Strategies for Lowering Solid Oxide Fuel Cells Operating Temperature

被引:152
作者
Tarancon, Albert [1 ,2 ]
机构
[1] CSIC, IMB CNM, Barcelona 08193, Spain
[2] Catalonia Inst Energy Res, Dept Adv Mat Energy Applicat, Barcelona 08019, Spain
关键词
SOFC; IT-SOFC; layered cathode; electrolyte; DEFECT CLUSTER FORMATION; OXYGEN-ION TRANSPORT; ELECTRICAL-CONDUCTIVITY; ACTIVATION-ENERGY; SURFACE EXCHANGE; NANO-IONICS; THIN-FILMS; DIFFUSION; ELECTROLYTE; CONDUCTORS;
D O I
10.3390/en20401130
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Lowering the operating temperature of solid oxide fuel cells (SOFCs) to the intermediate range (500-700 degrees C) has become one of the main SOFC research goals. High operating temperatures put numerous requirements on materials selection and on secondary units, limiting the commercial development of SOFCs. The present review first focuses on the main effects of reducing the operating temperature in terms of materials stability, thermo-mechanical mismatch, thermal management and efficiency. After a brief survey of the state-of-the-art materials for SOFCs, attention is focused on emerging oxide-ionic conductors with high conductivity in the intermediate range of temperatures with an introductory section on materials technology for reducing the electrolyte thickness. Finally, recent advances in cathode materials based on layered mixed ionic-electronic conductors are highlighted because the decreasing temperature converts the cathode into the major source of electrical losses for the whole SOFC system. It is concluded that the introduction of alternative materials that would enable solid oxide fuel cells to operate in the intermediate range of temperatures would have a major impact on the commercialization of fuel cell technology.
引用
收藏
页码:1130 / 1150
页数:21
相关论文
共 105 条
[1]   Mechanism and kinetics of oxygen reduction on porous La1-xSrxCoO3-δ electrodes [J].
Adler, SB .
SOLID STATE IONICS, 1998, 111 (1-2) :125-134
[2]   Electrode kinetics of porous mixed-conducting oxygen electrodes [J].
Adler, SB ;
Lane, JA ;
Steele, BCH .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1996, 143 (11) :3554-3564
[3]   Thermoelectric power and electrical conductivity of strontium-doped lanthanum manganite [J].
Ahlgren, EO ;
Poulsen, FW .
SOLID STATE IONICS, 1996, 86-8 :1173-1178
[4]  
[Anonymous], 2004, FUEL CELL HDB, VSeventh
[5]  
Appleby A.J., 1989, FUEL CELL HDB
[6]   Interaction between chromia forming alloy interconnects and air electrode of solid oxide fuel cells [J].
Badwal, SPS ;
Deller, R ;
Foger, K ;
Ramprakash, Y ;
Zhang, JP .
SOLID STATE IONICS, 1997, 99 (3-4) :297-310
[7]  
Baur E, 1937, Z ELKTROCHEM ANGEW P, V43, P727
[8]   A micro-solid oxide fuel cell system as battery replacement [J].
Bieberle-Huetter, Anja ;
Beckel, Daniel ;
Infortuna, Anna ;
Muecke, Ulrich P. ;
Rupp, Jennifer L. M. ;
Gauckler, Ludwig J. ;
Rey-Mermet, Samuel ;
Muralt, Paul ;
Bieri, Nicole R. ;
Hotz, Nico ;
Stutz, Michael J. ;
Poulikakos, Dimos ;
Heeb, Peter ;
Mueller, Patrik ;
Bernard, Andr ;
Gmuer, Roman ;
Hocker, Thomas .
JOURNAL OF POWER SOURCES, 2008, 177 (01) :123-130
[9]   Worldwide SOFC technology overview and benchmark [J].
Blum, L ;
Meulenberg, WA ;
Nabielek, H ;
Steinberger-Wilckens, R .
INTERNATIONAL JOURNAL OF APPLIED CERAMIC TECHNOLOGY, 2005, 2 (06) :482-492
[10]   Oxygen diffusion and transport properties in non-stoichiometric Ln2-xNiO4+δ oxides [J].
Boehm, E ;
Bassat, JM ;
Dordor, P ;
Mauvy, F ;
Grenier, JC ;
Stevens, P .
SOLID STATE IONICS, 2005, 176 (37-38) :2717-2725