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Microanalysis of Self-assembled InAs Quantum Dot Structures Grown for Infrared Detector Applications

Published online by Cambridge University Press:  01 February 2011

W.L. Sarney
Affiliation:
Sensors & Electron Devices Directorate, U.S. Army Research Laboratory AMSRL-SE-EI, 2800 Powder Mill Road, Adelphi, MD 20783, U.S.A
J.W. Little
Affiliation:
Sensors & Electron Devices Directorate, U.S. Army Research Laboratory AMSRL-SE-EI, 2800 Powder Mill Road, Adelphi, MD 20783, U.S.A
S. Svensson
Affiliation:
Sensors & Electron Devices Directorate, U.S. Army Research Laboratory AMSRL-SE-EI, 2800 Powder Mill Road, Adelphi, MD 20783, U.S.A
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Abstract

In an effort to develop materials that are sensitive to mid and far infrared radiation, we examine InAs quantum dot/GaAs matrix multilayer structures grown by molecular beam epitaxy (MBE). Customized electrical and optical properties result from nanoscale-level manipulation of the dots' physical dimensions. The MBE growth temperature can be set to yield dots having the desired lateral dimension; however this leads to dots of insufficient vertical height. It is therefore necessary to grow the dots in a manner that allows independent control of the lateral and vertical dimensions. In this experiment, the vertical dimension is controlled by growing the dots in a multilayer structure with GaAs matrix layers. An initial layer of InAs quantum dots was grown on top of GaAs, followed by a few seconds short growth of GaAs, and then followed by the growth of another layer of InAs dots. The GaAs laterally surrounds, but does not bury, the InAs quantum dots. When the second layer of InAs dots is grown, they tend to self-organize directly on top of the exposed first layer of dots. We then grew a third layer of dots in the same manner. This effectively results in a pseudo-single layer of dots of the desired height which is then completely buried in GaAs. The goal is to develop structures that can be integrated into high operating temperature quantum dot infrared detectors (QDIPs) that have maximum sensitivity, robustness, and portability.

Type
Research Article
Copyright
Copyright © Materials Research Society 2004

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References

REFERENCES

1. Sarney, W. L., Little, J.W., and Svensson, S.P., 2002 Army Science Conference Proceedings, (2002).Google Scholar