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  4. Determining the structure of semiconductor heterointerfaces by excitonic optical spectra
 
conference paper

Determining the structure of semiconductor heterointerfaces by excitonic optical spectra

Langbein, W.
•
Kocherscheidt, G.
•
Savona, V.  
2004
8Th Conference On Optics Of Excitons In Confined Systems (Oecs-8)
8th International Conference on Optics of Excitons in Confined Systems

A combined theoretical and experimental analysis of the resonant Rayleigh scattering by excitons in a disordered GaAs quantum well with monolayer islands is reported. Experimentally, the coherent resonant Rayleigh scattering is deduced by means of both statistical speckle analysis and passively stabilized spectral interferometry. Theoretically, the effect of disorder is modelled by solving the time-dependent Schrodinger equation for the exciton center-of-mass motion. The disorder potential used in the model includes the detailed monolayer structure of both heterointerfaces, the short-range disorder due to segregation, and a correlation between the upper and lower interfaces. The simulations reproduce all features observed both in frequency- and time-resolved measurements. The comparison between theory and experiment bears strong evidence that the monolayer fluctuations in the two heterointerfaces are highly correlated and have similar length scales.

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Type
conference paper
DOI
10.1002/pssc.200304025
Web of Science ID

WOS:000189477100020

Author(s)
Langbein, W.
Kocherscheidt, G.
Savona, V.  
Date Issued

2004

Publisher

V C H PUBLISHERS, SUITE 909, 220 E 23RD ST, NEW YORK, NY 10010 USA

Published in
8Th Conference On Optics Of Excitons In Confined Systems (Oecs-8)
ISBN of the book

3-527-40505-4

Start page

501

End page

505

Subjects

Rayleigh-Scattering

Written at

EPFL

EPFL units
LTPN  
Event nameEvent placeEvent date
8th International Conference on Optics of Excitons in Confined Systems

Lecce, ITALY

SEP 15-17, 2003

Available on Infoscience
September 22, 2009
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/42817
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