Effect of Injection Layer Sub-Bandgap States on Electron Injection in Organic Light-Emitting Diodes

Research output: Contribution to journalResearch articleContributedpeer-review

Contributors

  • Carsten Hinzmann - , Heidelberg University  (Author)
  • Osnat Magen - , Technion-Israel Institute of Technology (Author)
  • Yvonne J. Hofstetter - , Heidelberg University  (Author)
  • Paul E. Hopkinson - , Heidelberg University  (Author)
  • Nir Tessler - , Technion-Israel Institute of Technology (Author)
  • Yana Vaynzof - , Heidelberg University  (Author)

Abstract

It is generally considered that the injection of charges into an active layer of an organic light-emitting diode (OLED) is solely determined by the energetic injection barrier formed at the device interfaces. Here, we demonstrate that the density of surface states of the electron-injecting ZnO layer has a profound effect on both the charge injection and the overall performance of the OLED device. Introducing a dopant into ZnO reduces both the energy depth and density of surface states without altering the position of the energy levels - thus, the magnitude of the injection barrier formed at the organic/ZnO interface remains unchanged. Changes observed in the density of surface states result in an improved electron injection and enhanced luminescence of the device. We implemented a numerical simulation, modeling the effects of energetics and the density of surface states on the electron injection, demonstrating that both contributions should be considered when choosing the appropriate injection layer.

Details

Original languageEnglish
Pages (from-to)6220-6227
Number of pages8
JournalACS Applied Materials and Interfaces
Volume9
Issue number7
Publication statusPublished - 22 Feb 2017
Peer-reviewedYes
Externally publishedYes

External IDs

PubMed 28098451

Keywords

ASJC Scopus subject areas

Keywords

  • drift-diffusion Poisson, electron injection, modeling, organic light-emitting diode, surface states