Effect of elemental composition and size on electron confinement in self-assembled SiC quantum dots : a combinatorial approach


Autoria(s): Das Arulsamy, A.; Rider, A.E.; Cheng, Q.J.; Xu, S.; Ostrikov, K.
Data(s)

2009

Resumo

A high level of control over quantum dot (QD) properties such as size and composition during fabrication is required to precisely tune the eventual electronic properties of the QD. Nanoscale synthesis efforts and theoretical studies of electronic properties are traditionally treated quite separately. In this paper, a combinatorial approach has been taken to relate the process synthesis parameters and the electron confinement properties of the QDs. First, hybrid numerical calculations with different influx parameters for Si1-x Cx QDs were carried out to simulate the changes in carbon content x and size. Second, the ionization energy theory was applied to understand the electronic properties of Si1-x Cx QDs. Third, stoichiometric (x=0.5) silicon carbide QDs were grown by means of inductively coupled plasma-assisted rf magnetron sputtering. Finally, the effect of QD size and elemental composition were then incorporated in the ionization energy theory to explain the evolution of the Si1-x Cx photoluminescence spectra. These results are important for the development of deterministic synthesis approaches of self-assembled nanoscale quantum confinement structures.

Formato

application/pdf

Identificador

http://eprints.qut.edu.au/73867/

Publicador

American Institute of Physics

Relação

http://eprints.qut.edu.au/73867/1/73867%28pub%29.pdf

DOI:10.1063/1.3116226

Das Arulsamy, A., Rider, A.E., Cheng, Q.J., Xu, S., & Ostrikov, K. (2009) Effect of elemental composition and size on electron confinement in self-assembled SiC quantum dots : a combinatorial approach. Journal of Applied Physics, 105(9), 094314-1.

Direitos

Copyright 2009 American Institute of Physics

Fonte

Science & Engineering Faculty

Tipo

Journal Article