Solution-Phase Epitaxial Growth of Quasi-Monocrystalline Cuprous Oxide on Metal Nanowires

Journal Article (2014)
Author(s)

B Sciacca (External organisation)

SA Mann (External organisation)

F.D. Tichelaar (QN/High Resolution Electron Microscopy)

Henny Zandbergen (QN/High Resolution Electron Microscopy)

M.A. van Huis (QN/High Resolution Electron Microscopy)

EC Garnett (External organisation)

QN/High Resolution Electron Microscopy
DOI related publication
https://doi.org/10.1021/nl502831t
More Info
expand_more
Publication Year
2014
Language
English
QN/High Resolution Electron Microscopy
Issue number
10
Volume number
14
Pages (from-to)
5891-5898

Abstract

The epitaxial growth of monocrystalline semiconductors on metal nanostructures is interesting from both fundamental and applied perspectives. The realization of nanostructures with excellent interfaces and material properties that also have controlled optical resonances can be very challenging. Here we report the synthesis and characterization of metal-semiconductor core-shell nanowires. We demonstrate a solution-phase route to obtain stable core-shell metal-Cu2O nanowires with outstanding control over the resulting structure, in which the noble metal nanowire is used as the nucleation site for epitaxial growth of quasi-monocrystalline Cu2O shells at room temperature in aqueous solution. We use X-ray and electron diffraction, high-resolution transmission electron microscopy, energy dispersive X-ray spectroscopy, photoluminescence spectroscopy, and absorption spectroscopy, as well as density functional theory calculations, to characterize the core-shell nanowires and verify their structure. Metal-semiconductor core-shell nanowires offer several potential advantages over thin film and traditional nanowire architectures as building blocks for photovoltaics, including efficient carrier collection in radial nanowire junctions and strong optical resonances that can be tuned to maximize absorption.

No files available

Metadata only record. There are no files for this record.