Title :
Interband Absorption Coefficients of the Electronic States Calculated for CdZnS Nanocrystals Grown by Sol-Gel Method
Author :
Sharkey, J. Joseph ; Peter, A. John ; Lee, Chang Woo
Author_Institution :
Central Electrochem. Res. Inst., Karaikudi, India
Abstract :
CdxZn1-xS nanocrystals have been prepared by sol-gel method with different content of Cd, and their optical studies are characterized by taking transmittance spectra experimentally. We have theoretically calculated the eigen energy values of the confined electron in ground and excited states as a function of dot radius of the CdZnS quantum dot with various values of Cd content. The optical band gap investigated by UV transmission spectra is compared with the interband emission energy computed theoretically. We have calculated the oscillator strengths for the transitions and the linear optical absorption coefficients as a function of incident photon energy for 1s-1p and 1p-1d transitions. The main results show that the confined energies and the transition energies between the excited levels are significant for smaller dots. Nonlinearity band gap with the increase in Cd content is observed for smaller dot radius of the CdZnS quantum dot in the strong confinement region, and the magnitude of the absorption spectra increases for the transitions between the higher excited levels.
Keywords :
II-VI semiconductors; absorption coefficients; cadmium compounds; eigenvalues and eigenfunctions; energy gap; ground states; nanofabrication; nanostructured materials; oscillator strengths; semiconductor growth; semiconductor quantum dots; sol-gel processing; ultraviolet spectra; visible spectra; zinc compounds; CdZnS; UV transmission spectra; absorption spectra; confined electron; eigen energy values; electronic states; excited levels; excited states; ground states; incident photon energy; interband absorption coefficients; interband emission energy; linear optical absorption coefficients; nanocrystals; nonlinearity band gap; optical band gap; optical property; oscillator strengths; quantum dot; sol-gel method; transition energies; transmittance spectra; Absorption; Excitons; Nanocrystals; Oscillators; Photonic band gap; Quantum dots; Nanopowders; quantum dot; sol-gel method;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2011.2161604