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Copolymers of aniline and ortho/meta-amino benzoic acid were synthesized by chemical polymerization using an inverse emulsion pathway.
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PTSA-doped TANI/Fe3O4 nanocomposites have been prepared by oxidative chemical polymerization using APS as an oxidant.
Polyaniline was synthesized (conventional route in aqueous medium using HCl as dopant ion) by chemical polymerization of aniline using ammonium persulfate as an oxidant (Huang and Kaner 2004).
Congo red doped poly 3,4-ethylene dioxythiopoly 3,4-ethylene granular morphology andioxythiophenehannels withsynthesized by chemicaloosedative polymerization usingranularred as dopant and surfactant, and the formorphologyhandsomef its morphology was clearrmed by means of fourier transform infrared spechannels-ray diffraction, UV–Vis absorption spectrum and scanning electron microscope.
Xin et al. [16] prepared poly aniline-co-pyrrole) nanocompoly aniline-co-pyrroleation poly aniline-co-pyrroleonanocompositede hexahydrate (FeCl3·H2O) as an oxidant and sodium dodecylbynzenesulfonate (SDBS) as a surfachemical
The composite powder of V2O5 and polypyrrole (V2O5/PPy) was prepared by chemical polymerization of pyrrole using V2O5 powder dispersed in an acidic solution as an oxidizing agent.
The MnO2@PPy hybrid micromaterials were prepared by chemical polymerization of pyrrole on the MnO2 surface using sodium benzenesulfonate (BSNa) as surfactant and FeCl3 as oxidant.
Electroactive polypyrrole Fe2O3 nanocomposite materials were prepared by chemical polymerization of pyrrole in aqueous Fe2O3 colloidal solution, using FeCl3 as oxidant and tosylate anions (TS) as doping agent.
To establish the desired hybrid structure, pyrrole monomers were polymerized on hydrothermally grown Al doped ZnO nanorods by chemical polymerization.
The product obtained by chemical polymerization exhibits a high thermal stability and narrow molecular weight distribution.
MnO2@PPy core-shell micromaterials are prepared by chemical polymerization of pyrrole on the MnO2 surface.
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