu, Kexue Sun. Light Absorption Performance of Graphene Photodetector Based on Localized Surface Plasmon Resonance Effect[J]. Laser & Optoelectronics Progress, 2024, 61(5): 0504001
    Download Citation