Article detail · 2023
Position-Dependent Effective Mass and Asymmetry Effects on the Electronic and Optical Properties of Quantum Wells with Improved Rosen–Morse Potential
Journal
Condenced Matter MDPI AGISSN 2352-2143
The ISSN points to another catalog journal; the name is from the YÖKSİS record.
- Year
- 2023
- Type
- article
Data source split
- YÖKSİS YÖKSİS article record
- YÖKSİS venue Condenced Matter MDPI AG
- Catalog match (ISSN) Computational Condensed Matter
- OpenAlex OpenAlex enrichment (abstract, citations, topics)
Abstract
OpenAlex · English
In this study, we investigated, for the first time, the effects of the spatially varying effective mass, asymmetry parameter, and well width on the electronic and optical properties of a quantum well which has an improved Rosen–Morse potential. Calculations were made within the framework of the effective mass and parabolic band approximations. We have used the diagonalization method by choosing a wave function based on the trigonometric orthonormal functions to find eigenvalues and eigenfunctions of the electron confined within the improved Rosen–Morse potential. Our results show that the position dependence mass, asymmetry, and confinement parameters cause significant changes in the electronic and optical properties of the structure we focus on since these effects create a significant increase in electron energies and a blue shift in the absorption spectrum. The increase in energy levels enables the development of optoelectronic devices that can operate at wider wavelengths and absorb higher-energy photons. Through an appropriate choice of parameters, the Rosen–Morse potential offers, among many advantages, the possibility of simulating heterostructures close to surfaces exposed to air or vacuum, thus giving the possibility of substantially enriching the allowed optical transitions given the breaking of the system´s symmetries. Similarly, the one-dimensional Rosen–Morse potential model proposed here can be extended to one- and zero-dimensional structures such as core/shell quantum well wires and quantum dots. This offers potential advancements in fields such as optical communication, imaging technology, and solar cells.
Topics
Citations
OpenAlex cited_by_count. Not a WoS or Scopus citation count; those sources have no separate column here.
14 citations
OpenAlex cited_by_count (cache / database)
8 publications in the local catalog that cite this work (OpenAlex reference match; not the full global list).
- Numerical study of binding energies and optical responses of a symmetric modulation-doped GaN/In0.2Ga0.8N/GaN single quantum well: the role of electric field and donor impurity 2025
- Numerical study of binding energies and optical responses of a symmetric modulation-doped GaN/In0.2Ga0.8N/GaN single quantum well: the role of electric field and donor impurity 2025
- Numerical study of binding energies and optical responses of a symmetric modulation-doped GaN/In0.2Ga0.8N/GaN single quantum well: the role of electric field and donor impurity 2025
- Roles of position dependent mass, pressure and temperature on the nonlinear optical responses of double delta doped GaAs quantum wells 2025
- Tunable Second-Harmonic Generation in Asymmetric Triple-Gaussian Quantum Wells Reshaped by an Intense Laser Field 2026
- Effect of semi-infinite confinement on forbidden radiative transitions in an oscillator-shaped quantum well 2026
- Roles of position dependent mass, pressure and temperature on the nonlinear optical responses of double delta doped GaAs quantum wells 2025
- Roles of position dependent mass, pressure and temperature on the nonlinear optical responses of double delta doped GaAs quantum wells 2025