<P>With contributions from top international experts from both industry and academia, <STRONG>Nano-Semiconductors: Devices and Technology</STRONG> is a must-read for anyone with a serious interest in future nanofabrication technologies. </P> <P>Taking into account the semiconductor industryβs transi
Quantum Semiconductor Devices and Technologies
β Scribed by P. Hadley, J. E. Mooij (auth.), T. P. Pearsall (eds.)
- Publisher
- Springer US
- Year
- 2000
- Tongue
- English
- Leaves
- 270
- Series
- Electronic Materials Series 6
- Edition
- 1
- Category
- Library
No coin nor oath required. For personal study only.
β¦ Synopsis
stacked QD structure and is useful for examining the possibility of allΒ optical measurement of stacked QD layers. Optical absorption spectra of self-assembled QDs has been little reported, and further investigation in necessary to study hole-burning memory. 2.5 Summary This chapter describes recent advances in quantum dot fabrication techΒ nologies, focusing on our self-formed quantum dot technologies including TSR quantum dots and SK-mode self-assembled quantum dots. As is described in this chapter, there are many possible device applications such as quantum dot tunneling memory devices, quantum dot fioating-dot gate FETs, quantum dot lasers, and quantum dot hole-burning memory devices. The quantum dot laser applications seem to be the most practicable among these applications. However, many problems remain to be solved before even this application becomes practical. The most important issue is to of self-assembled quantum dots more preΒ control the size and position cisely, with an accuracy on an atomic scale. The confinement must be enough to keep the separation energy between quantized energy levels high enough to get high-temperature characteristics. The lasing oscillation frequency should be fixed at 1.3 f.lITl or 1.5 f.lITl for optical communication. Phonon bottleneck problems should be solved by the optimization of device structures. Fortunately, there is much activity in the area of quantum dot lasers and, therefore, many breakthroughs will be made, along with the exploration of other new application areas.
β¦ Table of Contents
Front Matter....Pages i-vi
Quantum nanocircuits: chips of the future?....Pages 1-18
Self-formed quantum dot structures and their potential device applications....Pages 19-95
Lithography and patterning for nanostructure fabrication....Pages 97-138
The use of MOVPE to produce quantum structured semiconductors....Pages 139-181
Growth, characterization, and applications of self-assembled InGaAs quantum dots....Pages 183-231
Structural characterization of self-organized Ge islands....Pages 233-258
Back Matter....Pages 259-266
β¦ Subjects
Optical and Electronic Materials; Characterization and Evaluation of Materials
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