During the polymerization of aniline using copper sulphate, act as an oxidizing
agent, the in-situ synthesized Cu(I) ion catalyzed the cyclo-addition between
azides and alkynes. This work represents the merging of two steps, synthesis of the
catalyst and application of the catalyst, in a one pot reaction. The elimination of
the separate catalyst synthesis step is economic in terms of cost and time. As
aniline was used as one of the reactant components so there is no requirement to use
additional base for this reaction that further eliminates the cost of the process.
Again, the catalyst can be readily recovered by filtration and efficiently used for
the several sets of reactions without any significant loss of catalytic
activity.
Due to the light excitation, the valence band electron of the copper (I) sulfide quantum dot transfer to the conduction band and act as a scavenger of the terminal proton of the alkyne in the presence of organic azide with the formation of 1,4-disubstituted 1,2,3-triazoles, where the copper(I) species of Cu2S act as a catalyst for the reaction. The above cycloaddition reaction between alkyne and azide is commonly known as the Click reaction. In this study, experiments were carried out under the exposure of ultra-violate and daylight and also dark environment. According to the original recommendation for the Click reaction, the role of the base was also considered for this experiment. We found that the effect of conduction band electron is more efficient than the recommended conventional base mediated reaction procedure.
We report on a bottom up approach for the synthesis of a Pd-polypyrrole nanocomposite material. The composite material was characterized by means of different techniques, such as UV-vis, IR, and Raman spectroscopy, which offered information about the chemical structure of the polymer, whereas electron microscopy images provided information regarding the morphology of the composite material and the distribution of the metal particles in the polymer matrix. During the synthesis of the nanocomposite, the Pd nanoparticles act as a catalyst for a model proton-coupled electron transfer reaction. The Pd-polypyrrole nanocomposite material was also used as a catalyst for the electro-catalytic detection of tryptophan, a precursor for some neurotransmitters.
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