Palladium immobilization and low unused oxygen storage capacity using tannic acid as complexing and reducing agent

JP2024522426A5Inactive Publication Date: 2025-06-16JOHNSON MATTHEY PLC
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Patent Information

Application Number
JP2023560064
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2021-06-10
Filing Date
2022-06-08
Publication Date
2025-06-16
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Conventional three-way catalysts (TWCs) face limitations in controlling PGM particle size and distribution, leading to instability in oxygen storage capacity (OSC) and increased sintering, which affects emission reduction efficiency and catalyst performance over time.

Method used

A method involving a polyphenol-palladium complex is applied to a carrier material, forming nanoparticles on a substrate through a simplified 'one-pot' process, enhancing PGM fixation and distribution, resulting in stable OSC and improved catalytic activity.

Benefits of technology

The method produces catalyst articles with uniform PGM nanoparticle distribution, maintaining high catalytic activity and OSC stability, allowing for lower PGM loadings and reduced sintering, thus enhancing emission reduction efficiency and reducing costs.

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Abstract

A method for producing a catalyst article, the method comprising: providing a complex of a polyphenol and a PGM, wherein the polyphenol comprises an ester functional group and the PGM comprises palladium; providing a support material; applying the complex to the support material to form a supported support material; disposing the supported support material on a substrate; and heating the supported support material to form nanoparticles of the PGM on the support material.
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Description

[Technical field]

[0001] The present invention relates to a method for producing a catalytic article, a catalytic article obtainable by this method, an emission treatment system, and a method for treating exhaust gases. [Background technology]

[0002] Three-way catalysts (TWCs) are used to remove CO, HC and NO from the exhaust gas of a gasoline engine at a stoichiometric air-fuel ratio. x to harmless compounds (about 98%). Specifically, the oxidation of CO and HC to CO2 and water vapor (HO) is primarily catalyzed by Pd, while NO x The reduction of N2 to N2 is primarily catalyzed by Rh. Modern TWCs use supported platinum group metal (PGM) catalysts (Pd, Rh, Pt, etc.) deposited on single, bi- or multi-layer supports, with the support material consisting of high surface area metal oxides, primarily stabilized gamma alumina, and ceria-containing oxygen storage materials. The supported catalysts are washcoated onto ceramic monolith substrates.

[0003] Conventional preparation of TWC washcoat slurries generally involves depositing the PGM elements onto oxide supports by incipient wetness or wet impregnation using solutions of inorganic PGM precursors, such as nitrates, acetates, hydroxides or chlorides. Promoter salts are often added to the washcoat formulation to enhance TWC performance. Once the monolith substrate is washcoated with the as-prepared slurry, drying and calcination steps are subsequently performed to decompose the inorganic salts and fix the PGMs and promoter elements onto the support material. It is known that the performance of supported metal catalysts depends on the structure and composition of the metal nanoparticles and the nature of the support. Conventional TWCs prepared using the above methods often offer limited control over the structure of the catalytically active species (i.e., average PGM particle size and composition, location of the active components, and metal-support interactions). This is mainly due to metal migration and particle growth during the high-temperature calcination process.

[0004] With the ever-increasing environmental regulations, TWCs with higher emission reduction efficiency are required. Meanwhile, with the increasing PGM cost, there is an urgent need to reduce the PGM loading without TWC performance. Better control of PGM particle size and metal-support interaction is essential to optimize TWC performance. Furthermore, a homogenized PGM particle size distribution can contribute to reducing the degree of metal sintering due to Ostwald ripening, which often occurs during the fuel cut-off process, an engine strategy used to improve fuel economy. Also, for Pd-based TWCs with Ba component as additive, it is important to control the location of both palladium and barium to optimize the synergistic interaction with active Pd, additive species and support components. Furthermore, in catalyst articles prepared by conventional methods, any additional oxygen storage capacity (OSC) that may be provided by Pd is very unstable, i.e., it is very high when unused, but decreases substantially after aging. This is believed to be due in part to sintering of Pd and / or migration of Pd during aging, which in conventional methods is generally not very tightly fixed to the support material, e.g., thereby deactivating the OSC effect of the supported Pd.

[0005] Catalytic light-off is the minimum temperature required to initiate a catalytic reaction. Specifically, the light-off temperature is the temperature at which 50% conversion is reached. There is a need for catalyst articles with lower light-off temperatures.

[0006] US 2012 / 0077669(A1) describes the polymer-assisted synthesis of supported metal catalysts for automotive applications. The polymers used in the examples include poly(vinylpyrrolidone), poly(acrylic acid), and poly(ethyleneimine). In the described synthesis procedure, a support (alumina powder) is first impregnated with a polymer-containing aqueous solution. The impregnated support is then separated from the solution by filtration and drying steps. The dried impregnated support is further impregnated with a PGM precursor solution by incipient wetness impregnation. The described process involves multiple steps for the formation of the claimed supported metal catalysts, which increases the cost and difficulty for commercial-scale production. US 2012 / 0077669(A1) indicates that lean-burn engines, such as diesel engines or lean-burn gasoline engines, are preferably used to apply the technology. Summary of the Invention

[0007] One aspect of the present disclosure relates to a method of making a catalytic article, the method including providing a complex of a polyphenol and a PGM, where the polyphenol comprises an ester functional group and the PGM comprises palladium, providing a support material, applying the complex to the support material to form a supported support material, disposing the supported support material on a substrate, and heating the supported support material to form nanoparticles of the PGM on the support material.

[0008] Another aspect of the present disclosure relates to a catalyst article obtainable by the method of the first aspect.

[0009] The present invention also includes an exhaust system for an internal combustion engine, comprising the catalytic article of the second aspect.

[0010] Another aspect of the present disclosure relates to a method of treating an exhaust gas, the method comprising providing the catalytic article of the second aspect and contacting the catalytic article with the exhaust gas. [Brief description of the drawings]

[0011] [Figure 1a] EPMA mapping images of Pd in ​​Reference Example 1 are shown. [Figure 1b] 1 shows an EPMA mapping image of Pd in ​​Example 1. [Figure 1c] 1 shows an EPMA mapping image of Pd in ​​Example 2. [Figure 1d] 1 shows an EPMA mapping image of Pd in ​​Example 3. [Figure 1e] 1 shows an EPMA mapping image of Pd in ​​Example 4. [Figure 2a] 1 shows an EPMA mapping image of Ba in Reference Example 1. [Figure 2b] 1 shows an EPMA mapping image of Ba in Example 1. [Figure 2c] 1 shows an EPMA mapping image of Ba in Example 2. [Figure 2d] 1 shows an EPMA mapping image of Ba in Example 3. [Figure 2e] 1 shows an EPMA mapping image of Ba in Example 4. [Diagram 3] 1 shows element correlations (Pd-Ba, Pd-Al, and Pd-Ce) extracted from EPMA images of the Pd-TWC washcoats of Reference Example 1 and Examples 1 to 4. [Figure 4] The oxygen storage capacity (OSC) of virgin and aged Pd-TWC without and with tannic acid modification is shown. [Figure 5a] 1 shows the results of NOx conversion rates in perturbation ignition performance tests for Reference Example 1 and Examples 1 to 4. [Figure 5b] 1 shows the results of CO conversion rates in perturbation ignition performance tests for Reference Example 1 and Examples 1 to 4. [Figure 5c] 1 shows the results of THC conversion rates in perturbation ignition performance tests for Reference Example 1 and Examples 1 to 4. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0012] The present invention aims to address at least some of the problems associated with the prior art, or at least to provide a commercially acceptable alternative solution.

[0013] In a first aspect, the present invention provides a method of making a catalyst article, the method comprising: providing a complex of a polyphenol and a PGM, the polyphenol comprising an ester functional group and the PGM comprising palladium; Providing a support material; applying the complex to a support material to form a supported support material; placing the supported support material on a substrate; and heating the supported support material to form nanoparticles of the PGMs on the support material.

[0014] Each aspect or embodiment defined in this specification may be combined with any other aspect or embodiment, unless expressly indicated otherwise. In particular, any feature indicated as being preferred or advantageous may be combined with any other feature indicated as being preferred or advantageous.

[0015] Surprisingly, when used in an emission treatment system, the catalyst article produced by the method of the present invention may exhibit favorable catalytic activity, particularly favorable three-way catalytic activity. For example, the catalyst article may exhibit favorable light-off performance, particularly NO, CO and total hydrocarbon conversion, during three-way catalytic emission reduction of a stoichiometric gasoline engine. Such favorable catalytic activity and light-off performance may be superior to that exhibited by conventional catalyst articles having the same / similar PGM type(s), loading(s), support(s), and configuration(s). The catalyst article may be more durable compared to conventional catalyst articles. In other words, such favorable catalytic activity may be exhibited even after aging.

[0016] Advantageously, such superior performance can facilitate the use of lower loadings of PGMs compared to conventional catalyst articles without compromising catalytic performance, which can be beneficial given the high cost of such metals, such as palladium. Furthermore, such superior performance can facilitate partial / complete replacement of high cost PGMs with lower cost PGMs or other transition metals without compromising catalytic performance.

[0017] Without being bound by theory, it is hypothesized that such superior performance may be provided by the favorable particle size distribution of the PGM nanoparticles on the support material. During PGM-polyphenol complex formation, the ions of the PGMs can react with the ester functional groups, and the same predictable amount of PGM ions is "taken up" by each polymer unit structure. The total amount of PGM "taken up" is determined by the molecular structure / size of the polymer and the PGM-polyphenol coordination ratio. Each complex can then react / interact with surface functional groups (e.g., hydroxyl groups) or surface charges to allow the PGM-polyphenol complexes to "anchor" onto the support material surface. The "anchor" PGM-polyphenol complexes can be separated due to the steric effect of the polymer and the available amount of surface functional groups / charges of the support material. The interaction between the complexes and the support material functional groups may increase the PGM uptake by the support compared to catalysts prepared by traditional methods. Without wishing to be bound by theory, it is hypothesized that such uniform separation may result in a narrower particle size distribution (more uniform particle size) of the PGM nanoparticles upon heating (calcination), which in turn may result in less excessive agglomeration and / or sintering of the PGM particles during aging and / or fuel cut events. In other words, a more sintering resistant catalyst article can be obtained by using the method of the present invention compared to conventional catalysts.

[0018] When used in an emission treatment system, such a catalyst article can surprisingly provide a lower oxygen storage capacity (OSC) and a smaller OSC difference between a fresh catalyst article and an aged catalyst article. For example, due to the relatively low activity of Pd compared to Rh, a high loading of Pd (e.g., compared to Rh) is generally required in such catalyst articles for TWC applications. In addition to any OSC effect of the support material, for example, this large amount of Pd can also contribute to the OSC effect. Without wishing to be bound by theory, this is believed to be due to the reversible conversion between Pd and Pd oxide at engine operating temperatures. However, the OSC effect of Pd is very unstable, i.e., it is very high when fresh, but drops substantially after aging. This is believed to be partially due to sintering of Pd and / or migration of Pd during aging, which is generally not very firmly fixed to the support material in conventional methods, for example, thereby deactivating the OSC effect of the supported Pd.

[0019] However, as described herein, the method of the present invention can provide improved Pd immobilization and Pd distribution. Advantageously and surprisingly, it has been found that this can result in a catalyst article having a smaller OSC difference between a fresh catalyst article and an aged catalyst article, which is believed to be due to, for example, the more stable OSC ability of the Pd support. In other words, the OSC effect of the catalyst article can be more stable throughout its life, even after aging. This can be highly desirable in practice, at least since engine calibration (i.e., the feedback loop between the engine and the exhaust system to control the air-fuel ratio) is usually performed using a fresh catalyst article and is not recalibrated after aging or throughout the life of the vehicle. Thus, any difference between the OSC ability of a fresh catalyst article and that of an aged catalyst article can reduce the performance of the engine and exhaust system, and thus can result in a reduced efficiency of emission reduction in the exhaust system. Therefore, if the difference between the unused OSC capacity and the aged OSC capacity of the catalyst article is minimized, the calibration between the engine and exhaust system can remain more accurate throughout the life of the vehicle, thereby helping to improve the efficiency of emission reduction throughout the life of the vehicle, even after aging.

[0020] Furthermore, due to the improved fixation of Pd to the support material that may be provided by the method of the present invention, significantly less wicking of Pd or washcoat layers through the substrate and / or mixing of the washcoat layers may be observed. In other words, the catalyst articles produced by the method of the present invention may exhibit stronger / more secure fixation of the PGMs to the support material compared to catalyst articles produced by conventional methods. Thus, the catalyst articles produced by the method of the present invention may exhibit improved catalytic activity as well as improved aesthetics in such catalyst articles. This is at least because mixing of catalytically active PGMs between any separate washcoat layers in the catalyst article may be reduced, thereby reducing the likelihood that any of the washcoat layers will be deactivated. This, in turn, may help to maintain the catalytic activity of the entire catalyst article high as intended when the catalyst article is unused and after aging. Keeping the PGMs of any separate washcoat layers within their intended respective layers may be important to maintain their respective intended catalytic purpose (e.g., either oxidation or reduction). For example, it is known that direct interactions between Pd and Rh can reduce the catalytic activity of the individual components, especially the catalytic function of the Rh component.

[0021] Furthermore, depending on the order of steps and the order of addition of the support materials, the method of the present invention can be used to immobilize a PGM, e.g., Pd, to any standard support material. In other words, if there are multiple different support materials in the washcoat, the method of the present invention can be used to target the PGM, e.g., Pd, to the desired support material by controlling the order of steps, e.g., whether the support material is first combined with a PGM precursor or with a complex of polyphenol and PGM.

[0022] Compared with the method of US2012 / 0077669(A1), the method of the present invention is a simpler and more efficient "one-pot" method, e.g., no pH adjustment is required. The method of the present invention does not require separate impregnation, filtration, and drying steps to deposit polymer molecules on the support material. By using the method of the present invention, the occurrence of polymer-support and PGM-polymer interactions can be increased, since each added polymer molecule is available for interaction. In contrast, in US2012 / 0077669(A1), only a limited amount of polymer can remain on the support after the filtration and washing steps. Furthermore, the catalyst article prepared by the method of the present invention can be used, in particular, as a three-way catalyst for stoichiometric gasoline emission reduction. In contrast, the catalyst article produced by the method of US2012 / 0077669(A1) has particular application in lean-burn diesel or gasoline engines.

[0023] The term "catalyst article" as used herein may include an article on or in which a catalyst is supported. The article may take the form of, for example, a honeycomb monolith, or a filter, such as a wall-flow filter or a flow-through filter. The catalyst article may be for use in an emission treatment system, particularly an emission treatment system for a gasoline engine, preferably a stoichiometric gasoline engine. The catalyst article may be for use in three-way catalysis.

[0024] Providing a complex of a polyphenol and a PGM typically involves providing the complex in a solution, for example an aqueous or alcoholic solution. Providing a complex of a polyphenol and a PGM typically involves mixing an inorganic PGM precursor in pure form or in solution with a polyphenol in an aqueous medium, for example mixing nitrate PGM with a polyphenol in water.

[0025] The term "polyphenol" as used herein includes polymers containing several hydroxyl groups on aromatic rings. Polyphenols are generally moderately water-soluble compounds. Polyphenols may be natural or synthetic, but in the present invention, they are preferably naturally occurring, to make the process more environmentally friendly. The term "polyphenol" as used herein may include polymers having a weight average molecular weight of 500-4,000 g / mol, 13 or more hydroxyl groups, and 5-7 aromatic rings per 1,000 g / mol. Polyphenols may be, for example, phenolic acids (e.g., tannic acid, caffeic acid), flavonoids (e.g., flavones, flavonols, flavanols, flavanones, isoflavones), stilbenes, or lignin (polyphenols derived from phenylalanine, found in flaxseed and other cereals).

[0026] The polyphenol comprises an ester functionality, typically a carboxylic acid ester functionality. The polyphenol preferably comprises two or more ester and / or carboxylic acid ester functional groups. The term "ester functionality" or "carboxylic acid ester functionality" may include a carboxyl group bonded to an OR group, i.e. a functionality comprising:

[0027] [ka]

[0028] The PGMs include palladium. Palladium may be particularly suitable for performing three-way catalysis. In addition, palladium is expensive, which means that it is advantageous to be able to provide a similar level of catalytic activity for the same amount of metal. Furthermore, the use of palladium in the method of the present invention may result in particularly favorable perturbation ignition performance. The PGMs may be in the form of alloys. In addition to palladium, the PGMs may include other PGMs, such as one or more of rhodium, platinum, ruthenium, osmium, and iridium.

[0029] The complexes may have a ratio of PGM atoms to ester groups of from 2:1 to 1:10, preferably from 1:1 to 1:8, more preferably from 1:2 to 1:5. The complexes may have a ratio of palladium atoms to ester groups of from 2:1 to 1:10, preferably from 1:1 to 1:8, more preferably from 1:2 to 1:5.

[0030] The support material may be any material capable of supporting the complexes and nanoparticles thereon or therein. The support material may take any form, but is typically in the form of a powder, more typically a high surface area powder. When the method of the present invention is used to prepare a catalyzed filter, such as a wall-flow filter or a flow-through filter, the support material will typically be in the form of a powder having a D50, e.g., of 0.1 to 30 μm, more typically of 0.5 to 25 μm, and even more typically of 1 to 20 μm, as measured using TEM. Such particle size may promote desirable rheological properties of the slurry used to coat the filter. The support material may function as a washcoat. The support material may be the washcoat or may be part of the washcoat.

[0031] The support material may also function as an oxygen storage material to store and release oxygen under fuel-lean and fuel-rich conditions, respectively, to promote three-way catalytic conversion.

[0032] The application of the complex to the support material typically involves contacting the complex with the support material in the presence of a solvent, typically water, to produce a slurry. The term "slurry" as used herein can include a liquid containing insoluble materials, e.g., insoluble particles. The slurry may include (1) the solvent, (2) soluble contents, e.g., unreacted polyphenol polymer, inorganic PGM and cocatalyst precursor, and PGM-polymer complex (outside the support), and (3) insoluble contents, e.g., support particles that may or may not interact with the polymer and metal precursor. The slurry is typically stirred, more typically for at least 10 minutes, more typically for at least 30 minutes, and even more typically for at least 1 hour. The amount of complex supported on the support material can be increased by increasing the contact time and / or stirring time.

[0033] As used herein, the term "supported support material" can include support materials having PGM-polyphenol complexes supported thereon (e.g., on the surface of a high surface area metal oxide support material) and / or supported therein (e.g., within the pores of a zeolite support material). The complexes are typically immobilized on the support by, for example, electrostatic forces, hydrogen bonding, coordination bonds, covalent bonds, and / or ionic bonds. For example, in the case of oxides, ester functional groups in the polyphenols (e.g., carboxylate functional groups) and surface hydroxyl groups on the support can interact via electrostatic forces or hydrogen bond formation.

[0034] The term "substrate" as used herein may include, for example, ceramic or metal honeycombs, or filter blocks, such as wall-flow or flow-through filters. Substrates may include ceramic monolith substrates. Substrates may vary in their material composition, size and configuration, cell shape and density, and wall thickness. Suitable substrates are well known in the art.

[0035] The placement of the supported carrier material on the substrate can be performed using techniques known in the art. Typically, the supported carrier material is placed on the substrate by pouring a slurry of the supported carrier material into the inlet of the substrate in a predetermined amount using a specific forming tool. Subsequent vacuum and drying steps may be used during the placement step, as discussed in more detail below. If the carrier is a filter block, the supported carrier material may be placed on the filter wall, within the filter wall (if porous), or both.

[0036] Heating of the supported support material is typically carried out in an oven or furnace, more typically in a belt or static oven or furnace, typically in a specific flow of hot air from one direction. Heating may include calcination. Heating may also include drying. The drying and calcination steps may be continuous or sequential. For example, a separate washcoat may be applied after the substrate has already been washcoated and dried together with the previous washcoat. The washcoated substrate may also be dried and calcined using one continuous heating program once coating is complete. During heating, the complex may at least partially, substantially or completely decompose. In other words, the ligands of the complex, i.e., the polyphenols, are at least partially, substantially or completely removed or separated from the PGM and removed from the final catalyst article. The particles of PGM so separated can then begin to form metal-metal and metal-oxide bonds. As a result of heating (calcination), the substrate is typically substantially free of polyphenols, more typically completely free of polyphenols.

[0037] The term "nanoparticle" as used herein can include particles having a diameter of 0.01 nm to 100 nm as measured by TEM. Nanoparticles can be of any shape, e.g., spheres, plates, cubes, cylinders, hexagons, or rods, but are typically spherical. The maximum dimension of a nanoparticle (i.e., the diameter if the nanoparticle is spherical), as measured by TEM, is typically 0.5 to 10 nm, more typically 1 to 5 nm.

[0038] After the heating step, the substrate is typically cooled, more typically to room temperature, typically in air with or without a coolant / cooling medium, typically without a coolant.

[0039] The polyphenol preferably comprises tannic acid. The term "tannic acid" as used herein may include mixtures of polygalloyl glucose or polygalloyl quinic acid esters with the number of galloyl moieties per molecule ranging from 2 to 12, depending on the plant source used to extract the tannic acid. Tannic acid may be a natural phenolic compound and may be extracted from the bark of oak, hemlock, chestnut and mangrove trees, certain sumac leaves, and the fruits of many plants, among others. The term "tannic acid" as used herein may include compounds consisting of a central glucose ring and 10 galloyl groups, i.e., decagalloyl glucose, as shown by the following structural formula:

[0040] [ka]

[0041] Such compounds have the IUPAC name 1,2,3,4,6-penta-O-{3,4-dihydroxy-5-[(3,4,5-trihydroxybenzoyl)oxy]benzoyl}-D-glucopyranose or 2,3-dihydroxy-5-({[(2R,3R,4S,5R,6R)-3,4,5,6-tetrakis({3,4-dihydroxy-5-[(3,4,5-trihydroxyphenyl)carbonyloxy]phenyl}carbonyloxy)oxan-2-yl]methoxy}carbonyl)phenyl 3,4,5-trihydroxybenzoate. Each of the five hydroxyl groups of the glucose molecule is esterified with a molecule of digallic acid.

[0042] Tannic acid may coordinate with metal ions through hydrogen bonds or covalent bonds. The PGM-tannic acid complex may be immobilized on a support, such as a metal oxide support, in a washcoat, and the carboxylate functional groups in the tannic acid ligand and the surface hydroxyl groups on the support may interact through electrostatic forces or hydrogen bond formation.

[0043] Because tannic acid is naturally occurring, its use to form PGM complexes may be more environmentally friendly compared to the use of other non-naturally occurring ligands. Tannic acid preferably has a decomposition point in the range of 210-215°C. It is also water soluble (1g of tannic acid dissolves in 0.35ml of water at standard temperature and pressure). The use of tannic acid may result in particularly favorable perturbation ignition performance.

[0044] The polyphenols preferably have a weight average molecular weight M of 500 to 4,000, more preferably 1,000 to 2,000 g / mol, and even more preferably 1,600 to 1,800 g / mol, as measured by light scattering. w The weight average molecular weight Mw is expressed by the following formula:

[0045]

number

[0046] The polyphenol preferably has a number average molecular weight M of 500 to 4,000 g / mol as measured by gel permeation chromatography (GPC). n The number average molecular weight M w is expressed by the following formula:

[0047]

number

[0048] The PGM comprises palladium. Preferably, the PGM consists essentially of palladium, more preferably consists of palladium. Palladium is a particularly expensive PGM and forms a particularly suitable complex with polyphenols, especially tannic acid. The use of such metals in the method of the present invention can result in particularly favorable perturbation ignition performance. The PGM may comprise primarily palladium, i.e., at least 50% by weight of palladium, typically at least 80% by weight of palladium, more typically at least 95% by weight of palladium, and even more typically at least 99% by weight of palladium, based on the total weight of the PGM.

[0049] After heating the loaded support material, the substrate preferably has a coating weight of 50 g / ft 3 ~200g / ft 3 PGM, more preferably 80g / ft 3 ~150g / ft 3 In other words, the concentration of PGM applied to the substrate via the supported support material is such that after heating the supported support material, the substrate contains 50 g / ft 3 ~200g / ft 3 PGM, more preferably 80g / ft 3 ~150g / ft 3 The concentration of PGM on the substrate may be such that it contains 50 g / ft 2 or more of PGM. Obtaining such a loading of PGM on the substrate would be readily accomplished by one skilled in the art, for example, by using either a higher or lower concentration of polyphenol-PGM complex and / or a higher or lower PGM atom to ester group ratio. In other words, it is well within the ability of one skilled in the art to provide a substrate with a desired level of PGM loading via the method of the present invention. For example, 50 g / ft 2 or more of PGM on the substrate may be obtained by using a polyphenol-PGM complex having a higher or lower concentration and / or a higher or lower PGM atom to ester group ratio. 3 ~200g / ft 3 PGM, more preferably 80g / ft 3~150g / ft 3 may be applied to the support material in a process where the complex is applied to the support material to form a supported support material.

[0050] The support material comprises an oxide, preferably one or more of Al2O3 (aluminum oxide or alumina), SiO2, TiO2, CeO2, ZrO2, CeO2-ZrO2, V2O5, La2O3 and zeolites. The oxide is preferably a metal oxide. The support material more preferably comprises alumina, even more preferably gamma-alumina. The support material preferably comprises ceria-zirconia. The support material preferably comprises alumina and ceria-zirconia. The alumina and / or ceria-zirconia are preferably doped, more preferably with one or more oxides of lanthanum, neodymium, yttrium, niobium, praseodymium, hafnium, molybdenum, titanium, vanadium, zinc, cadmium, manganese, iron, copper, calcium, barium, strontium, cesium, magnesium, potassium or sodium, even more preferably with oxides of lanthanum, neodymium or yttrium. Such doped oxides are particularly useful as support materials. Preferably, the dopant is present in the alumina and / or ceria-zirconia in an amount of from 0.001% to 20% by weight, more preferably from 0.5% to 10% by weight.

[0051] The support material is preferably in the form of a powder having a D90 of 0.1 to 25 μm, more preferably 0.5 to 5 μm.

[0052] The supported support material is preferably disposed on the substrate in the form of a slurry, which is particularly effective in disposing the material on the substrate, particularly to maximize gas diffusion and minimize pressure drop during catalytic conversion.

[0053] Providing the complex of polyphenol and PGM preferably comprises synthesizing the complex in situ in the slurry.

[0054] The slurry preferably comprises contacting a PGM salt with a polyphenol in water to form a complex of the polyphenol with the PGM in an aqueous solution, the PGM salt comprising palladium; applying the complex to the support material by contacting the support material with an aqueous solution to form a supported support material; Optionally, it is prepared by a method comprising adding one or more of an oxygen storage material, preferably ceria-zirconia, a promoter salt, a binder, an acid or base, a thickener, and a reducing agent to the aqueous solution. The optional step of adding one or more of an oxygen storage material, preferably ceria-zirconia, a promoter salt, a binder, an acid or base, a thickener, and a reducing agent to the aqueous solution may be performed during any of the steps of the preferred method of preparing the slurry.

[0055] In an alternative preferred embodiment, the slurry comprises: contacting the support material with an aqueous solution of a PGM salt to form a slurry comprising the support material loaded with a PGM salt, the PGM salt comprising palladium; applying a polyphenol and PGM complex to the support material by contacting a slurry comprising the PGM salt-loaded support material with a polyphenol in water to form a loaded support material; Optionally, it may be prepared by a process comprising adding one or more of an oxygen storage material, preferably ceria-zirconia, a promoter salt, a binder, an acid or base, a thickener, and a reducing agent to an aqueous solution or slurry comprising the PGM salt-loaded support material. The optional step of adding one or more of an oxygen storage material, preferably ceria-zirconia, a promoter salt, a binder, an acid or base, a thickener, and a reducing agent to the aqueous solution may be performed during any of the steps of the preferred process for preparing the slurry, but is preferably performed during each step in which the support material is provided.

[0056] Preferably, in each alternative method for preparing the slurry, the step of contacting the PGM salt with the polyphenol in water, and the step of contacting the slurry comprising the PGM salt-loaded support material with the polyphenol in water, include allowing sufficient reaction time for complex formation between the polyphenol and the PGM cations to occur, for example, such steps are typically carried out for at least 10 minutes, more typically at least 30 minutes, and even more typically at least 1 hour, preferably with stirring. Without wishing to be bound by theory, it is believed that in the second alternative method for preparing the slurry, the step of applying a complex of the polyphenol and the PGM to the support material to form a loaded support material by contacting the slurry comprising the PGM salt-loaded support material with the polyphenol in water may be followed by subsequent reduction and precipitation of the PGM metal species on the support material.

[0057] In other words, the method of preparing the slurry may involve first providing a complex of polyphenol and PGM in an aqueous solution followed by adding the carrier and other optional ingredients, or it may involve first adding the carrier material and other optional ingredients to an aqueous solution of the PGM precursor (i.e., PGM salt) followed by adding the polyphenol.

[0058] Such a "one-pot" preparation method can be simplified and less costly than conventional methods, and can also maximize polymer utilization.

[0059] In other words, the steps of providing a complex of a polyamine and a PGM, providing a support material, applying the complex to the support material to form a supported support material, and disposing the supported support material on a substrate, can be performed by: contacting a PGM salt with a polyphenol in water to form a complex of the polyphenol with the PGM in an aqueous solution, the PGM salt comprising palladium; adding the support material to an aqueous solution to form a slurry of supported support material; Optionally, adding one or more of an oxygen storage material, preferably ceria-zirconia, a promoter salt, a binder, an acid or base, a thickener, and a reducing agent to the slurry; and disposing the slurry on a substrate.

[0060] Alternatively, the steps of providing a complex of a polyphenol and a PGM, providing a support material, applying the complex to the support material to form a supported support material, and disposing the supported support material on a substrate can be performed by: contacting the support material with an aqueous solution of a PGM salt to form a slurry comprising the support material loaded with a PGM salt, the PGM salt comprising palladium; adding a polyphenol to a slurry comprising a PGM salt-loaded support material to form a slurry of loaded support material; Optionally, adding one or more of an oxygen storage material, preferably ceria-zirconia, a promoter salt, a binder, an acid or base, a thickener, and a reducing agent to the aqueous solution or slurry comprising the PGM salt-loaded support material; and disposing the slurry on a substrate.

[0061] The support may include a washcoating.

[0062] The slurry preferably has a solids content of 10-40%, preferably 15-35%. Such solids content may allow suitable slurry rheology for disposing the supported carrier material on the substrate. For example, if the substrate is a honeycomb monolith, such solids content may allow deposition of a thin layer of washcoat on the inner wall of the substrate. If the substrate is a wall-flow filter, such solids content may allow the slurry to enter the channels of the wall-flow filter and may allow the slurry to enter the walls of the wall-flow filter.

[0063] Preferably, the slurry comprises: an oxygen storage material, preferably ceria-zirconia; cocatalyst salt, Binder, Acid or base, Thickeners, and Further comprising one or more of the following reducing agents:

[0064] The promoter may include, for example, a non-PGM transition metal element, a rare earth element, an alkali or alkaline earth group element, and / or a combination of two or more of the above elements in the same or different groups of the periodic table. The promoter salt may be a salt of such an element. A particularly preferred promoter is barium, the particularly preferred salts of which are barium acetate, barium citrate, and barium sulfate, or combinations thereof, more preferably barium citrate.

[0065] The binder may include, for example, an oxide material having a small particle size to bind together individual insoluble particles in the washcoat slurry. The use of binders in washcoats is well known in the art.

[0066] The thickener may include, for example, a natural polymer with functional hydroxyl groups that interact with insoluble particles in the washcoat slurry. It serves the purpose of thickening the washcoat slurry for improved coating profile during washcoat coating on a substrate. The thickener is usually baked off during washcoat baking. Examples of specific thickeners / rheology modifiers for washcoats include glactoma gum, guar gum, xanthan gum, curdlan schizophyllan, scleroglucan, diutan gum, wheylan gum, hydroxymethylcellulose, carboxymethylcellulose, hydroxyethylcellulose, methylcellulose, methylhydroxyethylcellulose, methylhydroxypropylcellulose, and ethylhydroxycellulose.

[0067] The term "reducing agent" as described herein may include compounds capable of reducing PGM cations to their reduced or even metallic state particles in situ during washcoat preparation.

[0068] Organic acids can be added to act as reducing agents for the PGMs and / or create a reducing environment at ambient or elevated temperatures (<100° C.) for a specific period of time during washcoat preparation. Examples of suitable organic acids can include citric acid, succinic acid, oxalic acid, ascorbic acid, acetic acid, formic acid, and combinations thereof.

[0069] In a preferred embodiment, the support material comprises alumina and the slurry further comprises ceria-zirconia. In another preferred embodiment, the support material comprises ceria-zirconia and the slurry further comprises alumina. In another preferred embodiment, the support material comprises alumina and ceria-zirconia.

[0070] The method preferably further comprises disposing a further slurry on the substrate, the further slurry comprising one or more of a further support material, an oxygen storage material, a promoter salt, a binder, an acid or base, a thickener, and a reducing agent, prior to disposing the support material on the substrate and / or after heating the supported support material to form nanoparticles of PGM on the support material. This can result in a catalyst article having multiple layers of different washcoats, for example a bottom washcoat containing, inter alia, palladium nanoparticles supported on alumina, and a top washcoat containing, inter alia, palladium nanoparticles supported on alumina. Further examples of such multiple layers are discussed in more detail below.

[0071] Placing the supported support material on the substrate preferably includes contacting a slurry with the substrate (e.g., injecting the slurry into an inlet of the substrate) and, optionally, applying a vacuum to the substrate; and / or Drying the slurry on the substrate.

[0072] This can result in a preferred distribution of the supported support material on the substrate.

[0073] Drying is preferably carried out as follows: At a temperature between 60°C and 200°C, preferably between 70°C and 130°C, and / or 10 to 360 minutes, preferably 15 to 60 minutes.

[0074] The substrate may be a "blank", i.e., an unwashcoated substrate. Alternatively, the substrate may have one or more washcoats already supported thereon. In such a situation, the final catalyst article may include multiple layers of different washcoats.

[0075] The substrate preferably comprises cordierite. Cordierite substrates are particularly suitable for use in catalytic articles.

[0076] The substrate is preferably in the form of a honeycomb monolith, a wall-flow filter or a flow-through filter.

[0077] The heating is preferably carried out as follows: At a temperature of 400°C to 700°C, preferably 400°C to 600°C, more preferably 450°C to 600°C, and / or The reaction is carried out for 10 to 360 minutes, preferably 35 to 120 minutes.

[0078] Lower temperatures and / or shorter heating times may result in insufficient decomposition of the complexes and / or high levels of polyphenols may remain in the substrate. Higher temperatures and / or longer heating times may result in particles of PGMs with undesirably large particle sizes, possibly due to sintering. Higher temperatures and longer heating times may also result in damage to the catalyst article.

[0079] Heating preferably includes calcining. As used herein, the term "calcining" may include a heat treatment process in the absence or limited supply of air or oxygen to cause pyrolysis.

[0080] The nanoparticles preferably have a D50 of 0.1 nm to 30 nm, more preferably 0.5 to 25 nm, and even more preferably 1 to 20 nm. D50 can be measured by TEM. Such particle size can provide a preferred level of catalytic activity.

[0081] In a further aspect, the present invention provides a catalyst article obtainable by the methods described herein, the catalyst article being for use in an emission treatment system.

[0082] Compared to conventional catalyst articles, catalyst articles obtainable by the methods described herein can contain PGM particles having advantageously larger particle size and favorable particle size distribution (e.g., D50 of 1-20 nm) at each virgin stage. Furthermore, compared to conventional catalyst articles, catalyst articles obtainable by the methods described herein can exhibit a more uniform distribution of PGM particles throughout the substrate.

[0083] When used in emissions treatment systems, the catalytic articles can exhibit favorable light-off performance, particularly for NO, CO, and total hydrocarbons, during three-way catalytic conversion for stoichiometric gasoline emission reduction. The catalytic articles can also exhibit other advantageous properties described herein, such as lower fresh OSC capacity, and lower fresh vs. aged OSC differential (i.e., more stable OSC performance with aging).

[0084] The catalyst is preferably for a three-way catalyst.

[0085] The catalyst article is 1 g / in 3 ~3g / in 3Such catalyst articles may exhibit similar or higher catalytic activity compared to conventional catalyst articles, but may be less expensive given the lower levels of PGMs used.

[0086] The substrate preferably comprises a wall-flow filter substrate or a flow-through substrate.

[0087] In a preferred embodiment, the catalyst article includes a bottom layer of a support material having rhodium thereon and a top layer of a support material having palladium thereon. In such a catalyst article, for example, the bottom layer may be provided by a method similar to the methods described herein or by any conventional method. In another preferred embodiment, the catalyst article includes a bottom layer of a support material having palladium thereon and a top layer of a support material having rhodium thereon. In such a catalyst article, for example, the top layer may be provided by a method similar to the methods described herein or by any conventional method. The term "bottom layer" as used herein may include a layer (e.g., a washcoat layer) that is closest to or in contact with the substrate (i.e., substrate wall). The term "top layer" as used herein may include a layer (e.g., a washcoat layer) that is further from the substrate (i.e., substrate wall) than the bottom layer and may be located above the bottom layer. In such a layered catalyst article, the top and / or bottom layer of the support material may have an additional PGM thereon, for example platinum. In such layered catalyst articles, the top and / or bottom layers may contain multiple PGMs, i.e., may be bimetallic (e.g., containing Pd-Rh or Pd-Pt) or trimetallic (e.g., Pd-Rh-Pt). The catalyst article may include two or more catalytic zones, e.g., an upstream zone and a downstream zone. The zones may differ from each other by having different PGMs (e.g., Rh upstream and Pd downstream, or vice versa), or may differ by the amount of different types of PGMs, e.g., monometallic, bimetallic, or trimetallic.

[0088] In such preferred embodiments, the support material preferably comprises alumina and ceria-zirconia.

[0089] The catalyst article, particularly in such preferred embodiments, preferably has a coating weight of 2 g / ft 3 ~15g / ft 3 of rhodium, more preferably 5g / ft 3 ~ 10g / ft 3 Advantageously, such rhodium levels can be lower than those of conventional catalyst articles, yet without impairing catalytic activity.

[0090] The catalyst article, particularly in such preferred embodiments, preferably has a coating weight of 50 g / ft 3 ~200g / ft 3 of palladium, more preferably 80 g / ft 3 ~150g / ft 3 Advantageously, such palladium levels can be lower than those of conventional catalyst articles, yet do not impair catalytic activity.

[0091] In a preferred embodiment, the supported support material is disposed on a substrate in the form of a slurry, the PGMs comprise palladium, the support material comprises alumina, and the slurry further comprises ceria-zirconia. In another preferred embodiment, the supported support material is disposed on a substrate in the form of a slurry, the PGMs comprise palladium, the support material comprises ceria-zirconia, and the slurry further comprises alumina. In another preferred embodiment, the supported support material is disposed on a substrate in the form of a slurry, the PGMs comprise palladium, and the support material comprises alumina and ceria-zirconia.

[0092] In a further aspect, the present invention provides an emissions treatment system comprising a catalytic article as described herein.

[0093] The emission treatment system is preferably for a gasoline engine.

[0094] Gasoline engines preferably operate under stoichiometric conditions.

[0095] In a further aspect, the present invention provides a method for treating an exhaust gas, the method comprising: Providing a catalyst article as described herein; and contacting the catalytic article with the exhaust gas.

[0096] The exhaust gas is preferably exhaust gas from a gasoline engine. The catalytic article is particularly suitable for treating such exhaust gas. The gasoline engine preferably operates under stoichiometric conditions.

[0097] The invention will now be described with reference to the following non-limiting examples.

[0098] Manufacturing of catalytic articles A number of catalyst articles were prepared according to the following examples.

[0099] Reference Example 1: TWC catalyst washcoated with Pd / ceria-zirconia mixed oxide and gamma alumina (containing Pd nitrate) 1. Prepare a solution containing the required amount of Pd nitrate (Pd loading: 131 g / ft 3 ). 2. Ceria-zirconia mixed oxide (1g / in 3 ) and gamma alumina (1g / in 3 ) and mix for 1 hour. 3. Add the required amount of Ba acetate (Ba loading 400 g / ft 3 ) and mix for at least 30 minutes. 4. Adjust the slurry solids to 30%, add Natrosol and mix overnight. 5. Coat a single dose targeting 1.2 inches and dry in pilot plant air cure. 6. Fire the bricks in a static oven at 500°C for 30 minutes.

[0100] Example 1: TWC catalyst washcoated with Pd / ceria-zirconia mixed oxide and gamma alumina (with Pd modified with tannic acid-high tannic acid loading) Barium acetate as barium source 1. Prepare a solution containing the required amount of Pd nitrate (Pd loading: 131 g / ft 3 ). 2. Ceria-zirconia mixed oxide (1g / in 3 ) and gamma alumina (1g / in 3 ) and mix for 1 hour. 3. With the aim of achieving a molar ratio of tannic acid:Pd of 1:9, the required amount of tannic acid (232 g / ft 3 Mix for at least 2 hours. 4. Add the required amount of Ba acetate (Ba loading 400 g / ft 3 ) and mix for at least 30 minutes. 5. Adjust the slurry solids to 30%, add Natrosol and mix overnight. 6. Coat a single dose targeting 1.2 inches and allow to dry in pilot plant air cure. 7. Fire the bricks in a static oven at 500°C for 30 minutes.

[0101] Example 2: TWC catalyst washcoated with Pd / ceria-zirconia mixed oxide and gamma alumina (Pd modified with tannic acid - with low tannic acid loading) Barium acetate as barium source 1. Prepare a solution containing the required amount of Pd nitrate (Pd loading: 131 g / ft 3 ). 2. Ceria-zirconia mixed oxide (1g / in 3 ) and gamma alumina (1g / in 3 ) and mix for 1 hour. 3. With the target molar ratio of tannic acid to Pd = 1:12, the required amount of tannic acid (174 g / ft 3 Mix for at least 2 hours. 4. Add the required amount of Ba acetate (Ba loading 400 g / ft 3) and mix for at least 30 minutes. 5. Adjust the slurry solids to 30%, add Natrosol and mix overnight. 6. Coat a single dose targeting 1.2 inches and allow to dry in pilot plant air cure. 7. Fire the bricks in a static oven at 500°C for 30 minutes.

[0102] Example 3: TWC catalyst washcoated with Pd / ceria-zirconia mixed oxide and gamma alumina (Pd modified with tannic acid - with low tannic acid loading) Barium citrate as barium source 1. Prepare a solution containing the required amount of Pd nitrate (Pd loading: 131 g / ft 3 ). 2. Ceria-zirconia mixed oxide (1g / in 3 ) and gamma alumina (1g / in 3 ) and mix for 1 hour. 3. With the target molar ratio of tannic acid to Pd = 1:12, the required amount of tannic acid (174 g / ft 3 Mix for at least 2 hours. 4. Add the required amount of Ba acetate (Ba loading 400 g / ft 3 ) and mix for at least 30 minutes. 5. Add the required amount of citric acid (CA loading 560g / ft 3 ) and mix for at least 2 hours. 6. Adjust the slurry solids to 30%, add Natrosol and mix overnight. 7. Coat a single dose targeting 1.2 inches and allow to dry in pilot plant air cure. 8. Fire the bricks in a static oven at 500°C for 30 minutes.

[0103] Example 4: TWC catalyst washcoated with Pd / ceria-zirconia mixed oxide and gamma alumina (Pd modified with tannic acid - with low tannic acid loading) Barium sulfate as barium source 1. Prepare a solution containing the required amount of Pd nitrate (Pd loading: 131 g / ft 3 ). 2. Ceria-zirconia mixed oxide (1g / in 3 ) and gamma alumina (1g / in 3 ) and mix for 1 hour. 3. With the target molar ratio of tannic acid to Pd = 1:12, the required amount of tannic acid (174 g / ft 3 Mix for at least 2 hours. 4. Add the required amount of barium sulfate (barium loading 400g / ft 3 ) and mix for at least 30 minutes. 5. Adjust the slurry solids to 30%, add Natrosol and mix overnight. 6. Coat a single dose targeting 1.2 inches and allow to dry in pilot plant air cure. 7. Fire the bricks in a static oven at 500°C for 30 minutes.

[0104] Electron probe micro-analyzer (EPMA) Pd and Ba element mapping images Figures 1a-1e show EPMA mapping images of Pd of the reference catalyst (Reference Example 1-Figure 1a) versus the modified catalysts (Figures 1b-1e) with different Ba salts added using tannic acid (TA). Compared to (a) the reference catalyst (Reference Example 1-Figure 1a), (b) higher loading (Example 1-Figure 1b) and (c) lower loading (Example 2-Figure 1c) of TA used for Pd modification showed more uniform Pd distribution. (a) Reference Example 1 deposits Pd at the surface layer of the washcoat. Meanwhile, the Pd-TWC modified by TA showed improved Pd distribution throughout the washcoat depth. Pd distribution was also slightly improved when (d) citric acid (Example 3 - Figure 1d) was added to form a complex in situ with Ba (as barium acetate) and (e) BaSO4 (Example 4 - Figure 1e) was used instead of barium acetate.

[0105] Figures 2a-e show EPMA mapping images of Ba of the reference catalyst (Reference Example 1-Figure 2a) versus the modified catalysts (Figures 2a-e) using TA and adding different Ba salts. Compared to (a) Reference Example 1 (Figure 2a), (b)-(c) catalysts (Example 1-Example 2-Example 2b-Example 2c) modified by TA showed little effect in Ba immobilization. Meanwhile, (d) a more uniform Ba distribution was observed when citric acid (Example 3-Figure 2d) was added to complex with Ba. (e) Ba addition as BaSO4 (Example 4-Figure 2e) also showed uniform Ba distribution, but Ba particle size increased significantly because BaSO4 was water insoluble throughout the washcoat preparation process.

[0106] Elemental correlations extracted from EPMA images FIG. 3 shows element correlations (Pd-Ba, Pd-Al, and Pd-Ce) extracted from EPMA images of Pd-TWC washcoats of Reference Example 1 and Examples 1-4. Compared to (a) Reference Example 1, TA modification in washcoats (b-d) Examples 1-3 significantly increased the Pd correlation with Al, indicating increased Pd fixation on alumina. In addition, Ba-citric acid interaction in washcoat (d) (Example 3) promoted Pd-Ba interaction and Pd fixation on ceria.

[0107] Oxygen storage capacity 4 shows the oxygen storage capacity (OSC) of virgin and aged Pd-TWC without (Reference Example 1) or with (Pd-TA) tannic acid modification. Lower virgin OSC and lower virgin vs. aged difference were observed for the TA modified catalyst (Example 1) compared to Reference Example 1.

[0108] Perturbed ignition performance Figures 5a-c show the improved light-off performance of the TA-modified Pd-TWC catalyst after aging at all temperatures, especially the low-temperature NO xThe conversion rate (Figure 5a), CO conversion rate (Figure 5b) and THC conversion rate (Figure 5c) are shown (aging conditions: 1000°C / oxidation-reduction / 40 hours, reaction conditions: with rich pretreatment, 150-700°C = 0.96-1.04, GHSV = 200,000 / hour). -1 ). Compared with (a) Reference Example 1, (b)-(d) Examples 1-3 showed that improved TWC ignition performance can be achieved by (1) optimizing the TA loading and (2) optimizing the interaction between Pd and additives, such as barium species. Optimization of the addition order is also important for improving the performance of TA-modified Pd-TWC.

[0109] The foregoing detailed description has been provided for purposes of explanation and illustration and is not intended to limit the scope of the appended claims. Many variations of the presently preferred embodiments described herein will be apparent to those of ordinary skill in the art and remain within the scope of the appended claims and their equivalents.

Claims

1. A method for manufacturing a catalyst article, providing a complex of a polyphenol and a PGM, wherein the polyphenol contains an ester functional group and the PGM contains palladium, providing a carrier material, applying the complex to the carrier material to form a supported carrier material, disposing the supported carrier material on a substrate, heating the supported carrier material to form nanoparticles of the PGM on the carrier material, the method comprising.

2. The method according to claim 1, wherein the polyphenol contains tannic acid.

3. The method according to claim 1 or claim 2, wherein the PGM consists of palladium.

4. The method according to claim 1, wherein the carrier material contains alumina and ceria-zirconia.

5. The method according to claim 4, wherein the alumina and / or the ceria-zirconia is doped.

6. The method according to claim 5, wherein the alumina and / or the ceria-zirconia is doped with one or more oxides of lanthanum, neodymium, yttrium, niobium, praseodymium, hafnium, molybdenum, titanium, vanadium, zinc, cadmium, manganese, iron, copper, calcium, barium, strontium, cesium, magnesium, potassium, and sodium, preferably one or more oxides of lanthanum, neodymium, and yttrium.

7. The method according to claim 1, wherein the supported carrier material is disposed on the substrate in the form of a slurry.

8. The slurry is Contacting a PGM salt with a polyphenol in water to form a complex of the polyphenol and PGM in an aqueous solution, wherein the PGM salt contains palladium, and forming; Applying the complex to the carrier material by contacting the carrier material with the aqueous solution to form a supported carrier material; Optionally, adding one or more of an oxygen storage material, preferably ceria-zirconia, a promoter salt, a binder, an acid or a base, a thickening agent, and a reducing agent to the aqueous solution, and preparing by a method comprising: The method according to claim 7.

9. The slurry is; Contacting a carrier material with an aqueous solution of a PGM salt to form a slurry containing a PGM salt-supported carrier material, wherein the PGM salt contains palladium, and forming; Applying a complex of a polyphenol and PGM to the carrier material by contacting the slurry containing the PGM salt-supported carrier material with the polyphenol in water to form a supported carrier material; Optionally, adding one or more of an oxygen storage material, preferably ceria-zirconia, a promoter salt, a binder, an acid or a base, a thickening agent, and a reducing agent to the aqueous solution or the slurry containing the PGM salt-supported carrier material, and preparing by a method comprising: The method according to claim 7.

10. The method according to any one of claims 7 to 9, wherein the carrier material comprises alumina and ceria-zirconia.

11. Placing the supported carrier material on a substrate comprises contacting the slurry with the substrate and optionally, Applying a vacuum to the substrate and / or Drying the slurry on the substrate, and the method according to any one of claims 7 to 9.

12. The method according to claim 1, wherein the substrate is in the form of a honeycomb monolith, a wall flow filter, or a flow through filter.

13. The heating is at a temperature of 400°C to 700°C, preferably 400°C to 600°C, more preferably 450°C to 600°C, and / or carried out for 10 to 360 minutes, preferably 35 to 120 minutes, the method according to claim 1.

14. A catalyst article obtainable by the method according to claim 1, for use in an exhaust treatment system.

15. The catalyst article according to claim 14, comprising a lowermost layer of a carrier material having rhodium thereon and an uppermost layer of a carrier material having palladium thereon.

16. The catalyst article according to claim 14, comprising a lowermost layer of a carrier material having palladium thereon and an uppermost layer of a carrier material having rhodium thereon.

17. The catalyst article according to any one of claims 14 to 16, wherein the supported carrier material is disposed on the substrate in the form of a slurry, the PGM contains palladium, and the carrier material contains alumina and ceria - zirconia.