Quantum Wires Formed from Coupled InAs/GaAs Strained Quantum Dots
- 20 April 1998
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review Letters
- Vol. 80 (16) , 3579-3581
- https://doi.org/10.1103/physrevlett.80.3579
Abstract
The electronic structure of an infinite 1D array of vertically coupled InAs/GaAs strained quantum dots is calculated using an eight-band strain-dependent Hamiltonian. The coupled dots form a unique quantum wire structure in which the miniband widths and effective masses are controlled by the distance between the islands, . The miniband structure is calculated as a function of , and it is shown that for the miniband is narrower than the optical phonon energy, while the gap between the first and second minibands is greater than the optical phonon energy. This leads to decreased optical phonon scattering. These miniband properties are also ideal for Bloch oscillations.
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This publication has 13 references indexed in Scilit:
- Eight-band calculations of strained InAs/GaAs quantum dots compared with one-, four-, and six-band approximationsPhysical Review B, 1998
- Electronic structure of strainedquantum dotsPhysical Review B, 1997
- Lateral Positioning and Vertical Stacking of InAs Islands on GaAs Substrates: Designing Quantum Transport DevicesJapanese Journal of Applied Physics, 1997
- Electroluminescence in vertically aligned quantum dot multilayer light-emitting diodes fabricating by growth-induced islandingApplied Physics Letters, 1996
- Stacking InAs islands and GaAs layers: Strongly modulated one-dimensional electronic systemsJournal of Applied Physics, 1996
- Electronic structure of InAs/GaAs self-assembled quantum dotsPhysical Review B, 1996
- Vertically Aligned and Electronically Coupled Growth Induced InAs Islands in GaAsPhysical Review Letters, 1996
- Vertically Self-Organized InAs Quantum Box Islands on GaAs(100)Physical Review Letters, 1995
- Analytical formalism for determining quantum-wire and quantum-dot band structure in the multiband envelope-function approximationPhysical Review B, 1990
- Quantum Wire Superlattices and Coupled Quantum Box Arrays: A Novel Method to Suppress Optical Phonon Scattering in SemiconductorsJapanese Journal of Applied Physics, 1989