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Platinum Electrodeposition at Unsupported Electrochemically Reduced Nanographene Oxide for Enhanced Ammonia Oxidation
Author(s) -
Lisandro Cunci,
Carlos A. Vélez,
Iván Uribe Pérez,
Amal Suleiman,
Eduardo Larios,
Miguel JoséYacamán,
James J. Watkins,
Carlos R. Cabrera
Publication year - 2014
Publication title -
acs applied materials and interfaces
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.535
H-Index - 228
eISSN - 1944-8252
pISSN - 1944-8244
DOI - 10.1021/am4052552
Subject(s) - graphene , materials science , high resolution transmission electron microscopy , oxide , platinum , cyclic voltammetry , graphene oxide paper , chemical engineering , electrocatalyst , electrochemistry , electrode , platinum nanoparticles , nanotechnology , inorganic chemistry , transmission electron microscopy , catalysis , metallurgy , organic chemistry , chemistry , engineering
The electrochemical reduction of highly oxidized unsupported graphene oxide nanosheets and its platinum electrodeposition was done by the rotating disk slurry electrode technique. Avoiding the use of a solid electrode, graphene oxide was electrochemically reduced in a slurry solution with a scalable process without the use of a reducing agent. Graphene oxide nanosheets were synthesized from carbon platelet nanofibers to obtain highly hydrophilic layers of less than 250 nm in width. The graphene oxide and electrochemically reduced graphene oxide/Pt (erGOx/Pt) hybrid materials were characterized through different spectroscopy and microscopy techniques. Pt nanoparticles with 100 facets, clusters, and atoms at erGOx were identified by high resolution transmission electron microscopy (HRTEM). Cyclic voltammetry was used to characterize the electrocatalytic activity of the highly dispersed erGOx/Pt hybrid material toward the oxidation of ammonia, which showed a 5-fold current density increase when compared with commercially available Vulcan/Pt 20%. This is in agreement with having Pt (100) facets present in the HRTEM images of the erGOx/Pt material.

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