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Also an increase of the quantum parameter leads to decrease (increase) of the fast compressive (rarefactive) IA solitons width whereas the amplitude of IA solitons remains unchanged.
The intensity increase may be caused by the depth increase of the quantum well for a higher Sn content in the GeSiSn solid solution layer.
A further increase of the quantum efficiency and energy transfer efficiency is possible by applying an undoped inorganic shell as a protective layer.
Growth of the mobility with the increase of the quantum well composition x could be explained by a lower concentration of heavy holes at the same value of the electron concentration.
Further separation of Flu aggregates by dispersion of less fluorescent co-intercalated LDHs in PLA and LDPE resulted in an increase of the quantum yield, with better results for PLA-based nanocomposites in agreement with a better morphology.
From the figure, it is seen that the resonance peak position shifts towards higher energies with decreasing quantum size L. The main reason for this behavior is the increase of the quantum confinement with decreasing L. Also, the energy difference between two electronic states increases by decreasing L. Therefore, the resonance peak position shifts towards higher energies.
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Authors in [18, 19] also reported about a significant increase of the PL quantum yield.
In the test systems, we demonstrate an increase of the external quantum efficiency upon orientation.
On the other hand, the modification of the ancillary ligand and substituent in the quinoline ring caused the increase of the photoluminescence quantum yields.
In the test systems an increase of the external quantum efficiency by a factor of about 1.5 to 2 took place upon orientation of the polar molecules.
The hole transport resistivity is decreased from 6.8 × 104 to 1.3 × 104 Ω m via delocalizing the introduced bands, leading to an evident increase of the internal quantum efficiency from 5%to20%0% at the visible-light region of 450 550 nm.
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