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Journal ArticleDOI

A high-performance cathode for the next generation of solid-oxide fuel cells

Zongping Shao, +1 more
- 09 Sep 2004 - 
- Vol. 431, Iss: 7005, pp 170-173
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TLDR
BSCF is presented as a new cathode material for reduced-temperature SOFC operation and demonstrated that BSCF is ideally suited to ‘single-chamber’ fuel-cell operation, where anode and cathode reactions take place within the same physical chamber.
Abstract
Fuel cells directly and efficiently convert chemical energy to electrical energy. Of the various fuel cell types, solid-oxide fuel cells (SOFCs) combine the benefits of environmentally benign power generation with fuel flexibility. However, the necessity for high operating temperatures (800–1,000 °C) has resulted in high costs and materials compatibility challenges. As a consequence, significant effort has been devoted to the development of intermediate-temperature (500–700 °C) SOFCs. A key obstacle to reduced-temperature operation of SOFCs is the poor activity of traditional cathode materials for electrochemical reduction of oxygen in this temperature regime2. Here we present Ba_(0.5_Sr_(0.5)Co_(0.8)Fe_(0.2)O_(3-delta) (BSCF) as a new cathode material for reduced-temperature SOFC operation. BSCF, incorporated into a thin-film doped ceria fuel cell, exhibits high power densities (1,010 mW cm^(-2) and 402 mW cm^(-2) at 600 °C and 500 °C, respectively) when operated with humidified hydrogen as the fuel and air as the cathode gas. We further demonstrate that BSCF is ideally suited to 'single-chamber' fuel-cell operation, where anode and cathode reactions take place within the same physical chamber. The high power output of BSCF cathodes results from the high rate of oxygen diffusion through the material. By enabling operation at reduced temperatures, BSCF cathodes may result in widespread practical implementation of SOFCs.

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Citations
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Journal ArticleDOI

Electrochemical behavior of Ba0.5Sr0.5Co0.2−xZnxFe0.8O3−δ (x = 0–0.2) perovskite oxides for the cathode of solid oxide fuel cells

TL;DR: In this article, the authors compared the performance of zinc-doped barium strontium cobalt ferrite powders with various proportions of zinc and found that the lowest doping of 0.05 (BSCZF05) resulted in the highest electrical conductivity of 30.7
Journal ArticleDOI

Novel Ba0.5Sr0.5(Co0.8Fe0.2)1 − xTixO3 − δ (x = 0, 0.05, and 0.1) cathode materials for proton-conducting solid oxide fuel cells

TL;DR: In this paper, anode-supported single fuel cells using BaZr 0.2 O 3−−− δ as the electrolyte and BZCY-Ba 0.1 O 3 −−− ǫ-ǫ as the composite cathode were fabricated and tested.
Journal ArticleDOI

Effects of sintering temperature on properties of dual-phase oxygen permeable membranes

TL;DR: In this paper, the effects of sintering temperature on the properties of Ce(0.85)Sm( 0.15)O(3-delta)-Sm(0.,6)Sr(0,4)FeO(1.4) (SDC-SSF) dual-phase membranes were investigated.
Journal ArticleDOI

Fabrication and electrochemical performance of thin-film solid oxide fuel cells with large area nanostructured membranes

TL;DR: In this paper, the authors used a composite of silica aerogel and carbon fiber as the support, and showed that this material can be created in flow channels etched into the underside of a silicon chip bonded to the top of the SOFC membrane.
Journal ArticleDOI

Enhancement of oxygen permeation fluxes of La0.6Sr0.4CoO3−δ hollow fiber membrane via macrostructure modification and (La0.5Sr0.5)2CoO4+δ decoration

TL;DR: In this article, a perovskite hollow fiber membrane was used to obtain an effective oxygen separation from air at high temperature (above 700°C) for large scale application.
References
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Journal ArticleDOI

Materials for fuel-cell technologies

TL;DR: Recent progress in the search and development of innovative alternative materials in the development of fuel-cell stack is summarized.
Journal ArticleDOI

Appraisal of Ce1−yGdyO2−y/2 electrolytes for IT-SOFC operation at 500°C

TL;DR: In this article, the authors evaluated thermodynamic and electrical conductivity data to select the most appropriate electrolyte composition for IT-SOFC operation at 500°C and found that the Gd 3+ ion is the preferred dopant, compared to Sm 3+ and Y 3+, at this temperature.
Journal ArticleDOI

Investigation of the permeation behavior and stability of a Ba0.5Sr0.5Co0.8Fe0.2O3−δ oxygen membrane

TL;DR: In this article, a combined citrate-EDTA complexing method was used for the preparation of SCFO and Ba0.2O3-delta (BSCFO) oxides, and the results of O-2-TPD and XRD showed that the introduction of barium into SCFO could effectively suppress the oxidation of Co3+ and Fe3+ to higher valence states of Co4 and Fe4+ in the lattice and stabilize the perovskite structure under lower oxygen partial pressures.
Journal ArticleDOI

Recent Advances in Materials for Fuel Cells

TL;DR: In this paper, material requirements for SOFC and PEMFC stacks, together with an introductory section on materials technology for reformers, are discussed, and it is concluded that the introduction of alternative materials/processes that would enable SOFC stacks to operate at 150-200°C, and IT-SOFC stacks at 500-700°C would have a major impact on the successful commercialization of fuel cell technology.
Journal ArticleDOI

A low-operating-temperature solid oxide fuel cell in hydrocarbon-Air mixtures

TL;DR: The performance of a single-chamber solid oxide fuel cell was studied using a ceria-basedsolid electrolyte at temperatures below 773 kelvin, where the solid electrolyte functioned as a purely ionic conductor.
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