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Carrier dynamics of InxGa1−xN quantum disks embedded in GaN nanocolumns
Author(s) -
Mark Holmes,
Young S. Park,
Xu Wang,
Christopher C. S. Chan,
Anas F. Jarjour,
Robert A. Taylor,
Jamie H. Warner,
Jun Luo,
Haitham A. R. El-Ella,
Rachel A. Oliver
Publication year - 2011
Publication title -
journal of applied physics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.699
H-Index - 319
eISSN - 1089-7550
pISSN - 0021-8979
DOI - 10.1063/1.3558990
Subject(s) - cathodoluminescence , excitation , band bending , condensed matter physics , materials science , polarization (electrochemistry) , photoluminescence , context (archaeology) , optoelectronics , quantum , luminescence , wide bandgap semiconductor , quantum well , quantum efficiency , physics , optics , chemistry , laser , quantum mechanics , paleontology , biology
Time-integrated and time-resolved microphotoluminescence studies have been performed on In x Ga 1 - x N quantum disks at the tips of GaN nanocolumns. The results are analyzed in the context of current theories regarding an inhomogeneous strain distribution in the disk which is theorized to generate lateral charge separation in the disks by strain induced band bending, an inhomogeneous polarization field distribution, and Fermi surface pinning. It is concluded that no lateral separation of carriers occurs in the quantum disks under investigation. Internal field screening by an increased carrier density in the QDisks at higher excitation densities is observed via a blue-shift of the emission and a dynamically changing decay time. Other possible explanations for these effects are discussed and discounted. Cathodoluminescence studies have also been carried out on the nanocolumns to provide insight into the physical origin of the luminescence. © 2011 American Institute of Physics

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