Strong Potential Gradients and Electron Confinement in ZnO Nanoparticle Films: Implications for Charge-Carrier Transport and Photocatalysis

Johannes Mahl, Oliver Gessner, Johannes V. Barth, Peter Feulner, Stefan Neppl

Research output: Contribution to journalArticlepeer-review

2 Scopus citations

Abstract

Zinc oxide (ZnO) nanomaterials are promising components for chemical and biological sensors and photocatalytic conversion and operate as electron collectors in photovoltaic technologies. Many of these applications involve nanostructures in contact with liquids or exposed to ambient atmosphere. Under these conditions, single-crystal ZnO surfaces are known to form narrow electron accumulation layers with few nanometer spatial penetration into the bulk. A key question is to what extent such pronounced surface potential gradients can develop in the nanophases of ZnO, where they would dominate the catalytic activity by modulating charge-carrier mobility and lifetimes. Here, we follow the temperature-dependent surface electronic structure of nanoporous ZnO with photoemission spectroscopy to reveal a sizable, spatially averaged downward band bending for the hydroxylated state and a conservative upper bound of <6 nm for the spatial extent of the associated potential gradient. This nanoscale confinement of conduction-band electrons to the nanoparticle film surface is crucial for a microscopic understanding and further optimization of charge transport and photocatalytic function in complex ZnO nanomaterials.

Original languageEnglish
Pages (from-to)12213-12221
Number of pages9
JournalACS Applied Nano Materials
Volume4
Issue number11
DOIs
StatePublished - 26 Nov 2021

Keywords

  • band bending
  • electron confinement
  • nanoparticle films
  • photoemission spectroscopy
  • surface metallization
  • zinc oxide

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