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Electrochemical Approach for Analyzing Electrolyte Transport Properties and Their Effect on Protonic Ceramic Fuel Cell Performance
dc.creator | Danilov N., Lyagaeva J., Vdovin G., Medvedev D., Demin A., Tsiakaras P. | en |
dc.date.accessioned | 2023-01-31T07:50:20Z | |
dc.date.available | 2023-01-31T07:50:20Z | |
dc.date.issued | 2017 | |
dc.identifier | 10.1021/acsami.7b07472 | |
dc.identifier.issn | 19448244 | |
dc.identifier.uri | http://hdl.handle.net/11615/73064 | |
dc.description.abstract | The design and development of highly conductive materials with wide electrolytic domain boundaries are among the most promising means of enabling solid oxide fuel cells (SOFCs) to demonstrate outstanding performance across low- and intermediate-temperature ranges. While reducing the thickness of the electrolyte is an extensively studied means for diminishing the total resistance of SOFCs, approaches involving an improvement in the transport behavior of the electrolyte membranes have been less-investigated. In the present work, a strategy for analyzing the electrolyte properties and their effect on SOFC output characteristics is proposed. To this purpose, a SOFC based on a recently developed BaCe0.5Zr0.3Dy0.2O3-δ proton-conducting ceramic material was fabricated and tested. The basis of the strategy consists of the use of traditional SOFC testing techniques combined with the current interruption method and electromotive force measurements with a modified polarization-correction assessment. This allows one to determine simultaneously such important parameters as maximal power density; ohmic and polarization resistances; average ion transport numbers; and total, ionic, and electronic film conductivities and their activation energies. The proposed experimental procedure is expected to expand both fundamental and applied basics that could be further adopted to improve the technology of electrochemical devices based on proton-conducting electrolytes. © 2017 American Chemical Society. | en |
dc.language.iso | en | en |
dc.source | ACS Applied Materials and Interfaces | en |
dc.source.uri | https://www.scopus.com/inward/record.uri?eid=2-s2.0-85027404430&doi=10.1021%2facsami.7b07472&partnerID=40&md5=ba60f707dc3a19694b7572871d39c66a | |
dc.subject | Activation energy | en |
dc.subject | Ceramic materials | en |
dc.subject | Conductive materials | en |
dc.subject | Electrolytes | en |
dc.subject | Electromotive force | en |
dc.subject | Force measurement | en |
dc.subject | Fuel cells | en |
dc.subject | Polarization | en |
dc.subject | Protonic ceramic fuel cells (PCFC) | en |
dc.subject | Solid oxide fuel cells (SOFC) | en |
dc.subject | Testing | en |
dc.subject | Current interruption | en |
dc.subject | Intermediate temperatures | en |
dc.subject | Polarization corrections | en |
dc.subject | Polarization resistances | en |
dc.subject | Proton conducting ceramic | en |
dc.subject | Proton-conducting electrolyte | en |
dc.subject | Protonic conductors | en |
dc.subject | Solid oxide fuel cells (SOFCs) | en |
dc.subject | Solid electrolytes | en |
dc.subject | American Chemical Society | en |
dc.title | Electrochemical Approach for Analyzing Electrolyte Transport Properties and Their Effect on Protonic Ceramic Fuel Cell Performance | en |
dc.type | journalArticle | en |
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