CATALYTIC WALL FLOW FILTER
A catalytic wall-flow filter for exhaust gas from a gasoline engine is disclosed. The catalytic wall-flow filter comprises a wall-flow filter substrate, a first TWC coating in the first plurality of channels, and a second TWC coating in the second plurality of channels. The first TWC coating comprises palladium, rhodium, a first oxygen storage capacity (OSC) material, and a first inorganic support. The second TWC coating comprises platinum, rhodium, a second OSC material, and a second inorganic support.
1 . A catalytic wall-flow filter for exhaust gas from a gasoline engine, the catalytic wall-flow filter comprising:
a wall-flow filter substrate having porous walls and having a first face and a second face defining a longitudinal direction therebetween and first and second pluralities of channels extending in the longitudinal direction, wherein the first plurality of channels is open at the first face and closed at the second face, and wherein the second plurality of channels is open at the second face and closed at the first face;
a first TWC coating in the first plurality of channels, the first TWC coating comprising palladium, rhodium, a first oxygen storage capacity (OSC) material, and a first inorganic support;
a second TWC coating in the second plurality of channels, the second TWC coating comprising platinum, rhodium, a second OSC material, and a second inorganic support;
wherein the first TWC coating is coated from the first face;
wherein the second TWC coating is coated from the second face;
wherein the first face is an inlet face and the second face is an outlet face of the catalytic wall-flow filter.
2 . The catalytic wall-flow filter of claim 1 , wherein the first TWC coating comprises palladium and rhodium in a weight ratio of from 10:1 to 1:10.
3 . The catalytic wall-flow filter of claim 1 , wherein the first TWC coating comprises palladium and rhodium in a weight ratio of from 5:1 to 1:5.
4 . The catalytic wall-flow filter of claim 1 , wherein the first TWC coating comprises palladium and rhodium in a weight ratio of from 2:1 to 1:2.
5 . The catalytic wall-flow filter of claim 1 , wherein the second TWC coating comprises platinum and rhodium in a weight ratio of from 10:1 to 1:10.
6 . The catalytic wall-flow filter of claim 1 , wherein the second TWC coating comprises platinum and rhodium in a weight ratio of from 5:1 to 1:5.
7 . The catalytic wall-flow filter of claim 1 , wherein the second TWC coating comprises platinum and rhodium in a weight ratio of from 2:1 to 1:2.
8 . The catalytic wall-flow filter of claim 1 , wherein the first TWC coating has a PGM loading in the range of from 2 to 10 g/ft 3 , and wherein the second TWC coating has a PGM loading in the range of from 2 to 10 g/ft 3 .
9 . The catalytic wall-flow filter of claim 1 , wherein the first TWC coating has a total PGM loading in the range of from 3 to 6 g/ft 3 , and wherein the second TWC coating has a total PGM loading in the range of from 3 to 6 g/ft 3 .
10 . The catalytic wall-flow filter of claim 1 , wherein the first TWC coating loading is in the range of from 0.5 to 1.0 g/in 3 , and wherein the second TWC coating loading is in the range of from 0.5 to 1.0 g/in 3 .
11 . The catalytic wall-flow filter of claim 1 , wherein each of the first OSC material and the second OSC material independently comprises an OSC derived from a CeZr mixed oxide sol having a D90 of less than 1.3 micron.
12 . The catalytic wall-flow filter of claim 1 , wherein the first inorganic oxide support is an alumina doped with La in an amount of from 3 to 20 wt %, and wherein the second inorganic oxide support is an alumina doped with La in an amount of from 3 to 20 wt %.
13 . The catalytic wall-flow filter of claim 1 , where the catalytic wall-flow filter has a weight ratio of palladium to platinum from 2:1 to 1:2.
14 . The catalytic wall-flow filter of claim 1 , wherein the first TWC coating covers from 50 to 55% of the length of the first plurality of channels, and wherein the second TWC coating covers from 50 to 55% of the length of the second plurality of channels.
15 . A method for the manufacture of a catalytic wall-flow filter for the treatment of an exhaust gas, the method comprising:
(i) forming a first washcoat slurry comprising palladium, rhodium, a first oxygen storage capacity (OSC) material, and a first inorganic support;
(ii) coating a wall-flow filter substrate with the first washcoat slurry, the wall-flow filter substrate having porous walls and having a first face and a second face defining a longitudinal direction therebetween and first and second pluralities of channels extending in the longitudinal direction, wherein the first plurality of channels is open at the first face and closed at the second face, and wherein the second plurality of channels is open at the second face and closed at the first face, wherein the first washcoat slurry is coated from the first face;
(iii) forming a second washcoat slurry comprising platinum, rhodium, a second oxygen storage capacity (OSC) material, and a second inorganic support;
(iv) coating a wall-flow filter substrate with the second washcoat slurry from the second face of the wall-flow filter substrate to form a washcoated wall-flow filter substrate;
(v) calcining the washcoated wall-flow filter substrate to form the catalytic wall-flow filter.
16 . An emission treatment system for treating a flow of a combustion exhaust gas from gasoline direct injection engines, the system comprising the catalytic wall-flow filter of claim 1 .
17 . The emission treatment system of claim 16 , further comprising a TWC catalyst containing a TWC composition applied to a honeycomb flow-through substrate.
18 . The emission treatment system of claim 17 , wherein the TWC catalyst is disposed upstream of the catalytic wall-flow filter.
19 . A method of treating a combustion exhaust gas from a positive ignition internal combustion engine containing oxides of nitrogen, carbon monoxide, hydrocarbons, and particulate matter, which method comprising contacting the exhaust gas with the catalytic wall-flow filter of claim 1 .