Organic Photodetectors with Extended Spectral Response Range Assisted by Plasmonic Hot-Electron Injection

被引:2
|
作者
Zhai, Aiping [1 ]
Zhao, Chenjie [1 ]
Pan, Deng [1 ]
Zhu, Shilei [1 ]
Wang, Wenyan [1 ]
Ji, Ting [1 ]
Li, Guohui [1 ,2 ]
Wen, Rong [1 ]
Zhang, Ye [1 ]
Hao, Yuying [1 ]
Cui, Yanxia [1 ,2 ]
机构
[1] Taiyuan Univ Technol, Coll Phys & Optoelect, Taiyuan 030024, Peoples R China
[2] Aluminum Magnesium Based New Mat R&D Co Ltd, Lvliang 035300, Peoples R China
基金
中国国家自然科学基金;
关键词
organic photodetector; nanostructure; plasmonic resonance; hot electron; near infrared; POLYMER PHOTODETECTORS; NANOPARTICLES; PHOTOMULTIPLICATION; PHOTODIODES; ABSORPTION; LAYER;
D O I
10.3390/nano12173084
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Organic photodetectors (OPDs) have aroused intensive attention for signal detection in industrial and scientific applications due to their advantages including low cost, mechanical flexibility, and large-area fabrication. As one of the most common organic light-emitting materials, 8-hydroxyquinolinato aluminum (Alq(3)) has an absorption wavelength edge of 460 nm. Here, through the introduction of Ag nanoparticles (Ag NPs), the spectral response range of the Alq(3)-based OPD was successfully extended to the near-infrared range. It was found that introducing Ag NPs can induce rich plasmonic resonances, generating plenty of hot electrons, which could be injected into Alq(3) and then be collected. Moreover, as a by-product of introducing Ag NPs, the dark current was suppressed by around two orders of magnitude by forming a Schottky junction on the cathode side. These two effects in combination produced photoelectric signals with significant contrasts at wavelengths beyond the Alq(3) absorption band. It was found that the OPD with Ag NPs can stably generate electric signals under illumination by pulsed 850 nm LED, while the output of the reference device included no signal. Our work contributes to the development of low-cost, broadband OPDs for applications in flexible electronics, bio-imaging sensors, etc.
引用
收藏
页数:10
相关论文
共 50 条
  • [1] Plasmonic Photodetectors, Photovoltaics, and Hot-Electron Devices
    Brongersma, Mark L.
    PROCEEDINGS OF THE IEEE, 2016, 104 (12) : 2349 - 2361
  • [2] Quantitative investigation of plasmonic hot-electron injection by KPFM
    Jian, Aoqun
    Feng, Kai
    Jia, Huaping
    Zhang, Qianwu
    Sang, Shengbo
    Zhang, Xuming
    APPLIED SURFACE SCIENCE, 2019, 492 : 644 - 650
  • [3] Enhancing Hot Electron Injection in Plasmonic Photodetectors through Roughened Interfaces
    Xiao, Long
    Yan, Shancheng
    Chen, Tianhong
    Wang, Junzhuan
    Shi, Yi
    SYMMETRY-BASEL, 2022, 14 (08):
  • [4] THE EFFECT OF HOT-ELECTRON INJECTION ON THE INTENSITY OF NOISE PULSES IN AVALANCHE MIS PHOTODETECTORS
    VETOKHIN, SS
    ZALESSKY, VB
    MALYSHEV, SA
    SHUNEVICH, SA
    DOKLADY AKADEMII NAUK BELARUSI, 1989, 33 (11): : 993 - 996
  • [5] Breaking bandgap limitation: Improved photosensitization in plasmonic-based CsPbBr3 photodetectors via hot-electron injection
    Qiu, Conghui
    Zhang, Hao
    Tian, Chengcai
    Jin, Xuan
    Song, Qianglin
    Xu, Liye
    Ijaz, Mohsin
    Blaikie, Richard J.
    Xu, Qingyu
    APPLIED PHYSICS LETTERS, 2023, 122 (24)
  • [6] Plasmonic protection of the hot-electron energy
    Kempa, Krzysztof
    PHYSICA STATUS SOLIDI-RAPID RESEARCH LETTERS, 2013, 7 (07): : 465 - 468
  • [7] HOT-ELECTRON INJECTION DEVICES
    LURYI, S
    KASTALSKY, A
    SUPERLATTICES AND MICROSTRUCTURES, 1985, 1 (05) : 389 - 400
  • [8] Fabrication and properties of plasmonic hot-electron phototransistor
    Chen G.-D.
    Zhai Y.-S.
    Li Y.-P.
    Wang Q.-L.
    Wang, Qi-Long (northrockwql@seu.edu.cn), 2018, Chinese Academy of Sciences (26): : 517 - 522
  • [9] Hot-Electron Effects in Plasmonics and Plasmonic Materials
    Zayats, Anatoly V.
    Maier, Stefan
    ADVANCED OPTICAL MATERIALS, 2017, 5 (15):
  • [10] New insights into plasmonic hot-electron dynamics
    Lei, Dangyuan
    Su, Dong
    Maier, Stefan A.
    LIGHT-SCIENCE & APPLICATIONS, 2024, 13 (01)