IP Library Granted Patent US 12,257,573
Granted Patent B2
US 12,257,573 · App. 17/753,561 · Granted Mar 25, 2025

Multifunctional catalyst for hydrocarbon oxidation and selective catalytic reduction of NOx

Inventors: Kevin Beard (Iselin, NJ); Joseph A. Patchett (Iselin, NJ); Edgar Viktor Huennekes (Hannover, DE); Jan Martin Becker (Hannover, DE); John K. Hochmuth (Raritan, NJ)
Assignee: BASF Mobile Emissions Catalysts LLC
B01J35/19B01D53/72B01D53/9418B01D53/9468B01J21/08B01J23/10B01J23/30B01J23/44B01J23/8472B01J35/56B01J37/0201B01J37/0228B01J37/0244B01J37/0248B01J37/082F01N3/0222F01N3/106F01N3/2066F01N3/2828B01D2255/1023B01D2255/20723B01D2255/20738B01D2255/9022B01D2255/9155B01D2257/404B01D2257/702B01D2258/012F01N2370/04
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Quick Facts
Patent No.
US 12,257,573
App. No.
17/753,561
Granted
Mar 25, 2025
Kind
B2
Abstract

The present invention relates to a catalyst for the oxidation of hydrocarbon and the selective catalytic reduction of nitrogen oxides, the catalyst comprising a substrate comprising an inlet end, an outlet end, a substrate axial length extending from the inlet end to the outlet end and a plurality of passages defined by internal walls of the substrate extending therethrough; and a coating disposed on the surface of the internal walls of the substrate, wherein the surface de-fines the interface between the passages and the internal walls, wherein the coating comprises a platinum group metal component supported on a first oxidic material and further comprises a mixed oxide of vanadium and one or more of iron, erbium, bismuth, cerium, europium, gadolinium, holmium, lanthanum, lutetium, neodymium, praseodymium, promethium, samarium, scandium, terbium, thulium, ytterbium, yttrium, molybdenum, tungsten, manganese, cobalt, nickel, copper, aluminum and antimony, wherein the mixed oxide is supported on a second oxidic material.

Claims (25)

1. A catalyst for the oxidation of hydrocarbon and the selective catalytic reduction of nitrogen oxides, the catalyst comprising:

(i) a substrate comprising an inlet end, an outlet end, a substrate axial length extending from the inlet end to the outlet end, and a plurality of passages defined by internal walls of the substrate extending therethrough; and

(ii) a coating disposed on the surface of the internal walls of the substrate, wherein the surface defines the interface between the passages and the internal walls, wherein the coating comprises a platinum group metal component supported on a first oxidic material and further comprises a mixed oxide of vanadium and one or more of iron, erbium, bismuth, cerium, europium, gadolinium, holmium, lanthanum, lutetium, neo-dymium, praseodymium, promethium, samarium, scandium, terbium, thulium, ytter-bium, yttrium, molybdenum, tungsten, manganese, cobalt, nickel, copper, aluminum, and antimony, and wherein the mixed oxide is supported on a second oxidic material,

wherein the coating according to (ii) consists of:

(ii.1) a bottom coat comprising the mixed oxide supported on the second oxidic material; and

(ii.2) a top coat comprising the platinum group metal component supported on the first oxidic material;

wherein the bottom coat is disposed on the surface of the internal walls of the substrate over x % of the substrate axial length, wherein x ranges from 90 to 100; and

wherein the top coat is disposed on the bottom coat over y % of the substrate axial length, wherein y ranges from 90 to 100.

2. The catalyst of claim 1 , wherein the first oxidic material comprises one or more oxides.

3. The catalyst of claim 1 , wherein from 75 weight-% to 100 weight-%, of the first oxidic material consist of zirconia, wherein the first oxidic material further comprises one or more of a hafnium oxide and a lanthanum oxide; or wherein from 70 weight-% to 100 weight-%, of the first oxidic material consist of alumina, wherein the first oxidic material further comprises one or more of a lanthanum oxide and a zirconium oxide.

4. The catalyst of claim 1 , wherein the coating comprises the first oxidic material at a loading ranging from 0.25 to 1 g/in 3 .

5. The catalyst of claim 1 , wherein the mixed oxide is a mixed oxide of vanadium and one or more of iron, erbium, bismuth, aluminum, and antimony.

6. The catalyst of claim 1 , wherein the second oxidic material supporting the mixed oxide comprises one or more oxides; wherein from 75 to 100 weight of the second oxidic material consist of titania.

7. The catalyst of claim 1 , wherein the coating further comprises an oxidic binder, wherein the oxidic binder comprises one or more of zirconia, alumina, titania, silica and a mixed oxide comprising two or more of Zr, Al, Ti and Si.

8. The catalyst of claim 1 , wherein the catalyst comprises the coating at a loading ranging from 2.5 to 10 g/in 3 .

9. The catalyst of claim 1 , wherein from 0 to 0.001 weight-%, of the bottom coat according to (ii.1) consist of palladium.

10. A process for preparing a catalyst for the oxidation of hydrocarbon and the selective catalytic reduction of nitrogen oxides comprising:

(a) providing a substrate comprising an inlet end, an outlet end, a substrate axial length extending from the inlet end to the outlet end, and a plurality of passages defined by internal walls of the substrate extending therethrough;

(b) providing one or more mixtures comprising a source of a platinum group metal component, particles of a first oxidic material, water, particles of a mixed oxide of vanadium and one or more of iron, erbium, bismuth, cerium, europium, gadolinium, holmium, lanthanum, lutetium, neodymium, praseodymium, promethium, samarium, scandium, terbium, thulium, ytterbium, yttrium, molybdenum, tungsten, manganese, cobalt, nickel, copper, aluminum and antimony, a second oxidic material and preferably an oxidic binder,

disposing the one or more mixtures over z % of the substrate axial length, wherein z ranges from 90 to 100, wherein disposing the one or more mixtures includes:

disposing a bottom coat on the surface of the internal walls of the substrate over x % of the substrate axial length, wherein x ranges from 90 to 100, and the bottom coat comprises the mixed oxide supported on the second oxidic material; and

disposing a top coat on the bottom coat over y % of the substrate axial length, wherein y ranges from 90 to 100, and the top coat comprises the platinum group metal component supported on the first oxidic material, wherein the bottom coat is disposed on, and

calcining the one or more mixtures disposed on the substrate.

11. A catalyst for the oxidation of hydrocarbon and the selective catalytic reduction of nitrogen oxides obtainable or obtained by a process according to claim 10 .

12. An exhaust gas treatment system for treating exhaust gas from an internal combustion engine, preferably from a diesel engine, the system comprising a catalyst according to claim 1 , and one or more of an ammonia oxidation catalyst, a diesel oxidation catalyst, a selective catalytic reduction catalyst and a catalyzed particulate filter.

Assignments (4)
NUNC PRO TUNC ASSIGNMENT Recorded Aug 8, 2024
From: BASF CORPORATION
To: BASF MOBILE EMISSIONS CATALYSTS LLC
Reel/Frame 068518/0394 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 9, 2022
From: BEARD, KEVIN; HUENNEKES, EDGAR VIKTOR; BECKER, JAN MARTIN
To: BASF CATALYSTS GERMANY GMBH
Reel/Frame 059205/0033 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 9, 2022
From: BASF CATALYSTS GERMANY GMBH
To: BASF CORPORATION
Reel/Frame 059205/0076 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 9, 2022
From: PATCHETT, JOSEPH A.; HOCHMUTH, JOHN K.
To: BASF CORPORATION
Reel/Frame 059205/0133 →
Priority Claims (1)
EP 19200513 · Sep 30, 2019 · regional
Continuity (1)
Related Publication 20240001354A1 · Jan 4, 2024
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