Mechanically fused materials for pollution abatement in mobile and stationary sources
Described are catalyst composites containing mechanically fused components, methods of making the catalyst composites, and methods of using the catalyst composites such as in pollution abatement applications. The catalyst composites contain a core and a shell at least substantially covering the core, the shell mechanically fused to the core and comprising particles mechanically fused to each other, wherein a size ratio of the core to particles of the shell is at least about 10:1.
1. A catalyst composite for pollution abatement, comprising:
a core, and a shell covering the core, the shell mechanically fused to the core and comprising particles mechanically fused to each other, the shell comprising an active catalyst and a sorbent material and the core comprising oxide particles,
wherein the core oxide particles have an average particle size and the shell particles have an average particle size to provide a size ratio of the core particles to the shell particles of at least about 10:1.
2. The catalyst composite of claim 1 , wherein the active catalyst facilitates conversion of pollution to a less harmful substance and the sorbent material adsorbs and/or absorbs pollution.
3. The catalyst composite of claim 1 , wherein the core particles have an average size from about 5 microns to about 1 mm.
4. The catalyst composite of claim 1 , wherein the particles of the shell have an average size from about 10 nm to about 100 microns.
5. The catalyst composite of claim 1 , wherein the shell has a thickness from about 10 nm to about 100 microns.
6. The catalyst composite of claim 1 , wherein the core comprises at least one of alumina, rare earth stabilized alumina, PGM impregnated alumina, zirconia, a rare earth oxide, an alkaline earth oxide, and a mixed metal oxide and the shell comprises at least one of alumina, rare earth stabilized alumina, PGM impregnated alumina, zirconia, titania, yttria, yttrium salts, rare earth oxides, rare earth salts, alkaline earth oxides, zeolites, vanadia, vanadium salts, tungsten oxide, manganese oxide, tungsten salts, cerium, ceria, mixed metal oxides copper, copper oxide, palladium, palladium oxide, rhodium, rhodium oxide, platinum, platinum oxide, ruthenium, ruthenium oxide, nickel, nickel oxide, gold, gold oxide, cobalt, cobalt oxide, tin, tin oxide, iridium, and iridium oxide.
7. The catalyst composite of claim 1 comprising about 60% by weight or more and about 99.9% by weight or less of the core and about 0.1% by weight or more and about 40% by weight or less of the shell.
8. The catalyst composite of claim 1 , wherein the core comprises particles having an average size of from about 25 microns to about 500 microns.
9. The catalyst composite of claim 1 , wherein the catalyst composite has a shape that is spherical.
10. The catalyst composite of claim 1 , wherein the catalyst composite has surface area of about 10 m 2 /g or more and about 150 m 2 /g or less.
11. The catalyst composite of claim 1 , wherein the catalyst composite has surface area of about 20 m 2 /g or more and about 100 m 2 /g or less.
12. The catalyst composite of claim 1 , wherein the shell comprises zirconia.
13. The catalyst composite of claim 1 , wherein the shell comprises ceria.
14. The catalyst composite of claim 1 , wherein the shell comprises an additive selected from rheology control agents, binding agents, surfactants, and dispersing agents, and the shell has a porosity that is controlled by the amount and type of additive and mechanical fusion parameters.