Issue 7, 2013

Synthesis and stress relaxation of ZnO/Al-doped ZnO core–shell nanowires

Abstract

Doping nanostructures is an effective method to tune their electrical and photoelectric properties. Taking ZnO nanowires (NWs) as a model system, we demonstrate that atomic layer deposition (ALD) can be adopted for the realization of a doping process by the homo-epitaxial growth of a doped shell on the NW core. The Al-doped ZnO NWs have a layered superlattice structure with dopants mainly occupying the interstitial positions. After annealing, Al3+ ions diffuse into the ZnO matrix and occupy substitutional locations, which is desirable for dopant activation. The stress accumulated during epitaxial growth is relaxed by the nucleation of dislocations, dislocation dipoles and anti-phase boundaries. We note that the proposed method can be easily adopted for doping different types of nanostructures, and fabricating superlattices and multiple quantum wells on NWs in a controllable way.

Graphical abstract: Synthesis and stress relaxation of ZnO/Al-doped ZnO core–shell nanowires

Supplementary files

Article information

Article type
Paper
Submitted
10 Nov 2012
Accepted
01 Feb 2013
First published
05 Feb 2013

Nanoscale, 2013,5, 2857-2863

Synthesis and stress relaxation of ZnO/Al-doped ZnO core–shell nanowires

H. Wang, F. Ma, Q. Li, C. Dong, D. Ma, H. Wang and K. Xu, Nanoscale, 2013, 5, 2857 DOI: 10.1039/C3NR33584D

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