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Nonlinear absorption properties of AlGaAs/GaAs multiple quantum wells grown by metalorganic chemical vapor depositionThe nonlinear absorption properties of the excitonic resonances associated with multiple quantum wells (MQWs) in AlGaAs/GaAs grown by metalorganic chemical vapor deposition are reported. The dependence of the saturation properties on growth parameters, especially growth temperature, and the well width are described. The minimum measured saturation intensity for these materials is 250 W/sq cm, the lowest reported value to date. The low saturation intensities are the result of excellent minority carrier properties. A systematic study of minority carrier lifetimes in quantum wells are reported. Lifetimes range from 50-350 ns depending on growth temperature and well width. When corrected for lateral diffusion effects and the measured minority carrier lifetime, the saturation data suggest that saturation intensities as low as 2.3 W/sq cm can be achieved in this system. The first measurements of the dependence of the exciton area and the magnitude of the excitonic absorption on well width are prsented. The growth of MQW structures on transparent GaP substrates is demonstrated and the electroabsorption properties of these structures are reviewed.
Document ID
19890026841
Acquisition Source
Legacy CDMS
Document Type
Reprint (Version printed in journal)
External Source(s)
Authors
Lee, Hsing-Chung
(University of Southern California Los Angeles, CA, United States)
Kost, A.
(University of Southern California Los Angeles, CA, United States)
Kawase, M.
(University of Southern California Los Angeles, CA, United States)
Hariz, A.
(University of Southern California Los Angeles, CA, United States)
Dapkus, P. Daniel
(Southern California, University Los Angeles, CA, United States)
Date Acquired
August 14, 2013
Publication Date
August 1, 1988
Publication Information
Publication: IEEE Journal of Quantum Electronics
Volume: 24
ISSN: 0018-9197
Subject Category
Solid-State Physics
Accession Number
89A14212
Distribution Limits
Public
Copyright
Other

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