Patent classifications
H01M8/0204
Solid oxide fuel cell, fuel cell stack device, fuel cell module, and fuel cell apparatus
A solid oxide fuel cell having an electric power generating element unit that is configured by sandwiching a solid electrolyte layer between a fuel electrode layer and an oxygen electrode layer with a pore that is present in the solid electrolyte layer and is covered with a sealing material. In addition, a pore that is present in an interconnector, which is electrically connected to the fuel electrode layer or the oxygen electrode layer, is covered with the sealing material. Consequently, the solid oxide fuel cell is capable of easily preventing gas leakage.
FUEL CELL DEVICE AND SYSTEM
Fuel cell devices and fuel cell systems are provided. The fuel cell devices may include one or more active layers containing active cells that are connected electrically in series. The active cells include anodes and cathodes spaced apart along the length, with each including a porous portion and a non-porous conductor portion. The active cells reside between opposing porous anode and cathode portions. The electrical series connections between active cells are made between the non-porous conductor portions. In certain embodiments, the electrical series connections are made by direct contact between the non-porous conductor portions. In certain embodiments, the electrical series connections are made by non-porous conductive vias or elements that extend through an intervening support structure that separates the non-porous anode conductor portions from the non-porous cathode conductor portions.
FUEL CELL DEVICE AND SYSTEM
Fuel cell devices and fuel cell systems are provided. The fuel cell devices may include one or more active layers containing active cells that are connected electrically in series. The active cells include anodes and cathodes spaced apart along the length, with each including a porous portion and a non-porous conductor portion. The active cells reside between opposing porous anode and cathode portions. The electrical series connections between active cells are made between the non-porous conductor portions. In certain embodiments, the electrical series connections are made by direct contact between the non-porous conductor portions. In certain embodiments, the electrical series connections are made by non-porous conductive vias or elements that extend through an intervening support structure that separates the non-porous anode conductor portions from the non-porous cathode conductor portions.
Stable electrolyte for lithium air battery and lithium air battery including the same
Provided are electrochemical cells that include a compound having the general formula ##STR00001##
wherein R.sub.1 is moiety associated with a lithium ion, X.sub.1 and X.sub.3 are unsubstituted methylene moieties, X.sub.2 and X.sub.4 are each independently selected from a substituted or unsubstituted methylene moiety, X is a substituted or unsubstituted C.sub.1-C.sub.10 alkylene moiety, arylene moiety or heteroarylene moiety, R.sub.2 is selected from Li, H, an alkyl moiety, or a heteroalkyl moiety, 0<m1, 0n1, and m+n=1.
Stable electrolyte for lithium air battery and lithium air battery including the same
Provided are electrochemical cells that include a compound having the general formula ##STR00001##
wherein R.sub.1 is moiety associated with a lithium ion, X.sub.1 and X.sub.3 are unsubstituted methylene moieties, X.sub.2 and X.sub.4 are each independently selected from a substituted or unsubstituted methylene moiety, X is a substituted or unsubstituted C.sub.1-C.sub.10 alkylene moiety, arylene moiety or heteroarylene moiety, R.sub.2 is selected from Li, H, an alkyl moiety, or a heteroalkyl moiety, 0<m1, 0n1, and m+n=1.
FUEL CELL AND METHOD OF MANUFACTURING SAME
Provided is a fuel cell capable of easily forming an interconnector part electrically connecting adjacent unit cells in a planar array fuel cell. In the fuel cell, an electrode layer on each of two surfaces of an electrolyte membrane is divided into a plurality of electrode regions by a dividing groove; a unit cell is constituted by a stacked structure including the electrolyte membrane, one electrode region on one surface of the electrolyte membrane, and one electrode region on the other surface thereof; and the plurality of the unit cells are connected in series by the interconnector part formed in the electrolyte membrane. The interconnector part is formed by heating and carbonizing a proton conductive resin in the electrolyte membrane. The proton conductive resin can be heated by laser beam irradiation.
Fuel cell device and system
Fuel cell devices and fuel cell systems are provided. The fuel cell devices may include one or more active layers containing active cells that are connected electrically in series. The active cells include anodes and cathodes spaced apart along the length, with each including a porous portion and a non-porous conductor portion. The active cells reside between opposing porous anode and cathode portions. The electrical series connections between active cells are made between the non-porous conductor portions. In certain embodiments, the electrical series connections are made by direct contact between the non-porous conductor portions. In certain embodiments, the electrical series connections are made by non-porous conductive vias or elements that extend through an intervening support structure that separates the non-porous anode conductor portions from the non-porous cathode conductor portions.
Fuel cell device and system
Fuel cell devices and fuel cell systems are provided. The fuel cell devices may include one or more active layers containing active cells that are connected electrically in series. The active cells include anodes and cathodes spaced apart along the length, with each including a porous portion and a non-porous conductor portion. The active cells reside between opposing porous anode and cathode portions. The electrical series connections between active cells are made between the non-porous conductor portions. In certain embodiments, the electrical series connections are made by direct contact between the non-porous conductor portions. In certain embodiments, the electrical series connections are made by non-porous conductive vias or elements that extend through an intervening support structure that separates the non-porous anode conductor portions from the non-porous cathode conductor portions.
Method for manufacturing separator of fuel cell stack
A method for manufacturing a separator of a fuel cell stack includes: forming a gasket on the separator of the fuel cell stack; masking a surface of the separator except for a region of the surface of the separator on which the gasket is formed; and inserting the partially masked separator into a chamber to cross-link the gasket.
Redox flow battery
A redox flow battery. The redox flow battery has a plurality of cells stacked on each other and three or more conductive terminals. The redox flow battery is able to vary a charge voltage and a discharge voltage by switching control.