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Readily processed protonic ceramic fuel cells with high performance at low temperatures
by
Tong, Jianhua
, Shang, Meng
, Nikodemski, Stefan
, Ricote, Sandrine
, O'Hayre, Ryan
, Duan, Chuancheng
, Sanders, Michael
, Almansoori, Ali
in
ACTIVATION ENERGY
/ Cathodes
/ CERAMICS
/ Conduction cooling
/ Conductivity
/ Coolers
/ COOLING
/ COPPER OXIDE
/ Fabrication
/ FUEL CELLS
/ Fuel technology
/ Fuels
/ High temperature
/ Ions
/ Low temperature
/ Natural gas
/ Operating temperature
/ OXIDES
/ Oxygen
/ Temperature
2015
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Readily processed protonic ceramic fuel cells with high performance at low temperatures
by
Tong, Jianhua
, Shang, Meng
, Nikodemski, Stefan
, Ricote, Sandrine
, O'Hayre, Ryan
, Duan, Chuancheng
, Sanders, Michael
, Almansoori, Ali
in
ACTIVATION ENERGY
/ Cathodes
/ CERAMICS
/ Conduction cooling
/ Conductivity
/ Coolers
/ COOLING
/ COPPER OXIDE
/ Fabrication
/ FUEL CELLS
/ Fuel technology
/ Fuels
/ High temperature
/ Ions
/ Low temperature
/ Natural gas
/ Operating temperature
/ OXIDES
/ Oxygen
/ Temperature
2015
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Do you wish to request the book?
Readily processed protonic ceramic fuel cells with high performance at low temperatures
by
Tong, Jianhua
, Shang, Meng
, Nikodemski, Stefan
, Ricote, Sandrine
, O'Hayre, Ryan
, Duan, Chuancheng
, Sanders, Michael
, Almansoori, Ali
in
ACTIVATION ENERGY
/ Cathodes
/ CERAMICS
/ Conduction cooling
/ Conductivity
/ Coolers
/ COOLING
/ COPPER OXIDE
/ Fabrication
/ FUEL CELLS
/ Fuel technology
/ Fuels
/ High temperature
/ Ions
/ Low temperature
/ Natural gas
/ Operating temperature
/ OXIDES
/ Oxygen
/ Temperature
2015
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Readily processed protonic ceramic fuel cells with high performance at low temperatures
Journal Article
Readily processed protonic ceramic fuel cells with high performance at low temperatures
2015
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Overview
Because of the generally lower activation energy associated with proton conduction in oxides compared to oxygen ion conduction, protonic ceramic fuel cells (PCFCs) should be able to operate at lower temperatures than solid oxide fuel cells (250° to 550°C versus ≥600 °C) on hydrogen and hydrocarbon fuels if fabrication challenges and suitable cathodes can be developed. We fabricated the complete sandwich structure of PCFCs directly from raw precursor oxides with only one moderate-temperature processing step through the use of sintering agents such as copper oxide. We also developed a proton-, oxygen-ion–, and electron-hole–conducting PCFC-compatible cathode material, BaCo0.4Fe0.4Zr0.1Y0.1O3-δ (BCFZY0.1), that greatly improved oxygen reduction reaction kinetics at intermediate to low temperatures. We demonstrated high performance from five different types of PCFC button cells without degradation after 1400 hours. Power densities as high as 455 milliwatts per square centimeter at 500°C on H2 and 142 milliwatts per square centimeter on CH4 were achieved, and operation was possible even at 350°C.
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