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Hybrid organic–metal oxide multilayer channel transistors with high operational stability

  • Yen Hung Lin
  • , Wen Li
  • , Hendrik Faber
  • , Akmaral Seitkhan
  • , Nikolaos A. Hastas
  • , Dongyoon Khim
  • , Qiang Zhang
  • , Xixiang Zhang
  • , Nikolaos Pliatsikas
  • , Leonidas Tsetseris
  • , Panos A. Patsalas
  • , Donal D.C. Bradley
  • , Wei Huang
  • , Thomas D. Anthopoulos
  • Imperial College London
  • University of Oxford
  • Northwestern Polytechnical University Xian
  • Nanjing University of Posts and Telecommunications
  • King Abdullah University of Science and Technology
  • Aristotle University of Thessaloniki
  • National Technical University of Athens

Research output: Contribution to journalArticlepeer-review

63 Scopus citations

Abstract

Metal oxide thin-film transistors are increasingly used in the driving backplanes of organic light-emitting diode displays. Commercial devices currently rely on metal oxides processed via physical vapour deposition methods, but the use of solution-based processes could provide a simpler, higher-throughput approach that would be more cost effective. However, creating oxide transistors with high carrier mobility and bias-stable operation using such processes has proved challenging. Here we show that transistors with high electron mobility (50 cm2 V−1 s−1) and operational stability can be fabricated from solution-processed multilayer channels composed of ultrathin layers of indium oxide, zinc oxide nanoparticles, ozone-treated polystyrene and compact zinc oxide. Insertion of the ozone-treated polystyrene interlayer passivates electron traps in the channel and reduces bias-induced instability during continuous transistor operation over a period of 24 h and under a high electric-field flux density (2.1 × 10−6 C cm−2). Furthermore, incorporation of the pre-synthesized aluminium-doped zinc oxide nanoparticles enables controlled n-type doping of the hybrid channels, providing additional control over the operating characteristics of the transistors.

Original languageEnglish
Pages (from-to)587-595
Number of pages9
JournalNature Electronics
Volume2
Issue number12
DOIs
StatePublished - 1 Dec 2019

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