The Rates of Charge Separation and Energy Destructive Charge Recombination Processes Within an Organic Dyad in Presence of Metal-Semiconductor Core Shell Nanocomposites
Steady state and time resolved spectroscopic measurements were made at the ambient temperature on an organic dyad, 1-(4-Chloro-phenyl)-3-(4-methoxy-naphthalen-1-yl)-propenone (MNCA), where the donor 1-methoxynaphthalene (1 MNT) is connected with the acceptor p-chloroacetophenone (PCA) by an unsaturated olefinic bond, in presence of [email protected]2 nanoparticles. Time resolved fluorescence and absorption measurements reveal that the rate parameters associated with charge separation, k CS, within the dyad increases whereas charge recombination rate k CR reduces significantly when the surrounding medium is changed from only chloroform to mixture of chloroform and [email protected]2 (noble metal-semiconductor) nanocomposites. The observed results indicate that the dyad being combined with core–shell nanocomposites may form organic–inorganic nanocomposite system useful for developing light energy conversion devices. Use of metal-semiconductor nanoparticles may provide thus new ways to modulate charge recombination processes in light energy conversion devices. From comparison with the results obtained in our earlier investigations with only TiO2 nanoparticles, it is inferred that much improved version of light energy conversion device, where charge-separated species could be protected for longer period of time of the order of millisecond, could be designed by using metal-semiconductor core–shell nanocomposites rather than semiconductor nanoparticles only.
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Document Type: Research Article
Publication date: 2012-01-01
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