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Department of Energy Science and Engineering
Advanced Energy Materials Laboratory
1. Journal Articles
Preparation and characterization of palladium-nickel on graphene oxide support as anode catalyst for alkaline direct ethanol fuel cell
Tan, Joshua L.
;
De Jesus, Arvee M.
;
Chua, Stephanie L.
;
Sanetuntikul, Jakkid
;
Shanmugam, Sangaraju
;
Tongol, Bernard John. V.
;
Kim, Hasuck
Department of Energy Science and Engineering
Advanced Energy Materials Laboratory
1. Journal Articles
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Title
Preparation and characterization of palladium-nickel on graphene oxide support as anode catalyst for alkaline direct ethanol fuel cell
Issued Date
2017-02
Citation
Applied Catalysis A: General, v.531, pp.29 - 35
Type
Article
Author Keywords
PdNi
;
Graphene oxide
;
Ethanol oxidation reaction
;
Electrocatalysis
;
Direct ethanol fuel cell
;
Anode catalyst
Keywords
ALCOHOL OXIDATION
;
Alkaline Fuel Cells
;
Anion Exchange Membrane
;
Anode Catalyst
;
Anode Catalysts
;
Anodes
;
Carbon
;
Carbon Black
;
CARBON NANOTUBES
;
Catalyst Activity
;
Catalyst Supports
;
CATALYSTS
;
Catalytic Oxidation
;
Chronoamperometry
;
Cyclic Voltammetry
;
Direct Ethanol Fuel Cell
;
Direct Ethanol Fuel Cells (DEFC)
;
Electrocatalysis
;
ELECTROCATALYTIC ACTIVITY
;
Electrocatalytic Activity and Stability
;
Electrodes
;
ETHANOL
;
Ethanol Fuels
;
Ethanol Oxidation Reaction
;
Exfoliated Graphene
;
FACILE SYNTHESIS
;
FORMIC-ACID OXIDATION
;
Fuel Cells
;
Graphene
;
Graphene Oxide
;
Graphene Oxides
;
High Resolution Transmission Electron Microscopy
;
IMPROVED PERFORMANCE
;
Ion Exchange Membranes
;
Maximum Power Density
;
METHANOL ELECTROOXIDATION
;
Nickel
;
PART II
;
Particle Size
;
PD
;
PdNi
;
PULSED ELECTRODEPOSITION
;
Transmission Electron Microscopy
;
X Ray Photoelectron Spectroscopy
ISSN
0926-860X
Abstract
A catalyst consisting of palladium – nickel supported on exfoliated graphene oxide (PdNi/EGO) composite was synthesized. The catalytic activity was tested for ethanol oxidation reaction (EOR) in half-cell using cyclic voltammetry (CV) and subsequently it was used as an anode material in a direct ethanol fuel cell (DEFC). Transmission Electron Microscopy showed the catalyst particles are uniformly dispersed on the surface of graphene oxide with the particle size ranging from 3 to 6 nm. X-ray Photoelectron Spectroscopy analysis of catalysts revealed that the surface consisting of mostly Pd, PdO, Ni(OH)2, and NiOOH. CV and chronoamperometry measurements demonstrated higher electrocatalytic activity and stability for PdNi/EGO in the alkaline medium than the unsupported PdNi and carbon black-supported PdNi (PdNi/C) catalysts. A single cell anion exchange membrane DEFC constructed with a PdNi/EGO anode catalyst showed a maximum power density of 16.6 m Wcm−2 at 50 °C, which is higher than the unsupported PdNi, PdNi/C, and commercial Pd/C catalyst. © 2016 Elsevier B.V.
URI
http://hdl.handle.net/20.500.11750/2041
DOI
10.1016/j.apcata.2016.11.034
Publisher
Elsevier
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