4.6 Article

One-Pot Synthesis of Fe(III)-Polydopamine Complex Nanospheres: Morphological Evolution, Mechanism, and Application of the Carbonized Hybrid Nanospheres in Catalysis and Zn-Air Battery

Journal

LANGMUIR
Volume 32, Issue 36, Pages 9265-9275

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.langmuir.6b02331

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Funding

  1. Nanyang Technological University, Singapore

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We report one-pot synthesis of Fe(III)-polycloparnine (PDA) complex nanospheres, their structures, morphology evolution, and underlying mechanism. The complex nanospheres were synthesized by introducing ferric ions into, the reaction mixture used for polymerization of dopamine. It is verified that both the oxidative polymerization of dopamine and Fe(III) PDA complexation contribute to the polymerization process, in Which the ferric ions form coordination bonds with both oxygen and nitrogen, as indicated by X-ray absorption fine-structure spectroscopy. In the polymerization process, the morphology of the complex nanostructures is gradually transformed from sheetlike to spherical at the feed Fe(III)/dopamine molar ratio of 1/3. The final Size of the complex spheres is-much smaller than its neat PDA counterpart.. At higher feed Fe(III)/dopamine molar ratios, the final morphology of the polymerization products is sheetlike. The results suggest that-the formation of spherical morphology is likely to be driven by covalent polymerization-induced decrease of hydrophilic functional groups, which causes reself-assembly of the PDA oligomers to reduce surface area. We also, demonstrate that this one-pot synthesis route for-hybrid nanospheres enables the facile construction of carbonized PDA (C-PDA) nanospheres uniformly embedded with Fe3O4 nanoparticles of only 3-5 nm in size. The C-PDA/Fe3O4 nanospheres exhibit catalytic activity toward oxygen reduction reaction and deliver a stable discharge voltage for over 200 h when utilized as the cathode in a primary Zn-air battery and are also good recyclable catalyst supports.

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