Exhaust gas treatment catalyst

JP2024531135A5Pending Publication Date: 2025-09-24JOHNSON MATTHEY PLC
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Patent Information

Application Number
JP2024507844
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2021-09-14
Filing Date
2022-09-14
Publication Date
2025-09-24

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Abstract

A catalyst composition and a method for preparing the same are provided, which includes exchanging a rare earth element into a molecular sieve and incorporating a promoter metal into the molecular sieve, the rare earth element exchanging step and the promoter metal introducing step being carried out as separate steps.
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Description

[Technical field]

[0001] The present invention relates to a method for treating a combustion exhaust gas by using NO in a lean-burn combustion exhaust gas. x The present invention relates to catalysts, articles and methods for selective catalytic reduction (SCR) of [Background technology]

[0002] The largest portion of most flue gases is the relatively harmless nitrogen (N 2 ), water vapor (H 2 O), and carbon dioxide (CO 2 ), but exhaust gas also contains carbon monoxide (CO) from incomplete combustion, hydrocarbons (HC) from unburned fuel, and nitrogen oxides (NO x ), and particulate matter (mainly soot). In order to reduce the environmental impact of exhaust gases released into the atmosphere, it is desirable to eliminate or reduce the amounts of these undesirable components, preferably by a process that does not produce other harmful or toxic substances.

[0003] One of the most troublesome components to remove from vehicle exhaust is NO x This includes nitric oxide (NO), nitrogen dioxide (NO 2 ), and nitrous oxide (N 2 O) in lean-burn exhaust gases such as those produced by diesel engines. x N 2 Reduction of NO to NO is particularly problematic because the exhaust gas contains enough oxygen to favor oxidation reactions instead of reduction. x NO can be reduced by a process commonly known as selective catalytic reduction (SCR). The SCR process reduces NO with the aid of a reducing agent in the presence of a catalyst. x Nitrogen element (N 2In the SCR process, a gaseous reductant, such as ammonia, is added to the exhaust gas stream before the exhaust gas is contacted with an SCR catalyst. The reductant is absorbed on the catalyst and NO x is reduced as the gas passes through or over the catalyzed substrate. The chemical equation for the stoichiometric SCR reaction using ammonia is: 4NO+4NH 3 +3O 2 →4N 2 +6H 2 O 2NO 2 +4NH 3 +3O 2 →3N 2 +6H 2 O NO+NO 2 +2NH 3 →2N 2 +3H 2 O

[0004] Known SCR catalysts include zeolites and other molecular sieves. Molecular sieves are microporous crystalline solids with well-defined structures, generally containing silicon, aluminum, and oxygen in their frameworks, and may also contain cations within their pores. The defining feature of molecular sieves is their crystalline or pseudocrystalline structure, formed by molecular tetrahedral cells that are regularly and / or repeatedly interconnected to form the framework. Unique zeolite frameworks are generally recognized by three-letter codes assigned by the Structure Committee of the International Zeolite Association (IZA). Examples of molecular sieve frameworks that are known SCR catalysts include the framework type codes CHA (chabazite), BEA (beta), and MOR (mordenite).

[0005] Some molecular sieves have a three-dimensional molecular framework resulting from a series of interconnected cells. The cells of these molecular sieves typically have a volume on the order of a few cubic nanometers and cell openings (also called "pores" or "apertures") on the order of a few angstroms in diameter. The cells can be defined by the ring size of their pores, for example, the term "8-ring" refers to a closed loop constructed from eight tetrahedrally coordinated silicon (or aluminum) atoms and eight oxygen atoms. In certain zeolites, the cell pores align within the framework to create one or more channels that extend through the framework, thus creating a mechanism for restricting the entry or passage of different molecular or ionic species through the molecular sieve based on the relative size of the channel and the molecular or ionic species. The size and shape of molecular sieves affect their catalytic activity in part because they have a steric effect on the reactants that controls the access of the reactants and products. For example, NO x Small molecules such as can typically enter and exit the cells and / or diffuse through the channels of small pore molecular sieves (i.e., those with frameworks with a maximum ring size of eight tetrahedral atoms), while larger molecules such as long chain hydrocarbons cannot. Furthermore, partial or complete dehydration of molecular sieves can result in crystalline structures intertwined with channels of molecular dimensions.

[0006] The temperature of exhaust gases leaving mobile lean-burn engines, such as diesel engines, is often greater than 500-650°C. The exhaust gases also typically contain water vapor. Thus, hydrothermal stability is an important consideration when designing SCR catalysts.

[0007] Zeolites themselves often have catalytic properties, but their catalytic performance depends on the presence of Cu as a part of the ionic species present on the surface or within the framework. 2+In particular circumstances, the SCR performance of zeolites can be improved by cation exchange, in which zeolites are replaced by transition metal cations such as copper or iron. That is, the SCR performance of zeolites can be enhanced by loosely retaining one or more transition metal ions, such as copper or iron, in the framework of the molecular sieve.

[0008] For transition metal exchanged SCR catalysts, it is desirable to have high catalytic activity at low operating temperatures. At operating temperatures below 400°C, higher metal loadings result in higher catalytic activity. The achievable metal loadings often depend on the amount of exchange sites in the molecular sieve. In general, molecular sieves with low SAR allow the highest metal loadings, thus creating a conflict between the need for high catalytic activity and the high hydrothermal stability achieved by relatively higher SAR values. Furthermore, high copper loaded catalysts also do not function at high temperatures (e.g., above 450°C). For example, aluminosilicates with CHA frameworks loaded with large amounts of copper (copper to aluminum atomic ratios greater than 0.25) can cause significant NH oxidation at temperatures above 450°C. 3 It can cause oxidation, and N 2 This drawback is particularly severe under filter regeneration conditions which involve exposing the catalyst to temperatures in excess of 650°C.

[0009] Another important consideration when designing SCR catalysts for mobile applications is the performance consistency of the catalyst. For example, a new catalyst will produce similar levels of NO as the same catalyst after aging. x It is desirable to effect a transformation.

[0010] Thus, there remains a need for SCR catalysts that offer improved performance over existing SCR materials. Summary of the Invention

[0011] According to an embodiment of the present invention, a method of preparing a catalyst composition may include exchanging a rare earth element into a molecular sieve and incorporating a promoter metal into the molecular sieve, but the rare earth element exchange step and the promoter metal introduction step are performed as separate steps.

[0012] In some embodiments, the rare earth element is exchanged into the molecular sieve prior to incorporating the Promoter metal. In some embodiments, the Promoter metal is incorporated into the molecular sieve prior to exchanging the rare earth element.

[0013] The rare earth element may include, for example, cerium. The promoter metal may include, for example, copper. In embodiments where the promoter metal includes copper, the catalyst composition may include 0.2 to 0.45 Cu atoms:Al atoms. In some embodiments, the catalyst composition of the present invention has a minimal surface CeO 2 In some embodiments, the molecular sieve has a SAR of about 10 to about 25. In some embodiments, the molecular sieve can have a CHA framework.

[0014] In some embodiments, the catalyst composition comprises a rare earth element in an amount of about 0.5 to about 5 weight percent of the catalyst composition. In some embodiments, the catalyst composition comprises a promoter metal in an amount of about 0.5 to about 6 weight percent of the catalyst composition.

[0015] According to certain embodiments, a method for preparing the catalyst composition includes first incorporating cerium into a molecular sieve having a CHA framework by ion exchange to prepare a cerium-exchanged CHA molecular sieve; and then incorporating copper into the cerium-exchanged CHA to prepare a cerium-exchanged, copper-promoted CHA molecular sieve.

[0016] According to some embodiments of the present invention, the catalyst composition comprises a rare earth-exchanged metal-promoted molecular sieve. Such catalyst composition may contain minimal surface rare earth-promoter metal species.

[0017] In some embodiments, the molecular sieve comprises a small pore molecular sieve, such as a CHA framework. [Brief description of the drawings]

[0018] [Figure 1] The performance of catalysts prepared by various techniques is shown. [Diagram 2] 1 shows the CeO2 on the surface of the prepared catalyst. [Diagram 3] FIG. 1 shows the effect of exchanged Ce on framework stability. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0019] The compositions and methods of the present invention reduce NO in lean-burn exhaust gases over a wide operating temperature range. x and / or NH 3 The present invention relates to a catalyst for at least partially improving exhaust gas emissions produced by diesel and other lean-burn engines by reducing the slip concentration. Useful catalyst compositions are capable of reducing NOx in an oxidizing environment (i.e., in an SCR catalyst and / or an AMOX catalyst). x and / or oxidize ammonia. A preferred catalyst composition comprises a metal promoted molecular sieve with a rare earth element. Surprisingly, it has been found that exchanging the rare earth element in the molecular sieve and separately incorporating a promoter metal produces a catalyst composition having superior low temperature activity and selectivity after hydrothermal aging compared to a catalyst composition having the same components but prepared by a different method. Thus, a method of preparing the catalyst composition includes incorporating a rare earth element into the exchange sites of the molecular sieve and incorporating the promoter metal through a separate process either before or after the incorporation of the rare earth element.

[0020] Without being bound by theory, it is believed that the advantages demonstrated by the catalyst composition of the present invention may be related to the minimal formation of surface rare earth-promoter metal species. Minimizing the formation of these undesirable species can be achieved by limiting the interaction of the promoter metal with the rare earth during preparation. According to some aspects of the present invention, the preparation method can achieve a lower amount of surface rare earth-promoter metal species by first incorporating the rare earth into the exchange sites of the molecular sieve, washing the surface adsorbed species before calcination, and then incorporating the promoter metal, thereby minimizing the coexistence of the rare earth ions and the promoter metal ions. According to another aspect of the present invention, the preparation method can achieve a lower amount of surface rare earth-promoter metal species by first incorporating the promoter metal, washing the surface adsorbed species before calcination, and then incorporating the rare earth, thereby minimizing the coexistence of the rare earth ions and the promoter metal ions.

[0021] In certain embodiments, the catalyst composition comprises a cerium-exchanged, copper-promoted aluminosilicate having a CHA framework with a SAR of about 10 to about 25, about 17 to about 23, or about 10 to about 15, where the copper is present in a copper to aluminum ratio of about 0.2 to about 0.45, and the Ce is present in an amount of about 0.5% to about 5% by weight of the catalyst composition. In some aspects, such catalyst compositions can be prepared by first adding cerium to the CHA by ion exchange, and then adding copper.

[0022] Molecular Sieves The catalyst composition of the present invention comprises a molecular sieve. In some embodiments, the molecular sieve comprises or consists essentially of a molecular sieve having an aluminosilicate framework (e.g., zeolite) or a silicoaluminophosphate framework (e.g., SAPO). In some embodiments, the molecular sieve comprises or consists essentially of a molecular sieve having an aluminosilicate framework (e.g., zeolite). In some embodiments, the preferred zeolite is a synthetic zeolite.

[0023] When the molecular sieve has an aluminosilicate framework (e.g., the molecular sieve is a zeolite), typically the molecular sieve has a silica to alumina molar ratio (SAR) of 5 to 200 (e.g., 10 to 200), 10 to 100 (e.g., 10 to 30 or 20 to 80), 10 to 50, 10 to 30, 12 to 40, 15 to 30, 5 to 20, 5 to 15, 8 to 15, 8 to 13, 10 to 15, 10 to 20, 10 to 40, 10 to 60, 10 to 80, 10 to 100, 10 to 150, less than 30, less than 20, less than 15, or less than 13. In some embodiments, suitable molecular sieves have a SAR of greater than 200, greater than 600, or greater than 1200. In some embodiments, the molecular sieve has a SAR of about 1500 to about 2100.

[0024] The molecular sieve may be a small pore molecular sieve (e.g., a molecular sieve having a maximum ring size of 8 tetrahedral atoms), a medium pore molecular sieve (e.g., a molecular sieve having a maximum ring size of 10 tetrahedral atoms) or a large pore molecular sieve (e.g., a molecular sieve having a maximum ring size of 12 tetrahedral atoms), or a combination of two or more thereof.

[0025] When the molecular sieve is a small pore molecular sieve, the small pore molecular sieve can have a framework structure represented by a Framework Type Code (FTC) selected from the group consisting of ACO, AEI, AEN, AFN, AFT, AFX, ANA, APC, APD, ATT, CDO, CHA, DDR, DFT, EAB, EDI, EPI, ERI, GIS, GOO, IHW, ITE, ITW, LEV, LTA, KFI, MER, MON, NSI, OWE, PAU, PHI, RHO, RTH, SAT, SAV, SFW, SIV, THO, TSC, UEI, UFI, VNI, YUG, and ZON, or mixtures, combinations, and / or intergrowths of two or more thereof. In some embodiments, the small pore molecular sieve has a framework structure selected from the group consisting of CHA, LEV, AEI, AFX, ERI, LTA, SFW, KFI, DDR, and ITE. In some embodiments, the small pore molecular sieve has a framework structure selected from the group consisting of CHA and AEI. The small pore molecular sieve may have a CHA framework structure.

[0026] When the molecular sieve is a medium pore molecular sieve, the medium pore molecular sieve can have a framework structure represented by a framework type code (FTC) selected from the group consisting of AEL, AFO, AHT, BOF, BOZ, CGF, CGS, CHI, DAC, EUO, FER, HEU, IMF, ITH, ITR, JRY, JSR, JST, LAU, LOV, MEL, MFI, MFS, MRE, MTT, MVY, MWW, NAB, NAT, NES, OBW, PAR, PCR, PON, PUN, RRO, RSN, SFF, SFG, STF, STI, STT, STW, SVR, SZR, TER, TON, TUN, UOS, VSV, WEI, and WEN, or mixtures and / or intergrowths of two or more thereof. In some embodiments, the medium pore molecular sieve has a framework structure selected from the group consisting of FER, MEL, MFI, and STT. In some embodiments, the medium pore molecular sieve has a framework structure selected from the group consisting of FER and MFI, in particular MFI. When the medium pore molecular sieve is a zeolite and has a FER or MFI framework, the zeolite can be ferrierite, silicalite, or ZSM-5.

[0027] When the sieve is a large pore molecular sieve, the large pore molecular sieve may have a framework structure represented by a framework type code (FTC) selected from the group consisting of AFI, AFR, AFS, AFY, ASV, ATO, ATS, BEA, BEC, BOG, BPH, BSV, CAN, CON, CZP, DFO, EMT, EON, EZT, FAU, GME, GON, IFR, ISV, ITG, IWR, IWS, IWV, IWW, JSR, LTF, LTL, MAZ, MEI, MOR, MOZ, MSE, MTW, NPO, OFF, OKO, OSI, RON, RWY, SAF, SAO, SBE, SBS, SBT, SEW, SFE, SFO, SFS, SFV, SOF, SOS, STO, SSF, SSY, USI, UWY, and VET, or mixtures of two or more thereof and / or intergrowth. In some embodiments, the large pore molecular sieve has a framework structure selected from the group consisting of AFI, BEA, MAZ, MOR, and OFF. In some embodiments, the large pore molecular sieve has a framework structure selected from the group consisting of BEA, MOR, and FAU. When the large pore molecular sieve is a zeolite and has an FTC, BEA, FAU, or MOR framework, the zeolite may be beta zeolite, faujasite, zeolite Y, zeolite X, or mordenite.

[0028] In some embodiments, suitable molecular sieves include a combination of small and large pore frameworks, hi some embodiments, suitable molecular sieves include ZSM-34(ERI+OFF).

[0029] Preferred molecular sieves have a silica to alumina molar ratio (SAR) of less than about 30, more preferably about 5 to about 30, such as about 10 to about 25, about 10 to 15, about 15 to about 25, about 17 to about 23, about 14 to about 20, and about 15 to about 17. The silica to alumina ratio of the zeolite can be determined by conventional analysis. By this ratio, it is meant to represent as closely as possible the ratio in the rigid atomic framework of the zeolite crystal, and to exclude silicon or aluminum in the channels, in the binder, or in cationic or other form. Because it can be difficult to directly measure the silica to alumina ratio of a zeolite after it has been combined with a binder material, particularly an alumina binder, these silica to alumina ratios are expressed as the SAR of the zeolite itself, i.e., before the zeolite is combined with other catalyst components.

[0030] In certain embodiments, the molecular sieve comprises, consists essentially of, or consists of an irregular framework selected from the group consisting of ABC-6, AEI / CHA, AEI / SAV, AEN / UEI, AFS / BPH, BEC / ISV, beta, faujasite, ITE / RTH, KFI / SAV, lobdalite, montesommaite, MTT / TON, pentasil, SBS / SBT, SSF / STF, SSZ-33, and ZSM-48. In preferred embodiments, the one or more small pore molecular sieves may comprise a CHA framework type code selected from SAPO-34, AlPO-34, SAPO-47, ZYT-6, CAL-1, SAPO-40, SSZ-62, or SSZ-13, and / or an AEI framework type code selected from AlPO-18, SAPO-18, SIZ-8, or SSZ-39. In one embodiment, the mixed phase composition is an AEI / CHA mixed phase composition. The ratio of each framework type in the molecular sieve is not particularly limited. For example, the ratio of AEI / CHA may range from about 5 / 95 to about 95 / 5, preferably about 60 / 40 to 40 / 60. In an exemplary embodiment, the ratio of AEI / CHA may range from about 5 / 95 to about 40 / 60.

[0031] rare earth The catalyst composition of the present invention contains one or more rare earth elements incorporated into the molecular sieve so as to be present as counterions on the ion exchange sites of the framework structure. The rare earth elements may be present as extra-framework elements, that is, elements present within the molecular sieve and / or on at least a portion of the molecular sieve surface, that do not contain aluminum and do not contain atoms that constitute the framework of the molecular sieve. The rare earth elements can be added to the molecular sieve by any known technique, such as ion exchange, impregnation, isomorphous substitution, etc. Preferably, the rare earth elements are incorporated by ion exchange. Preferably, the one or more rare earth elements are selected from the group consisting of La, Ce, Pr, Nd, Sm, Eu, Gd, Tb, Dy, Ho, Er, Tm, Yb, Lu, Y, and Sc, and combinations of two or more thereof. In one particular embodiment, the preferred rare earth element comprises Ce.

[0032] The method of preparing the catalyst composition may include incorporating rare earth elements into the molecular sieve by ion exchange. The ion exchange may be performed by blending the molecular sieve into a solution containing a soluble precursor of the rare earth element(s). The pH of the solution may be adjusted to induce precipitation of catalytically active rare earth element cations on or within the molecular sieve structure. For example, in a preferred embodiment, chabazite is immersed in a solution containing cerium acetate for a time sufficient to allow incorporation of catalytically active cerium cations into the molecular sieve structure by ion exchange. The unexchanged cerium ions precipitate. Depending on the application, some of the unexchanged ions may remain in the molecular sieve material as free cerium. The cerium-substituted molecular sieve may then be washed, dried, and calcined.

[0033] Generally, ion exchange of cerium cations in or on the molecular sieve can be carried out at room temperature or at a temperature up to about 80° C. for about 1 to 24 hours at a pH of about 7. The resulting catalytic molecular sieve material is preferably dried overnight at about 100-120° C. and calcined at a temperature of at least about 550° C.

[0034] The rare earth content of the catalyst composition, based on the weight of the catalyst composition, preferably includes from about 0.5 to about 15 wt.%, from about 0.5 to about 10 wt.%, or from about 0.5 to about 5 wt.%. These ranges are particularly preferred for cerium-exchanged, copper-promoted aluminosilicates having a CHA framework with a SAR of from about 10 to about 25, from about 17 to about 23, or from about 10 to about 15, and more preferred for such embodiments in which copper is present in a copper-to-aluminum ratio of from about 0.2 to about 0.45.

[0035] Promoter Metal The catalyst composition of the present invention comprises at least one promoter metal to improve the catalytic performance and / or thermal stability of the material in addition to one or more rare earth elements.Surprisingly, it has been found that adding the promoter metal in a process separate from the addition of the rare earth elements produces a catalyst with superior low-temperature activity and selectivity after hydrothermal aging compared to a catalyst with the same composition but prepared by a different method, so such promoter metal may be added to the molecular sieve separately from the incorporation of the rare earth metal.Thus, the method of preparing the catalyst composition may include incorporating the rare earth element, for example by ion exchange, and incorporating the promoter metal in a separate process, either before or after the incorporation of the rare earth element.

[0036] The promoter metal may be present as an extra-framework metal, that is, present within and / or on at least a portion of the surface of the molecular sieve, which does not contain aluminum and does not contain atoms that make up the framework of the molecular sieve. The promoter metal may be added to the molecular sieve by any known technique, such as ion exchange, impregnation, isomorphous replacement, etc. The promoter metal may be present as a counter ion on ion exchange sites of the framework structure.

[0037] The promoter metal may be any of the recognized catalytically active metals used in the catalyst industry to form metal-exchanged molecular sieves. In one embodiment, at least one promoter metal is used with the molecular sieve to improve the performance of the catalyst. Preferred promoter metals are selected from the group consisting of copper, nickel, zinc, iron, tin, tungsten, molybdenum, cobalt, bismuth, titanium, zirconium, antimony, manganese, chromium, vanadium, niobium, ruthenium, rhodium, palladium, gold, silver, indium, platinum, iridium, rhenium, and mixtures thereof. More preferred promoter metals include those selected from the group consisting of chromium, manganese, iron, cobalt, nickel, and copper, and mixtures thereof. Preferably, at least one of the promoter metals is copper.

[0038] In certain embodiments, the Promoter metal loading is from about 0.1 to about 10 wt %, e.g., from about 0.5 wt % to about 6 wt %, and from about 3 to about 6 wt %, based on the total weight of the catalyst composition. In certain embodiments, the Promoter metal (M), preferably copper, is present in the molecular sieve in an amount to produce an M:Al atomic ratio of from about 0.2 to about 0.45.

[0039] catalyst article The catalyst composition may be in the form of a washcoat, preferably a washcoat suitable for coating a substrate such as a metal or ceramic flow-through monolith substrate, or a filtration substrate including, for example, a wall-flow filter or a sintered metal or partial filter. Thus, another aspect of the present invention is a washcoat comprising the catalyst composition described herein. In addition to the catalyst composition, the washcoat composition may be a washcoat containing alumina, silica, (non-zeolitic) silica-alumina, natural clays, TiO 2 , ZrO 2 , and SnO 2 A further aspect of the present invention is a catalyst article comprising a substrate and the catalyst composition described herein, which may be applied as a washcoat.

[0040] A preferred substrate for use in mobile applications is a monolith with a so-called honeycomb shape that contains multiple adjacent parallel channels, each of which typically has a square cross-sectional area. The honeycomb shape provides a large catalyst surface while minimizing the overall size and pressure drop. The catalyst composition can be deposited on a flow-through monolith substrate (e.g., a honeycomb monolith catalyst support structure with many small, parallel channels that run axially through the entire part) or a filter monolith substrate, such as a wall-flow filter. In another embodiment, the catalyst composition is formed into an extruded catalyst. Preferably, the catalyst composition is formed into an extruded catalyst that is capable of converting NO2 contained in the exhaust gas stream flowing through the substrate. x In certain embodiments, at least a portion of the substrate is also coated on the substrate in an amount sufficient to oxidize ammonia in the exhaust gas stream or to reduce CO 2 The catalyst may contain a platinum group metal, such as platinum (Pt), to perform other functions, such as the conversion of

[0041] Method and system for use The catalyst compositions described herein promote the reaction of a reductant, preferably ammonia, with nitrogen oxides to selectively produce elemental nitrogen (N 2 ) and water (H 2 O) can be formed. In one embodiment, the catalyst composition can be formulated to favor the reduction of nitrogen oxides with ammonia (i.e., and SCR catalyst). In another embodiment, the catalyst can be formulated to favor the oxidation of ammonia with oxygen (i.e., an ammonia oxidation (AMOX) catalyst). In yet another embodiment, the SCR catalyst and the AMOX catalyst are used in series, both catalyst compositions comprising the metal-containing molecular sieves described herein, and the SCR catalyst is upstream of the AMOX catalyst. In a particular embodiment, the AMOX catalyst is disposed as an upper layer over an oxidizing lower layer, the lower layer comprising a platinum group metal (PGM) catalyst or a non-PGM catalyst. Preferably, the AMOX catalyst is disposed on a high surface area support, including, but not limited to, alumina. In a particular embodiment, the AMOX catalyst is applied to a substrate, preferably a substrate designed to provide a large contact surface with minimal back pressure, such as a flow-through metal honeycomb or cordierite honeycomb. For example, a preferred substrate has about 25 to about 300 cells per square inch (CPSI) to ensure low backpressure. Achieving low backpressure is particularly important to minimize the impact of the AMOX catalyst on low pressure EGR performance. The AMOX catalyst can be applied to the substrate as a washcoat, preferably to achieve a loading of about 0.3 to 2.3 g per cubic inch. Additional NO x To provide conversion, the front of the substrate can be coated with only an SCR coating, and the rear can be coated with an SCR and NH coating, which can further include Pt or Pt / Pd on an alumina support. 3 It may be coated with an oxidation catalyst.

[0042] The reductant (also known as the reducing agent) for the SCR process is the NO in the exhaust gas. xReductants useful in the present invention include ammonia, hydrazine, or any suitable ammonia precursor, such as urea ((NH 2 ) 2 CO), ammonium carbonate, ammonium carbamate, ammonium bicarbonate or ammonium formate, and hydrocarbons such as diesel fuel. Particularly preferred reductants are nitrogen-based, with ammonia being especially preferred.

[0043] In another embodiment, nitrogen-based reductants, particularly NH 3 All or at least a portion of the NO 3 is disposed upstream of the dual-function catalytic filter. x Adsorption catalyst (NAC), lean NO x Trap (LNT) or NO x One of the functions of NAC in the present invention is to provide NH for the downstream SCR reaction. 3 The objective of the present invention is to provide a source of NAC. Thus, the NAC is configured into the system in a manner similar to the injector, i.e., upstream of the dual function catalytic filter, preferably without an SCR or other catalytic component interposed between the NAC and the filter. NAC components useful in the present invention include catalysts that combine a basic material (such as an alkali metal, alkaline earth metal, or rare earth metal, including alkali metal oxides, alkaline earth metal oxides, and combinations thereof), a precious metal (such as platinum), and optionally a reducing catalytic component such as rhodium. Specific types of basic materials useful for the NAC include cesium oxide, potassium oxide, magnesium oxide, sodium oxide, calcium oxide, strontium oxide, barium oxide, and combinations thereof. The precious metal is preferably present in an amount of about 10 to about 200 g / ft 3 , e.g. 20~60g / ft 3 Alternatively, the precious metal of the catalyst is present at about 40 to about 100 g / ft 3 The composition may be characterized by an average concentration.

[0044] Under certain conditions, NH 3NO x It can be generated on an adsorption catalyst. NO x The SCR catalyst downstream of the adsorption catalyst reduces NO x In a combined system, the SCR catalyst can reduce the NH released from the NAC catalyst during a rich regeneration event. 3 The absorbed NH 3 Utilizing the NOx absorber, which passes through the NAC catalyst during normal lean operating conditions, x is selectively reduced in part or in whole.

[0045] According to another aspect of the present invention, NO in the gas x Reduction of the compound or NH 3 A method for oxidizing NO in a gas x for a period of time sufficient to reduce the concentration of the compound x A method is provided which comprises contacting a gas with a catalyst composition as described herein for catalytic reduction of a compound. In one embodiment, the nitrogen oxides are reduced by the reducing agent at a temperature of at least 100° C. In another embodiment, the nitrogen oxides are reduced by the reducing agent at a temperature of about 150° C. to 750° C. In one particular embodiment, the temperature range is 175-550° C. In another embodiment, the temperature range is 175-400° C. In yet another embodiment, the temperature range is 450-900° C., preferably 500-750° C., 500-650° C., 450-550° C., or 650-850° C. Embodiments using temperatures above 450° C. are particularly useful for treating exhaust gases from large and small diesel engines equipped with an exhaust system including a (optionally catalyzed) diesel particulate filter which is actively regenerated, for example, by injection of hydrocarbons into the exhaust system upstream of the filter, and the molecular sieve catalyst for use in the present invention is located downstream of the filter. In another embodiment, the SCR catalyst composition is incorporated onto a filter substrate. The method of the present invention includes the steps of: (a) accumulating and / or combusting soot in contact with an inlet of a catalyzed filter; and (b) preferably comprising the steps of: xand (c) introducing a nitrogenous reductant into the exhaust gas stream and then contacting the nitrogenous reductant with a catalytic filter without an intervening catalytic step involving treatment of the reductant; x NH on the adsorption catalyst 3 and preferably generates such NH as a reductant in the downstream SCR reaction. 3 (d) contacting the exhaust gas stream with a DOC to convert the hydrocarbon soluble organic fraction (SOF) and / or carbon monoxide to CO 2 and / or oxidize NO to NO 2 (e) contacting the exhaust gas with one or more flow-through SCR catalytic devices in the presence of a reductant to oxidize NO 2 in the exhaust gas to a concentration of 100% by weight of the NO 2 in the exhaust gas, which may then be used to oxidize particulate matter in a particulate filter and / or reduce particulate matter (PM) in the exhaust gas; x and (f) contacting the exhaust gas with an AMOX catalyst, preferably downstream of the SCR catalyst, to oxidize most, if not all, of the ammonia and then venting the exhaust gas to the atmosphere or passing the exhaust gas through a recirculation loop before entering / re-entering the exhaust gas into the engine.

[0046] The method can be performed on gases originating from combustion processes, such as internal combustion engines (either mobile or stationary), gas turbines, and coal or oil fired power plants. The method can also be used to treat gases from industrial processes, such as smelting, such as refinery heaters and boilers, furnaces, chemical processing industries, coke ovens, municipal waste plants, and incinerators. In a particular embodiment, the method can be used to treat exhaust gases from lean-burn internal combustion engines of vehicles, such as diesel engines, lean-burn gasoline engines, or engines powered by liquefied petroleum gas or natural gas.

[0047] According to a further aspect, the present invention provides an exhaust system for a lean-burn internal combustion engine for a vehicle, the system including a conduit for conveying flowing exhaust gas, a source of nitrogen reductant, and a catalyst composition as described herein. The system may include means for controlling the metering means in use, whereby the catalyst composition provides catalytic NOx reduction at or above a desired efficiency, for example above 100°C, above 150°C, or above 175°C. x Nitrogenous reductants are metered into the flowing exhaust gas only when reduction is determined to be possible. The control means' determination may be assisted by one or more suitable sensor inputs indicative of engine conditions selected from the group consisting of exhaust gas temperature, catalyst bed temperature, promoter position, exhaust gas mass flow rate in the system, manifold vacuum, ignition timing, engine speed, exhaust gas lambda value, amount of fuel injected into the engine, exhaust gas recirculation (EGR) valve position and thus amount of EGR, and boost pressure.

[0048] In one particular embodiment, the metering is (preferred NO x The control means is controlled in response to the amount of nitrogen oxides in the exhaust gases, which is measured either directly (using a sensor) or indirectly. Indirect measurement is, for example, based on a predicted NOx of the exhaust gases stored in the control means. x A pre-correlated look-up table or map is used that correlates the content to any one or more of the above inputs indicative of engine condition. For nitrogenous reductant metering, a 1:1 ratio of NH 3 / NO and NH at 4:3 3 / NO 2 and can be adjusted so that 60% to 200% of the theoretical ammonia is present in the exhaust gas flowing into the SCR catalyst. The control means can include a pre-programmed processor such as an electronic control unit (ECU).

[0049] In a further embodiment, an oxidation catalyst for oxidizing nitric oxide in the exhaust gas to nitrogen dioxide can be located upstream of the location where nitrogenous reductants are metered into the exhaust gas. In one embodiment, the oxidation catalyst is configured to provide a NO to NO ratio of about 4:1 to about 1:3 at an exhaust gas temperature of, for example, 250° C. to 450° C. at the oxidation catalyst inlet. 2 The oxidation catalyst is adapted to produce a catalyst having a volume ratio of 0.1 to 0.5% by weight of the catalyst. The oxidation catalyst may include at least one platinum group metal (or some combination thereof), such as platinum, palladium, or rhodium, coated on a flow-through monolith substrate. In one embodiment, the at least one platinum group metal is platinum, palladium, or a combination of both platinum and palladium. The platinum group metal may be supported on a high surface area washcoat component, such as alumina, a zeolite, such as an aluminosilicate zeolite, silica, a non-zeolitic silica alumina, ceria, zirconia, titania, or a mixed or composite oxide containing both ceria and zirconia.

[0050] In a further embodiment, a suitable filter substrate is located between the oxidation catalyst and the catalyst composition. The filter substrate may be selected from any of those described above, for example a wall-flow filter. If the filter is catalyzed, for example with an oxidation catalyst of the type described above, then preferably the metering point for the nitrogenous reductant is located between the filter and the catalyst composition. Alternatively, if the filter is not catalyzed, the means for metering the nitrogenous reductant may be located between the oxidation catalyst and the filter.

[0051] In a further embodiment, the catalyst composition for use in the present invention is coated onto a filter located downstream of the oxidation catalyst. If the filter contains the catalyst composition for use in the present invention, the nitrogenous reductant metering point is preferably located between the oxidation catalyst and the filter.

[0052] In a further aspect, there is provided a lean-burn vehicle engine comprising an exhaust system according to the invention. The lean-burn vehicle internal combustion engine may be a diesel engine, a lean-burn gasoline engine, or an engine powered by liquefied petroleum gas or natural gas. EXAMPLES

[0053] CuCHA SAR 13 and CuCHA SAR 19: CuCHA catalysts were prepared by impregnating zeolite powder with copper(II) acetate solution to achieve Cu loadings of 2 wt.% and 3 wt.%. The resulting powders were dried at 105 °C for 3 h and then calcined at 500 °C for 2 h.

[0054] Ce was added to the CuCHA catalyst in three different ways. Incipient wetness impregnation: Ce(III) acetate solution was used to achieve Ce loadings of 0.5-3 wt.%. The powders were dried at 105°C for 3 h and then calcined at 500°C for 2 h. Wet ion exchange method: CuCHA SAR 13 catalyst was mixed with aqueous Ce(III) acetate monohydrate to achieve a Ce loading of about 0.5 wt%. The slurry was stirred at 80 °C for 4 h and then filtered. The resulting powder was washed, dried, and calcined at 500 °C for 2 h. Deposition method: colloidal CeO 2 Sol-based CeO was mixed with CuCHA catalyst to achieve 3 wt% Ce loading. 2 The sol was then filtered, dried and calcined at 500 °C for 2 h.

[0055] FIG. 1 shows the NO2 emission at 175° C. and 525° C. for each of the CHA SAR 13 benchmark catalysts after a 16-hour LHA at 850° C. x The conversion rate is shown. The results show that having more exchanged Ce provides better low-temperature conversion, while having more CeO on the surface 2 It has been demonstrated that the presence of

[0056] Figure 2 shows the CeO on the surface of the prepared catalyst. 2 Shows.

[0057] FIG. 3 shows that exchanged Ce improves framework stability.

Claims

1. 1. A method for preparing a catalyst composition, comprising: a. exchanging rare earth elements into a molecular sieve; b. incorporating a promoter metal into a molecular sieve; Including, The rare earth element exchange step and the promoter metal introduction step are carried out as separate steps; the rare earth element is exchanged into the molecular sieve by ion exchange; The method wherein the molecular sieve has an SAR of 12 to 40.

2. 10. The method of claim 1, wherein the rare earth element is exchanged into the molecular sieve prior to incorporating the promoter metal.

3. 10. The method of claim 1, wherein the promoter metal is incorporated into the molecular sieve prior to exchanging the rare earth element.

4. 10. The method of claim 1, wherein the promoter metal is incorporated into the molecular sieve by ion exchange.

5. The method of claim 1 , wherein the rare earth element comprises cerium.

6. The method of claim 1 wherein the promoter metal comprises copper.

7. 10. The method of claim 1, wherein the catalyst composition comprises the rare earth element in an amount of from about 0.5 to about 5 weight percent of the catalyst composition.

8. 10. The method of claim 1, wherein the catalyst composition comprises the promoter metal in an amount of from about 0.5 to about 6 weight percent of the catalyst composition.

9. 10. The method of claim 1, wherein the promoter metal comprises copper and the catalyst composition has an atomic ratio of Cu:Al of 0.2 to 0.

45.

10. A catalyst composition prepared by the method of claim 1.

11. A method for preparing the catalyst composition of claim 1, comprising: The method a. first incorporating cerium into a molecular sieve having a CHA framework by ion exchange to prepare a cerium-exchanged CHA molecular sieve; b) then incorporating copper into the cerium-exchanged CHA to prepare a cerium-exchanged, copper-promoted CHA molecular sieve.

12. 12. The method of claim 11, wherein the molecular sieve has an SAR of about 12 to about 25.

13. A catalytic composition comprising a rare earth-exchanged metal-promoted molecular sieve.

14. 14. The catalyst composition of claim 13, wherein the molecular sieve comprises a small pore molecular sieve.

15. 14. The catalyst composition of claim 13, wherein the molecular sieve comprises CHA.

16. 14. The catalyst composition of claim 13, wherein the rare earth element is present in an amount of from about 0.5 to about 5 weight percent of the catalyst composition.

17. 14. The catalyst composition of claim 13, wherein the promoter metal is present in an amount of from about 0.5 to about 6 weight percent of the catalyst composition.

18. 14. The catalyst composition of claim 13, wherein the promoter metal comprises copper and the catalyst composition has an atomic ratio of Cu:Al of 0.2 to 0.45.