METHOD FOR PREPARING FUEL CELL CATALYST ELECTRODE AND FUEL CELL CATALYST ELECTRODE PREPARED THEREFROM
The present invention relates to a fuel cell catalyst electrode including a catalyst layer including a catalyst, a binder, carbon nanotubes, and carbon nanofibers, wherein the carbon nanotubes have an average length of 100 nm to 1 μm, the carbon nanofibers have an average length of 7 μm to 50 μm, and the fuel cell catalyst electrode includes the carbon nanofibers in an amount of 7.5 to 11.5 parts by weight with respect to 100 parts by weight of the catalyst, and a method for preparing the same.
1 . A fuel cell catalyst electrode comprising a catalyst layer comprising a catalyst, a binder, carbon nanotubes, and carbon nanofibers,
wherein the carbon nanotubes have an average length of about 100 nm to about 1 μm,
the carbon nanofibers have an average length of about 7 μm to about 50 μm, and
the fuel cell catalyst electrode comprises the carbon nanofibers in an amount of about 7.5 to about 11.5 parts by weight with respect to 100 parts by weight of the catalyst.
2 . The fuel cell catalyst electrode of claim 1 , wherein the catalyst comprises a first catalyst and a second catalyst,
the first catalyst comprises a catalyst metal and porous activated carbon having the catalyst metal supported thereon, and
the second catalyst comprises a catalyst metal and carbon nanotubes having the catalyst metal supported thereon.
3 . The fuel cell catalyst electrode of claim 2 , wherein the porous activated carbon comprises at least one selected from the group consisting of carbon black, graphite, graphene, activated carbon, and porous carbon.
4 . The fuel cell catalyst electrode of claim 2 , wherein the catalyst metal comprises platinum or a platinum-based alloy, and
the platinum-based alloy is an alloy of platinum and at least one selected from gold, silver, copper, palladium, tin, iridium, rhodium, ruthenium, iron, cobalt, nickel, chromium, tungsten, manganese, and vanadium.
5 . The fuel cell catalyst electrode of claim 1 , wherein the binder is an ion conductive polymer.
6 . The fuel cell catalyst electrode of claim 1 , wherein the carbon nanotubes have an average diameter of about 5 to about 100 nm.
7 . The fuel cell catalyst electrode of claim 1 , wherein the carbon nanofibers are herringbone-type carbon nanofibers.
8 . The fuel cell catalyst electrode of claim 1 , wherein the carbon nanofibers have an average diameter of about 100 nm to about 200 nm.
9 . The fuel cell catalyst electrode of claim 1 , wherein the carbon nanofibers have a specific surface area of about 30 to about 80 m 2 /g.
10 . A method for preparing a fuel cell catalyst electrode, the method comprising:
supporting a catalyst metal on porous activated carbon to prepare a first catalyst;
supporting the catalyst metal on carbon nanotubes to prepare a second catalyst;
dispersing and mixing a catalyst comprising the first catalyst and the second catalyst, a binder, and carbon nanofibers in a solvent to prepare a catalyst slurry; and
applying the catalyst slurry onto a substrate to form a catalyst layer,
wherein the carbon nanofibers are mixed in an amount of about 7.5 to about 11.5 parts by weight with respect to 100 parts by weight of the catalyst,
the carbon nanotubes have an average length of about 100 nm to about 1 μm, and
the carbon nanofibers have an average length of about 7 μm to about 50 μm.