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Recombination dyamics of deep defect states in zinc oxide nanowires

Academic Article
Publication Date:
2009
abstract:
The recombination dynamics of defect states in zinc oxide nanowires has been studied by developing a general expression for time-resolved photoluminescence intensity based on a second-order approximation for the radiative and non-radiative recombination rates. The model allows us to determine the parameters that characterize the recombination from deep defect states (defect concentration, unimolecular lifetime and bimolecular coefficient) through multi-fitting analysis of time-resolved photoluminescence measurements. Analyses conducted on zinc oxide nanowires gave deep state concentrations of the order of 1018 cm-3 and unimolecular lifetimes and bimolecular recombination coefficient comparable to those typical of interband recombination in direct gap semiconductors. The consistency of a 'two-channel decay' model (double exponential decay) has been tested by means of a similar analysis procedure. The results suggest that double exponential fitting of time-resolved photoluminescence data of zinc oxide nanowires may be just a mere phenomenological tool which does not reflect the real recombination dynamics of the visible emission band.
Iris type:
01.01 Articolo in rivista
List of contributors:
Comini, Elisabetta; Maddalena, Pasqualino; Baratto, Camilla; Todros, Silvia; SANTAMARIA AMATO, Luigi; Lettieri, Stefano
Authors of the University:
BARATTO CAMILLA
LETTIERI STEFANO
Handle:
https://iris.cnr.it/handle/20.500.14243/239933
Published in:
NANOTECHNOLOGY (BRISTOL, ONLINE)
Journal
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URL

http://iopscience.iop.org/0957-4484/20/17/175706
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