Anion-induced N-doping of naphthalenediimide polymer semiconductor in organic thin-film transistors

被引:0
|
作者
Yang Han
Zhuping Fei
Yen-Hung Lin
Jaime Martin
Floriana Tuna
Thomas D. Anthopoulos
Martin Heeney
机构
[1] Imperial College London,Dept. Chemistry and Centre for Plastic Electronics
[2] Imperial College London,Dept. Physics and Centre for Plastic Electronics
[3] Imperial College London,Dept. of Materials
[4] University of Manchester,School of Chemistry and Photon Science Institute
[5] King Abdullah University of Science and Technology,Division of Physical Sciences and Engineering
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Molecular doping is an important strategy to improve the charge transport properties of organic semiconductors in various electronic devices. Compared to p-type dopants, the development of n-type dopants is especially challenging due to poor dopant stability against atmospheric conditions. In this article, we report the n-doping of the milestone naphthalenediimide-based conjugated polymer P(NDI2OD-T2) in organic thin film transistor devices by soluble anion dopants. The addition of the dopants resulted in the formation of stable radical anions in thin films, as confirmed by EPR spectroscopy. By tuning the dopant concentration via simple solution mixing, the transistor parameters could be readily controlled. Hence the contact resistance between the electrodes and the semiconducting polymer could be significantly reduced, which resulted in the transistor behaviour approaching the desirable gate voltage-independent model. Reduced hysteresis was also observed, thanks to the trap filling by the dopant. Under optimal doping concentrations the channel on-current was increased several fold whilst the on/off ratio was simultaneously increased by around one order of magnitude. Hence doping with soluble organic salts appears to be a promising route to improve the charge transport properties of n-type organic semiconductors.
引用
收藏
相关论文
共 50 条
  • [1] Anion-induced N-doping of naphthalenediimide polymer semiconductor in organic thin-film transistors
    Han, Yang
    Fei, Zhuping
    Lin, Yen-Hung
    Martin, Jaime
    Tuna, Floriana
    Anthopoulos, Thomas D.
    Heeney, Martin
    NPJ FLEXIBLE ELECTRONICS, 2018, 2 (01)
  • [2] Organic thin-film transistors with N2 doping
    Wu, Bo-Tan
    Su, Yan-Kuin
    Chen, You Sian
    Tu, Ming-Lung
    Chiou, Yii-Tay
    Chu, Chun-Hsun
    IDMC 05: PROCEEDINGS OF THE INTERNATIONAL DISPLAY MANUFACTURING CONFERENCE 2005, 2005, : 451 - 452
  • [3] Solution-Processable Conductive Organics via Anion-Induced n-Doping and Their Applications in Organic and Perovskite Solar Cells
    Yan, Kangrong
    Li, Chang-Zhi
    MACROMOLECULAR CHEMISTRY AND PHYSICS, 2019, 220 (10)
  • [4] Polymer thin-film transistors fabricated by dry transfer of polymer semiconductor
    Park, J
    Shim, SO
    Lee, HH
    APPLIED PHYSICS LETTERS, 2005, 86 (07) : 1 - 3
  • [5] Organic polymer thin-film photo-transistors
    Hamilton, MC
    Martin, S
    Kanicki, J
    ORGANIC FIELD EFFECT TRANSISTORS II, 2003, 5217 : 193 - 201
  • [6] Effect of illumination on organic polymer thin-film transistors
    Hamilton, MC
    Martin, S
    Kanicki, J
    ORGANIC AND POLYMERIC MATERIALS AND DEVICES, 2003, 771 : 333 - 338
  • [7] Thiophene polymer semiconductors for organic thin-film transistors
    Ong, Beng S.
    Wu, Yiliang
    Li, Yuning
    Liu, Ping
    Pan, Hualong
    CHEMISTRY-A EUROPEAN JOURNAL, 2008, 14 (16) : 4766 - 4778
  • [8] Organic Semiconductor Growth and Morphology Considerations for Organic Thin-Film Transistors
    Virkar, Ajay A.
    Mannsfeld, Stefan
    Bao, Zhenan
    Stingelin, Natalie
    ADVANCED MATERIALS, 2010, 22 (34) : 3857 - 3875
  • [9] Comparative study of physical doping and electrochemical doping in polymer thin-film transistors
    Seung Hoon Oh
    Jaehyun Yoo
    Jiyoul Lee
    Macromolecular Research, 2023, 31 : 1189 - 1197
  • [10] Comparative study of physical doping and electrochemical doping in polymer thin-film transistors
    Oh, Seung Hoon
    Yoo, Jaehyun
    Lee, Jiyoul
    MACROMOLECULAR RESEARCH, 2023, 31 (12) : 1189 - 1197