Control of Surface Defects in ZnO Nanorod Arrays with Thermally Deposited Au Nanoparticles for Perovskite Photovoltaics

Research output: Contribution to journalResearch articleContributedpeer-review

Contributors

  • Tulus - , Vrije Universiteit Amsterdam (VU), Ministry of Health, Indonesia (Author)
  • Selina Olthof - , University of Cologne (Author)
  • Magdalena Marszalek - , Vrije Universiteit Amsterdam (VU) (Author)
  • Andreas Peukert - , Vrije Universiteit Amsterdam (VU) (Author)
  • Loreta A. Muscarella - , AMOLF (Author)
  • Bruno Ehrler - , AMOLF (Author)
  • Olivera Vukovic - , Netherlands Organisation for Applied Scientific Research (Author)
  • Yulia Galagan - , Netherlands Organisation for Applied Scientific Research (Author)
  • Simon Christian Boehme - , Vrije Universiteit Amsterdam (VU) (Author)
  • Elizabeth Von Hauff - , Vrije Universiteit Amsterdam (VU) (Author)

Abstract

In this work, we employ vacuum deposited Au nanoparticles (-4 nm) to control the defect density on the surface of hydrothermally synthesized ZnO nanorod arrays (ZnO-NR), which are of interest for electron-transport layers in perovskite solar cells. Using a combination of photoluminescence spectroscopy, X-ray photoelectron spectroscopy, and ultraviolet photoelectron spectroscopy, we show that the Au particles reduce the presence of defects in the ZnO-NR. We discuss this in terms of trap filling due to band bending at the ZnO-NR surface. As a proof-of-concept, we apply the Au-decorated ZnO-NR as electron-transport layers in mixed-cation and mixed-halide lead perovskite solar cells (Cs0.15FA0.85PbI2.75Br0.25). Devices prepared with the Au-decorated ZnO-NR electron-transport layers demonstrate higher open-circuit voltages and fill factors compared to solar cells prepared with pristine ZnO-NR, resulting in an increase in the power-conversion efficiency from 11.7 to 13.7%. However, the operational stability of the solar cells is not improved by the Au nanoparticles, indicating that bulk properties of the perovskite may limit device lifetime.

Details

Original languageEnglish
Pages (from-to)3736-3748
Number of pages13
JournalACS applied energy materials
Volume2
Issue number5
Publication statusPublished - 28 May 2019
Peer-reviewedYes
Externally publishedYes

External IDs

ORCID /0000-0002-6269-0540/work/172082527

Keywords

Keywords

  • defects, interface, mixed cation, mixed halide, perovskite photovoltaics, photoelectron spectroscopy, transport layer, ZnO nanostructures