Effects of electric field on the electronic structure and optical properties of quantum rods with wurtzite structure
- 16 October 2003
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review B
- Vol. 68 (16) , 165316
- https://doi.org/10.1103/physrevb.68.165316
Abstract
The Hamiltonian of wurtzite quantum rods with an ellipsoidal boundary under electric field is given after a coordinate transformation. The electronic structure and optical properties are studied in the framework of the effective-mass envelope-function theory. The quantum-confined Stark effect is illustrated by studying the change of the electronic structures under electric field. The transition probabilities between the electron and hole states decrease sharply with the increase of the electric field. The polarization factor increases with the increase of the electric field. Effects of the electric field and the shape of the rods on the exciton effect are also investigated. The exciton binding energy decreases with the increase of both the electric field and the aspect ratio. In the end, considering the exciton binding energy, we calculated the band gap variation of size- and shape-controlled colloidal CdSe quantum rods, which is in good agreement with experimental results.Keywords
This publication has 14 references indexed in Scilit:
- Electronic structure and optical properties of quantum rods with wurtzite structurePhysical Review B, 2002
- Size-Dependent Tunneling and Optical Spectroscopy of CdSe Quantum RodsPhysical Review Letters, 2002
- Band Gap Variation of Size- and Shape-Controlled Colloidal CdSe Quantum RodsNano Letters, 2001
- Linearly Polarized Emission from Colloidal Semiconductor Quantum RodsScience, 2001
- Quantum-confined Stark effects of InAs/GaAs self-assembled quantum dotJournal of Applied Physics, 2000
- Optical Gain and Stimulated Emission in Nanocrystal Quantum DotsScience, 2000
- Electronic structure of quantum spheres with wurtzite structurePhysical Review B, 1999
- Semiconductor Nanocrystals as Fluorescent Biological LabelsScience, 1998
- Quantum Dot Bioconjugates for Ultrasensitive Nonisotopic DetectionScience, 1998
- The effects of electric field on the electronic structure of a semiconductor quantum dotJournal of Applied Physics, 1998