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<title>OPTIMISATION OF A SEMI-EMPIRICAL MODEL FOR ACCURATE DETERMINATION OF EXCITATION ENERGIES AND ABSORPTION SPECTRA OF QUANTUM DOTS</title>
<link>http://hdl.handle.net/123456789/1628</link>
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<dc:date>2026-04-04T06:31:58Z</dc:date>
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<title>OPTIMISATION OF A SEMI-EMPIRICAL MODEL FOR ACCURATE DETERMINATION OF EXCITATION ENERGIES AND ABSORPTION SPECTRA OF QUANTUM DOTS</title>
<link>http://hdl.handle.net/123456789/1629</link>
<description>OPTIMISATION OF A SEMI-EMPIRICAL MODEL FOR ACCURATE DETERMINATION OF EXCITATION ENERGIES AND ABSORPTION SPECTRA OF QUANTUM DOTS
OYENIYI, EZEKIEL
Quantum dots are nanomaterials that have several potential applications including the&#13;
production of efficient solar cells. Accurate theoretical studies of excitation energies&#13;
and absorption spectra of quantum dots are essential for harnessing such potentials. The&#13;
existing high-level ab-initio methods for obtaining excitation energies and absorption&#13;
spectra are computationally expensive for quantum dots. However, the semi-empirical&#13;
methods, including the Intermediate Neglect of Differential Overlap for spectroscopy&#13;
(INDO/s) model, are computationally cheap but are generally less accurate. Unlike some&#13;
ground-state semi-empirical methods, INDO/s has not attracted significant attention to&#13;
improving its level of accuracy because of some difficulties associated with optimising&#13;
its parameters. Therefore, this research was aimed at developing an improved INDO/s&#13;
model that will be computationally cheap and capable of producing accurate excitation&#13;
energies and absorption spectra for quantum dots.&#13;
A semi-empirical Hamiltonian based on INDO/s was parameterised with benchmark&#13;
excitation energies from Equation-Of-Motion Coupled-Cluster Singles Doubles (EOM CCSD) for Si, S, Cd and Zn diatomics at different interatomic separations. The Mean&#13;
Absolute Errors (MAE) were calculated for different sets of parameters and the opti mised set of parameters were those with the least MAEs. The optimised model was&#13;
called optimised for excitation Intermediate Neglect of Differential Overlap (oeINDO).&#13;
The oeINDO was validated by computing the MAEs of the oeINDO and INDO/s excita tion energies and absorption spectra maxima for Sin, Sn, Znn ,Cdn, (ZnS)n and (CdS)n (n&#13;
is the number of atoms) clusters. The validation was carried out relative to EOM-CCSD&#13;
for small clusters (n&lt;6) and Time-Dependent Density Functional Theory (TDDFT) for&#13;
large clusters (n ≥ 6). All computation times were recorded. The oeINDO was then&#13;
employed to predict the absorption spectra of Si, S, Zn, Cd, ZnS, and CdS quantum dots,&#13;
and the optimal size of CdS and ZnS quantum dots for solar cell applications.&#13;
The optimised parameters obtained for Si, S, Zn and Cd diatomics had MAEs 0.21, 0.19,&#13;
0.23,and 0.29 eV, respectively. The oeINDO produced excitation energies with MAEs&#13;
0.18, 0.56, 0.25, 0.22 eV for small Si, S, Zn, and Cd clusters, respectively, and MAEs&#13;
0.22, 0.36, 0.15, 0.24, 0.36 and 0.23 eV, for large Si, S, Zn, Cd, ZnS, and CdS clus i&#13;
ters, respectively. The unoptimised INDO/s however, produced excitation energies with&#13;
MAEs 1.23, 1.29, 0.70, and 1.23eV for small Si, S, Zn, Cd clusters, respectively, and&#13;
MAEs 1.05, 2.51, 2.49, 0.63, 0.76 and 1.04eV for large Si, S, Zn, Cd, ZnS, and CdS&#13;
clusters, respectively. Also, the MAEs of oeINDO and INDO/s absorption spectra max ima relative to those from TDDFT were 0.41eV and 1.49eV, respectively. The results&#13;
showed that oeINDO agreed reasonably well with the benchmarks and it was more ac curate than INDO/s. The time of computing with oeINDO (0.08 minutes) was found to&#13;
be less than a hundredth of the time utilised for EOM-CCSD (2946.51 minutes). The&#13;
oeINDO predicted a red-shift in the quantum dots absorption spectra with an increase&#13;
in dot size. It also predicted Si, Zn and Cd dots to be metallic. The 1.2 nm and 1.4 nm&#13;
spherical-like CdS and ZnS quantum dots, respectively, were found to be theoretically&#13;
optimal for solar cell applications.&#13;
The improved INDO/s was computationally cheap and capable of producing more accu rate excitation energies and absorption spectra for quantum dots.
</description>
<dc:date>2021-05-01T00:00:00Z</dc:date>
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