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Quantum Mechanical Analysis Based on Perturbation Theory of CdSe/ZnS Quantum-Dot Light-Emission Propertiesopen access

Authors
Lee, HonyeonKim, Dongjin
Issue Date
Oct-2022
Publisher
MDPI
Keywords
quantum dots; CdSe/ZnS; core diameter; electric field intensity; energy levels; perturbation; quantum mechanics; numerical analysis
Citation
Nanomaterials, v.12, no.20
Journal Title
Nanomaterials
Volume
12
Number
20
URI
https://scholarworks.bwise.kr/sch/handle/2021.sw.sch/21784
DOI
10.3390/nano12203590
ISSN
2079-4991
Abstract
A simulation of quantum dot (QD) energy levels was designed to reproduce a quantum mechanical analytic method based on perturbation theory. A Schrodinger equation describing an electron-hole pair in a QD was solved, in consideration of the heterogeneity of the material parameters of the core and shell. The equation was solved numerically using single-particle basis sets to obtain the eigenstates and energies. This approach reproduced an analytic solution based on perturbation theory, while the calculation was performed using a numerical method. Owing to the effectiveness of the method, QD behavior according to the core diameter and external electric field intensity could be investigated reliably and easily. A 9.2 nm diameter CdSe/ZnS QD with a 4.2 nm diameter core and 2.5 nm thick shell emitted a 530 nm green light, according to an analysis of the effects of core diameter on energy levels. A 4 nm redshift at 5.4 x 10(5) V/cm electric field intensity was found while investigating the effects of external electric field on energy levels. These values agree well with previously reported experimental results. In addition to the energy levels and light emission wavelengths, the spatial distributions of wavefunctions were obtained. This analysis method is widely applicable for studying QD characteristics with varying structure and material compositions and should aid the development of high-performance QD technologies.
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