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Characterization and performance evaluation of Pt–Ru electrocatalysts supported on different carbon materials for direct methanol fuel cells
- Source :
- Digital.CSIC. Repositorio Institucional del CSIC, instname, Repositório Científico de Acesso Aberto de Portugal, Repositório Científico de Acesso Aberto de Portugal (RCAAP), instacron:RCAAP
- Publication Year :
- 2013
- Publisher :
- Elsevier BV, 2013.
-
Abstract
- 7 figuras, 3 tablas.-- © 2012. This manuscript version is made available under the CC-BY-NC-ND 4.0 license https://creativecommons.org/licenses/by-nc-nd/4.0/<br />The paper addresses the effect of the carbon support on the microstructure and performance of Pt–Ru-based anodes for direct methanol fuel cells (DMFC), based on the study of four electrodes with a carbon black functionalized with HNO3, a mesoporous carbon (CMK-3), a physical mixture of TiO2 and carbon black and a reference carbon thermally treated in helium atmosphere (HeTT). It is shown that CMK-3 hinders the growth of the electrocatalyst nanoparticles (2.7 nm) and improves their distribution on the support surface, whereas the oxidized surfaces of HNO3 carbon and TiO2+carbon lead to larger (4–4.5 nm), agglomerated particles, and the lowest electrochemical active areas (54 and 26 m2 g−1, in contrast with 90 m2 g−1 for CMK-3), as determined from CO stripping experiments. However, HNO3 and TiO2 are characterized by the lowest CO oxidation potential (0.4 V vs. RHE), thus suggesting higher CO tolerance for the se electrodes. Tests in DMFC configuration show that the three modified electrodes have clearly better performance than the reference HeTT. The highest power density attained with electrodes supported on carbon treated with HNO3 (65 mW cm−2/300 mA cm−2 at 90 °C) and the equally interesting performance of the TiO2-based electrodes (53 mW cm−2/300 mA cm−2), is a strong indication of the positive effect of the presence of oxygenated groups on the methanol oxidation reaction. The results are interpreted in order to identify separate microstructural (electrocatalyst particle size, porosity) and compositional (oxygenated surface groups, presence of oxide phase) effects on the electrode performance.<br />J.R.C. Salgado acknowledges the financial support of Portuguese Foundation for Science and Technology (FCT, Science 2008) which has also partly funded this work through project HyPEM (FCT/FEDER/QREN-COMPETE PTDC/CTM-CER/109843/2009). J.R.C. Salgado and M.F. Montemor acknowledge the European Institute of Innovation and Technology, and the KIC InnoEnergy NewMat project.
- Subjects :
- Pt-Ru electrocatalyst
Materials science
ALLOYS
Inorganic chemistry
Oxide
Energy Engineering and Power Technology
Nanoparticle
02 engineering and technology
OXIDATION
010402 general chemistry
Electrochemistry
Electrocatalyst
7. Clean energy
01 natural sciences
Redox
chemistry.chemical_compound
TiO2
Methanol fuel
Mesoporous carbon (CMK-3)
PLATINUM
Renewable Energy, Sustainability and the Environment
Oxygenated groups
Carbon black
Methanol oxidation
021001 nanoscience & nanotechnology
Condensed Matter Physics
ELECTROOXIDATION
PARTICLE-SIZE
3. Good health
0104 chemical sciences
XRD ANALYSIS
Fuel Technology
chemistry
ACID
CATALYST SUPPORT
Methanol
0210 nano-technology
DMFC
FUNCTIONALIZED CARBON
Subjects
Details
- ISSN :
- 03603199
- Volume :
- 38
- Database :
- OpenAIRE
- Journal :
- International Journal of Hydrogen Energy
- Accession number :
- edsair.doi.dedup.....15aa1aeba8aef6adb0417a90605c33cd
- Full Text :
- https://doi.org/10.1016/j.ijhydene.2012.10.079