Shape-Independent Scaling of Excitonic Confinement in Realistic Quantum Wires
- 5 May 1997
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review Letters
- Vol. 78 (18) , 3527-3530
- https://doi.org/10.1103/physrevlett.78.3527
Abstract
The scaling of exciton binding energy in semiconductor quantum wires is investigated theoretically through a nonvariational, fully three-dimensional approach for a wide set of realistic state-of-the-art structures. We find that in the strong confinement limit the same potential-to-kinetic energy ratio holds for quite different wire cross sections and compositions. As a consequence, a universal (shape- and composition-independent) parameter can be identified that governs the scaling of the binding energy with size. Previous indications that the shape of the wire cross section may have important effects on exciton binding are discussed in the light of the present results.Keywords
All Related Versions
This publication has 17 references indexed in Scilit:
- Enhanced Binding Energy of One-Dimensional Excitons in Quantum WiresPhysical Review Letters, 1996
- Magneto-optical determination of exciton binding energies in quantum-wire superlatticesPhysical Review B, 1996
- Laterally Squeezed Excitonic Wave Function in Quantum WiresPhysical Review Letters, 1995
- Exciton Binding Energy in GaAs V-Shaped Quantum WiresPhysical Review Letters, 1994
- Lasing from excitons in quantum wiresPhysical Review Letters, 1993
- Photoluminescence spectra and anisotropic energy shift of GaAs quantum wires in high magnetic fieldsPhysical Review Letters, 1992
- Two-photon spectroscopy of MgO:Physical Review B, 1991
- Exciton binding energy in quantum-well wiresPhysical Review B, 1987
- One-Dimensional Hydrogen AtomAmerican Journal of Physics, 1959
- Theory of fine structure on the absorption edge in semiconductorsJournal of Physics and Chemistry of Solids, 1959