Catalyst carrier

By synthesizing metal carbonitrides through controlled heating of metal salts with guanidine carbonate, the challenges of high-temperature synthesis are overcome, resulting in electrocatalyst supports with enhanced conductivity and stability for fuel cells and electrolyzers.

JP7726891B2Active Publication Date: 2025-08-20JOHNSON MATTHEY HYDROGEN TECH LTD
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Patent Information

Application Number
JP2022543374
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-03-13
Filing Date
2021-03-12
Publication Date
2025-08-20
Estimated Expiration
2041-03-12

AI Technical Summary

Technical Problem

The synthesis of carbonitrides and carbides for electrocatalyst supports is challenging due to the need for high temperatures and reactive gases, leading to thermal decomposition and low specific surface areas, which affects their conductivity and stability in acidic environments.

Method used

A method involving the homogenization of metal salts with guanidine carbonate and subsequent heating at controlled temperatures to produce metal carbonitrides with tailored properties, such as titanium or zirconium-based carbonitrides, which are then used as electrocatalyst supports.

Benefits of technology

The resulting metal carbonitrides exhibit improved conductivity, acid resilience, and electrochemical stability, making them suitable for use in fuel cells and electrolyzers, particularly in proton exchange membrane systems.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides a metal carbonitride, i) a first metal M 1 and, ii) a second metal M 2 and M 1 is titanium, zirconium, or hafnium, and M 2 provides a metal carbonitride that is vanadium, niobium, tantalum, chromium, molybdenum, tungsten, iron, ruthenium, or osmium.
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Description

[Technical Field]

[0001] The present invention relates to mixed metal carbonitrides that can be used as supports for electrocatalysts. [Background technology]

[0002] A fuel cell is an electrochemical cell containing two electrodes separated by an electrolyte. A fuel, e.g., hydrogen, an alcohol such as methanol or ethanol, or formic acid, is supplied to the anode, and an oxidant, e.g., oxygen or air, is supplied to the cathode. Electrochemical reactions occur at the electrodes, and the chemical energy of the fuel and oxidant is converted into electrical energy and heat. Electrocatalysts are used to promote the electrochemical oxidation of the fuel at the anode and the electrochemical reduction of oxygen at the cathode.

[0003] Fuel cells are typically classified according to the nature of the electrolyte used. In most cases, the electrolyte is a solid polymer membrane, which is electronically insulating but ionically conductive. In proton exchange membrane fuel cells (PEMFCs), the ion-conducting membrane conducts protons, and protons generated at the anode are transported across the ion-conducting membrane to the cathode, where they combine with oxygen to form water.

[0004] The main component of a PEMFC is a membrane electrode assembly, which essentially consists of five layers. The central layer is a polymeric ion-conducting membrane. On both sides of the ion-conducting membrane are electrocatalyst layers containing electrocatalysts designed for specific electrolysis reactions. Finally, adjacent to each electrocatalyst layer is a gas diffusion layer. The gas diffusion layers must allow reactants to reach the electrocatalyst layers and must conduct the electrical current generated by the electrochemical reactions. Therefore, the gas diffusion layers must be porous and electrically conductive.

[0005] The electrocatalyst layer also generally includes a proton-conducting material, such as a proton-conducting polymer, to aid in the transfer of protons from the anode electrocatalyst to the ion-conducting membrane and / or from the ion-conducting membrane to the cathode electrocatalyst.

[0006] Conventionally, membrane electrode assemblies can be constructed by a number of methods. Typically, this method involves applying one or both electrocatalyst layers to an ion-conducting membrane to form a catalyst-coated ion-conducting membrane. A gas diffusion layer is then applied to the electrocatalyst layer. Alternatively, an electrocatalyst layer is applied to a gas diffusion layer to form a gas diffusion electrode, which is then combined with the ion-conducting membrane. Membrane electrode assemblies can also be prepared by a combination of these methods, for example, applying one electrocatalyst layer to an ion-conducting membrane to form a catalyst-coated ion-conducting membrane and applying the other electrocatalyst layer as a gas diffusion electrode. The electrocatalyst layer is conventionally applied using an electrocatalyst ink, which includes the electrocatalyst material, the ion-conducting polymer, a solvent and / or diluent, and any agents desired to be included in the electrocatalyst layer.

[0007] The electrocatalyst layer generally comprises an electrocatalytic material comprising a metal or metal alloy suitable for fuel oxidation or oxygen reduction reactions, depending on whether the layer is used at the anode or cathode. Electrocatalysts for fuel oxidation and oxygen reduction are typically based on platinum or platinum alloyed with one or more other metals. Platinum or platinum alloy electrocatalysts can be in the form of unsupported nanometer-sized particles (e.g., metal black) or can be deposited as discrete ultra-high surface area nanoparticles, such as high surface area carbon materials, on an electrically conductive support material (supported electrocatalyst).

[0008] Suitable carbons typically include those from the carbon black family, such as oil furnace black, polar conductive black, acetylene black, and graphitized versions thereof. Exemplary carbons include Akzo Nobel Ketjen® EC300J and Cabot Vulcan® XC72R. Additionally, carbons specifically designed for fuel cell applications, such as those described in WO 2013 / 012894, can be used. Alternative materials for use as conductive supports include metal oxides or mixed oxides, particularly conductive mixed oxides such as niobia-doped titania, phosphorus-doped tin oxide, and mixed platinum group metal oxides or mixed metal oxides, such as those disclosed in WO 2012 / 080726.

[0009] Metal carbide-, nitride-, and carbonitride-based electrocatalyst support materials have been investigated as potentially stable materials that can be tailored for properties such as conductivity and catalytic activity. A specific catalyst support system under investigation includes platinum on niobium carbide, which exhibits high hydrogen evolution activity and stability in both acidic and alkaline environments. [1] Niobium carbonitride, as well as various transition metal carbides [4], have been investigated as platinum supports for the oxygen reduction reaction in acidic environments under potential cycling. [2][3] Nanostructured niobium titanium nitride has also been shown as a potential durable non-carbon support for oxygen reduction reaction catalysts. [5][6] Furthermore, titanium nitride nanoparticles and titanium carbonitride nanoparticles have been shown to function as electrocatalyst supports for PEMFCs, demonstrating better activity and / or durability than conventional platinum-black-carbon electrocatalysts in acidic media. [7][8]

[0010] One of the major challenges in using carbonitrides and carbides is the difficulty of synthesis due to the need for high temperatures and reactive gases. Traditionally, synthesis involves temperature-programmed carburization of transition metal oxides using a carburizing mixture (e.g., 20% (v / v) CH4 / H2) and appropriate temperature programming [9, 10]. Depending on the final carburization temperature, thermal decomposition of methane can occur, resulting in the formation of pyrolytic carbon covering the carbide surface

[11] . Niobium carbide cannot be formed via this method below 950 °C [9, 10], and such conditions favor the formation of samples with low specific surface areas

[12] . Chagas et al. proposed a new method for synthesizing niobium carbonitrides using lower temperatures than traditional methods

[11] . This method involves reacting guanidine carbonate and ammonium niobate(V) oxalate hydrate in air at 150 °C for 12 hours, followed by heating to 400 °C under helium for 4 hours, and then heating to 450–900 °C under helium for 2 hours.

[11] However, three separate heating steps are required. Summary of the Invention

[0011] There is a need in the art for new electrocatalyst supports that have good conductivity, acid resilience, and electrochemical stability.

[0012] Thus, in a first aspect, the present invention provides a metal carbonitride comprising: i) a first metal M 1 and, ii) a second metal M 2 and M 1 is titanium, zirconium, or hafnium, and M 2 provides a metal carbonitride that is vanadium, niobium, tantalum, chromium, molybdenum, tungsten, iron, ruthenium, or osmium.

[0013] In particular, metal carbonitrides are M 2 x M 1 1-x C 1-p Np and having a composition represented as In the formula, M 1 is titanium, zirconium, or hafnium, and M 2 is vanadium, niobium, tantalum, chromium, molybdenum, tungsten, iron, ruthenium, or osmium.

[0014] The metal carbonitride of the present invention is i) a first metal M 1 And M 1 is a first metal M, which is titanium, zirconium, or hafnium; 1 and, ii) a second metal M 2 And M 2 a second metal M which is vanadium, niobium, tantalum, chromium, molybdenum, tungsten, iron, ruthenium, or osmium; 2 and a) A) Metal M 2 Salt and B) Metal M 1 Salt and C) homogenizing the mixture with a salt of guanidine, and then heating the homogenized mixture to a temperature in the range of 100 to 200°C; and then b) heating the product of step a) to a temperature in the range of 500°C to 1500°C; metal M 1 The salt and metal M 2 Each of the salts of contains carbon.

[0015] The present invention also provides nanoparticles comprising, preferably consisting essentially of, and more preferably consisting of (or consisting only of) the metal carbonitride of the present invention.

[0016] The present invention also provides a catalyst support material comprising, preferably consisting essentially of, and more preferably consisting of (or comprising only) the metal carbonitrides or nanoparticles of the present invention.

[0017] The present invention also provides a catalytic material comprising, preferably consisting essentially of, and more preferably consisting of (or comprising only) an electrocatalyst supported on a support material of the present invention.

[0018] The present invention also provides an electrocatalyst layer comprising the catalytic material of the present invention.

[0019] The present invention also provides a catalyst coated ion conducting membrane comprising the catalyst material of the present invention or the electrocatalyst layer of the present invention.

[0020] The present invention also provides a catalyst decal transfer substrate comprising the electrocatalyst layer of the present invention and a decal transfer substrate.

[0021] The present invention also provides a gas diffusion electrode comprising the electrocatalyst layer of the present invention and a gas diffusion layer.

[0022] The present invention also provides a membrane electrode assembly comprising the electrocatalyst layer of the present invention, the catalyst coated ion conductive membrane of the present invention, or the gas diffusion electrode of the present invention.

[0023] The present invention also provides a fuel cell comprising the electrocatalyst layer of the present invention, the catalyst coated ion conductive membrane of the present invention, the gas diffusion electrode of the present invention, or the membrane electrode assembly of the present invention. [Brief explanation of the drawings]

[0024] [Figure 1] 1 is an X-ray diffraction pattern of a metal carbonitride of the present invention. [Figure 2] 1 is a transmission electron microscope (TEM) image and elemental mapping of a metal carbonitride of the present invention. [Figure 3] 1 shows a TEM image and elemental mapping of the metal carbonitride of the present invention. [Figure 4] 1 is a graph showing powder conductivity measured for metal carbonitrides of the present invention. [Figure 5] 1 is a graph showing mass specific activity values at 1.47 V for the catalyst material of the present invention and the comparative catalyst material. DETAILED DESCRIPTION OF THE INVENTION

[0025] Preferred and / or optional features of the invention will now be described. Any aspect of the invention may be combined with any other aspect of the invention unless the context requires otherwise. Any preferred or optional feature of any aspect may be combined with any aspect of the invention, singly or in any combination, unless the context requires otherwise.

[0026] Metal carbonitrides are compounds containing carbon, nitrogen, and a metal. In the present invention, in addition to carbon and nitrogen, two metals M 1 and M 2 Those skilled in the art will recognize that the presence of metal carbonitrides can be identified, for example, by a single phase in an X-ray diffraction pattern and data showing that carbon, nitrogen, and metal are distributed throughout the material. For example, transmission electron microscope (TEM) images of the material with elemental mapping. The metal carbonitrides of the present invention have the formula M 2 x M 1 1-x C 1-p N p When the metal carbonitride of the present invention is represented by the formula M, x is in the range of 0.05 to 0.95, preferably 0.05 to 0.7, and most preferably 0.05 to 0.55, and x can also be in the range of 0.05 to 0.3. 2 x M 1 1-x C 1-p N pWhen expressed by the formula, p can be in the range of 0.1 to 0.7, preferably 0.1 to 0.6, more preferably 0.1 to 0.5, and p can also be in the range of 0.3 to 0.6.

[0027] M 1 is titanium, zirconium, or hafnium, preferably titanium. 2 is vanadium, niobium, tantalum, chromium, molybdenum, tungsten, iron, ruthenium, or osmium, and is preferably M 2 is vanadium, niobium, tantalum, chromium, molybdenum, tungsten, or iron, preferably M 2 is vanadium, niobium, tantalum, chromium, molybdenum, or tungsten, more preferably M 2 is vanadium, niobium, or tantalum, most preferably M 2 is vanadium or niobium, especially niobium. Thus, the formula M 2 x M 1 1-x C 1-p N p The most preferred metal carbonitride represented by x Ti 1-x C 1-p N p and Ta x Ti 1-x C 1-p N p is.

[0028] The powder conductivity of the metal carbonitride is preferably at least 0.5 Scm -1 and preferably at least 1.0 Scm -1 The maximum powder conductivity is not limited and may be equal to the conductivity of graphite, for example. To measure the powder conductivity, a powder sample is added to a cylinder and two gold-plated electrode plates (1 cm 2The pellets were compressed at 2 bar pressure under inert gas using two pistons (one above the cylinder and one at the bottom). The thickness of the resulting pellets was measured, and the conductivity, derived from the resistivity, was determined from the slope of the change in voltage versus applied current using an Autolab potentiostat.

[0029] In step a) of the method for preparing a metal carbonitride of the present invention, a mixture of reagents A), B), and C), preferably all in powder form, is homogenized. Preferably, the mixture is ground together to obtain a homogenized mixture, preferably a powder. For example, the reagents can be ground with a pestle and mortar for a maximum of, for example, 5 minutes. Other methods of homogenizing the mixture are known to those skilled in the art. The heating in step a) is suitably carried out so that a temperature in the range of 100°C to 200°C is maintained for a period in the range of 5 to 20 hours. The step is preferably carried out in air, for example, in an oven.

[0030] Between step a) and step b), the product of step a) is preferably cooled to room temperature (eg, 20 to 25°C).

[0031] In step b) of the present process, the product of step a) is heated to a temperature in the range of 500°C to 1500°C, suitably 500°C to 1300°C, preferably 500°C to 1000°C, most preferably 700°C to 1000°C, for example, 850°C to 950°C. Step b) is suitably carried out so that the required temperature is maintained for a period in the range of 1 to 24 hours, preferably 1 to 12 hours, most preferably 1 to 5 hours, for example, 3 to 5 hours. The step is preferably carried out in an inert atmosphere, for example, an atmosphere of predominantly argon, helium, or nitrogen, for example, an atmosphere of more than 99% by weight argon, helium, or nitrogen. The step can be carried out, for example, by heating the material in a tubular furnace under a flow of inert gas. The heating step is suitably followed by a step of cooling the material to room temperature, for example, at a rate of at least 10°C / min and not more than 50°C / min, preferably not more than 30°C / min. Once cooled, the surface of the material can be passivated by gradually admitting air into the heating apparatus over a period of, for example, more than 2 hours, preferably more than 5 hours, and suitably not more than 10 hours. Air can be admitted gradually into the apparatus, for example, by gradually loosening any airtight seals on the heating apparatus before stopping the flow of inert gas into the apparatus.

[0032] In this method, the molar ratio of reagent A) to reagent B) is determined by the M 1 M against 2 stoichiometric ratio, e.g., M 2 x M 1 1-x C 1-p N p This corresponds to the value of x in the formula (1). Therefore, the molar ratio of A) to B) can be within the range of 0.05:0.95 to 0.95:0.05, preferably 0.05:0.95 to 0.7:0.3, and most preferably 0.05:0.95 to 0.55:0.45. The molar ratio of A) to B) can also be within the range of 0.05:0.95 to 0.3:0.7.

[0033] In this method, reagent A) is a metal M 2 and reagent B) is a salt of a metal M 1Each of reagents A) and B) contains carbon, and each of reagents A) and B) may also independently contain nitrogen. Thus, reagent A) may contain carbon and nitrogen, or reagent B) may contain carbon and nitrogen, or both reagents A) and B) may contain carbon and nitrogen. Preferably, both reagents A) and B) contain carbon and nitrogen. The molar amounts of carbon and, if present, nitrogen in these reagents and reagent C) determine the stoichiometric ratio of carbon and nitrogen in the product metal carbonitride, and the ratio of total carbon and nitrogen to total metal. Some carbon and nitrogen may be lost during the reaction, and amorphous carbon may form during the process, as discussed below. Those skilled in the art will be able to account for these effects.

[0034] Preferably, reagent A) and reagent B) are metals with oxygen-containing organic ligands (i.e., M 2 or M 1 ) salt. When the reagent contains nitrogen, the salt is preferably a salt of ammonia or a salt of an amine, and the salt includes an oxygen-containing organic ligand. As will be understood by those skilled in the art, ammonia provides nitrogen to the product, the amine provides nitrogen and carbon, and the oxygen-containing organic ligand provides carbon. Thus, the structure of the amine depends on the desired amount of carbon present in the product metal carbonitride. The oxygen-containing ligand can be a bidentate oxygen-containing ligand, preferably a 1,2-oxygen-substituted organic ligand (e.g., an organic ligand in which two immediately adjacent carbons have oxygen moieties), such as oxalate, or 1,2-dihydroxybenzene or a derivative thereof. A derivative in this context is a 1,2-dihydroxybenzene moiety in which at least one carbon atom has been substituted with an additional carbon-containing group. The structure of the derivative, i.e., the carbon substitution pattern, depends on the desired amount of carbon present in the product metal carbonitride. The salt is preferably hydrated, and the amount of water present can be determined by thermogravimetric analysis. M 2When M is niobium or tantalum, suitable reagents A) include niobium hydrogen oxalate, niobium oxalate, ammonium niobate(V) oxalate hydrate (NH4NbO(C2O4)2·xH2O), tantalum hydrogen oxalate, tantalum oxalate, and ammonium tantalate(V) oxalate hydrate (NH4TaO(C2O4)2·xH2O). 1 When is titanium, suitable reagents B) include potassium titanyl oxalate, titanium oxalate, and ammonium titanyl oxalate monohydrate ((NH4)2TiO(C2O4)2·H2O). Preferred reagents A) include ammonium niobate oxalate hydrate (NH4NbO(C2O4)2·xH2O) or ammonium tantalate oxalate hydrate (NH4TaO(C2O4)2·xH2O), and preferred reagent B) includes ammonium titanyl oxalate monohydrate ((NH4)2TiO(C2O4)2·H2O). Reagent C) is a salt of guanidine, preferably guanidine carbonate.

[0035] The method may result in the formation of amorphous carbon, such that the immediate product is a metal carbonitride of the present invention, e.g., up to 20 wt. % amorphous carbon based on the total weight of the material. Those skilled in the art will recognize that the amorphous carbon can be removed, one example being by heating the material in a hydrogen atmosphere to functionalize the carbon and disperse the functionalized product, e.g., a light hydrocarbon such as methane.

[0036] The nanoparticles of the present invention may have an average particle size of 500 nm or less, suitably 250 nm or less, preferably 100 nm or less, for example, 50 nm or less. Typically, the nanoparticles have an average particle size of 5 nm or more. The size of the nanoparticles depends on the temperature used to prepare them, for example, the temperature used in step b) of the method for preparing the metal carbonitrides of the present invention. The higher the temperature used, the larger the particle size. The nanoparticles may form agglomerates, including loosely held individual support particles or aggregates held together by weak forces. The agglomerates can be easily broken down into individual support particles or aggregates under low-energy agitation. An aggregate is a particle associated into a cluster consisting of two or more primary particles permanently bonded to each other. The total specific surface area of the aggregate is less than the sum of the surface areas of the primary particles before aggregation.

[0037] The metal carbonitrides of the present invention are useful as supports for electrocatalysts, particularly in fuel cells or electrolyzers, especially proton exchange membrane fuel cells or electrolyzers. However, the use of metal carbonitrides is not limited to these applications. As will be understood by those skilled in the art, metal carbonitrides can be used as supports for electrocatalysts in any application, particularly those requiring good conductivity, acid residence, and electrochemical stability. Accordingly, the present invention provides catalyst support materials comprising, preferably consisting essentially of, and more preferably consisting of (or exclusively consisting of) the metal carbonitrides or nanoparticles of the present invention. Furthermore, the present invention provides catalyst materials comprising, preferably consisting essentially of, and more preferably consisting of (or exclusively consisting of) the electrocatalysts supported on the support materials of the present invention. The term "supported" will be readily understood by those skilled in the art. For example, the term "supported" will be understood to include an electrocatalyst that is dispersed on a support material and that is bound or immobilized to the support material by physical or chemical bonds. For example, the electrocatalyst may be bound or immobilized to the support material by ionic or covalent bonds, or by non-specific interactions such as van der Waals forces.

[0038] The electrocatalyst is preferably (i) platinum group metals (platinum, palladium, rhodium, ruthenium, iridium, and osmium); (ii) gold or silver; (iii) base metals; or alloys or mixtures containing one or more of these metals or their oxides. The base metal is tin or a transition metal that is not a noble metal. The noble metal is a platinum group metal (platinum, palladium, rhodium, ruthenium, iridium, or osmium) or gold. Preferred base metals are copper, cobalt, nickel, zinc, iron, titanium, molybdenum, vanadium, manganese, niobium, tantalum, chromium, and tin.

[0039] The electrocatalyst is preferably suitable for use in a fuel cell or electrolyzer, more preferably a proton exchange membrane fuel cell or electrolyzer. For example, the electrocatalyst may catalyze the oxygen reduction reaction (e.g., at a proton exchange membrane fuel cell cathode), the oxygen evolution reaction (e.g., at a proton exchange membrane electrolyzer anode), the hydrogen oxidation reaction (e.g., at a proton exchange membrane fuel cell anode), or the hydrogen evolution reaction (e.g., at a proton exchange membrane electrolyzer anode). Typically, the electrocatalyst comprises a platinum group metal, preferably platinum or iridium, or an alloy of a platinum group metal, preferably platinum or iridium. Suitable alloys include alloys of a platinum group metal, preferably platinum or iridium, with a base metal (preferably a base metal as defined above), preferably nickel or cobalt, most preferably nickel. The atomic ratio of the platinum group metal to the alloying metal is typically within the range of 3:1 to 1:3.

[0040] The electrocatalyst may be, for example, an oxygen evolution reaction catalyst suitable for use in the anode or cathode of a proton exchange membrane fuel cell, together with a hydrogen oxidation reaction electrocatalyst or an oxygen reduction reaction electrocatalyst. As known to those skilled in the art, such oxygen evolution reaction catalysts can mitigate practical operational conditions such as cell reversal (i.e., such electrocatalysts contribute to cell reversal tolerance), as discussed, for example, in WO 01 / 15247. The oxygen evolution reaction catalyst is preferably platinum-free. The oxygen evolution reaction catalyst may include ruthenium or ruthenium oxide, or iridium or iridium oxide, or a mixture thereof. The oxygen evolution reaction catalyst may include iridium or iridium oxide and one or more metals M 3 or oxides thereof, M3 is a transition metal (other than iridium or ruthenium) or tin.

[0041] M 3 can be a Group 4 metal, titanium, zirconium, or hafnium.

[0042] M 3 may be a Group 5 metal, vanadium, niobium, or tantalum

[0043] M 3 can be a Group 6 metal, chromium, molybdenum, or tungsten.

[0044] M 3 may be tin.

[0045] M 3 The metals (M) may be selected from the group consisting of tantalum, titanium, zirconium, hafnium, niobium, and tin, preferably tantalum, titanium, and tin. The iridium or its oxide and one or more metals (M) or their oxides may be present as mixed metals or oxides, partially or totally alloyed materials, or combinations thereof. The degree of any alloying may be demonstrated by X-ray diffraction (XRD). The atomic ratio of iridium to (total) metal M in the oxygen generation catalyst is 20:80 to 99:1, suitably 30:70 to 99:1, and preferably 60:40 to 99:1. Such oxygen generation catalysts may be prepared by methods known to those skilled in the art, for example, wet chemical methods. For example, the oxygen generation reaction catalyst may be a mixed oxide, such as a mixed iridium tantalum oxide, as disclosed in WO 2011 / 021034.

[0046] For example, an oxygen evolution reaction suitable for use at the anode or cathode of a proton exchange membrane fuel cell in conjunction with a hydrogen oxidation reaction electrocatalyst or an oxygen reduction reaction electrocatalyst is represented by the formula (AA') a (BB') b O c and wherein A and A' are the same or different and are selected from the group consisting of yttrium, lanthanum, cerium, praseodymium, neodymium, promethium, samarium, europium, gadolinium, terbium, dysprosium, holmium, erbium, thulium, ytterbium, lutetium, magnesium, calcium, strontium, barium, sodium, potassium, indium, thallium, tin, lead, antimony, and bismuth; B is selected from the group consisting of Ru, Ir, Os, and Rh; B' is selected from the group consisting of Ru, Ir, Os, Rh, Ca, Mg, or RE (RE is a rare earth metal); c is 3 to 11; the atomic ratio of (a+b):c is 1:1 to 1:2; and the atomic ratio of a:b is 1:1.5 to 1.5:1. A and A' may be selected from the group consisting of sodium, potassium, calcium, strontium, barium, lead, and cerium. B may be selected from the group consisting of 3, including intermediate partial oxidation states. + ~6 + B' may be selected from the group consisting of Ru, Ir, Os, Rh (preferably Ru and Ir) having an oxidation state of 3, including intermediate partial oxidation states. + ~6 + The element c can be selected from the group consisting of Ru, Ir, Os, Rh (preferably Ru and Ir), Ca, Mg, RE (RE is as defined below), indium, thallium, tin, lead, antimony, and bismuth, each having an oxidation state of 0.05. c is 3 to 11. Since the atomic ratio of (a+b):c is known, the value of (a+b) can be determined. Similarly, since the atomic ratio of a:b and the value of (a+b) are known, the values of a and b can be determined. Specific examples of crystalline metal oxides that can be used as oxygen generating catalysts include RERuO3, SrRuO3, PbRuO3, REIrO3, CaIrO3, BaIrO3, PbIrO3, SrIrO3, KIrO3, SrM 0.5 Ir 0.5 O3, Ba3LiIr2O9, Sm2NaIrO6, La 1.2 Sr 2.7 IrO 7.33 , Sr3Ir2O7, Sr2Ir3O9, SrIr2O6, Ba2Ir3O9, BaIr2O6, La3Ir3O 11, RE2Ru2O7, RE2Ir2O7, Bi2Ir2O7, Pb2Ir2O7, Ca2Ir2O7, (NaCa)2Ir2O6, (NaSr)3Ir3O 11 , (NaCe)2Ir2O7, (NaCe)2Ru2O7, (NaCe)2(RuIr)2O7. In the above specific examples, RE is one or more rare earth metals selected from the group consisting of yttrium, lanthanum, cerium, praseodymium, neodymium, promethium, samarium, europium, gadolinium, terbium, dysprosium, holmium, erbium, thulium, ytterbium, and lutetium, and M is Ca, Mg, or RE, where RE is as previously defined. These crystalline mixed metal oxides can be prepared by methods known in the art, such as those described in WO 2012 / 080726.

[0047] The catalytic material of the present invention can be prepared by any process known to those skilled in the art for depositing electrocatalysts on support materials, including those discussed in WO 2017 / 203257. For example, the electrocatalyst can be deposited from a solution containing a metal precursor (e.g., a salt), as disclosed in WO 2013 / 045894. The electrocatalyst can also be deposited using preformed metal or metal oxide nanoparticles suspended in a liquid (i.e., a sol), for example, using procedures similar to those described in WO 2005 / 123255. Alternatively, a polyol-type method may be used, in which the electrocatalyst is deposited from a slurry of the electrocatalyst's corresponding acid in a polyol, e.g., ethylene glycol. For alloy electrocatalysts that can be prepared in a conventional manner, for example, as disclosed in WO 2014 / 184546, an acid wash step can be performed to remove any excess / unalloyed alloying metal. Examples of acid washes are known in the art, such as treatment with 0.5 M sulfuric acid for up to 24 hours. Additionally or alternatively, particularly in the case of alloys of platinum group metals and base metals, the acid cleaning step removes some of the alloying metal from the surface of the alloy, leaving the surface of the electrocatalyst enriched in active metal (e.g., so-called "dealloyed" particles, as discussed in WO 2014 / 184546).

[0048] The electrocatalyst layer of the present invention can be a cathode or an anode, preferably a fuel cell or electrolyzer, preferably a proton exchange membrane fuel cell or electrolyzer. The properties of the electrocatalyst layer, such as thickness, electrocatalyst loading, porosity, pore size distribution, average pore size, and hydrophobicity, depend on whether it is used as an anode or a cathode. For example, in a proton exchange membrane fuel cell anode, the thickness of the electrocatalyst layer is preferably at least 1 μm, typically at least 5 μm. In such an anode, the thickness of the electrocatalyst layer is preferably 15 μm or less, typically 10 μm or less. In a proton exchange membrane fuel cell cathode, the thickness of the electrocatalyst layer is preferably at least 2 μm, typically at least 5 μm. In such a cathode, the thickness of the electrocatalyst layer is preferably 20 μm or less, typically 15 μm or less.

[0049] The electrocatalyst loading in the electrocatalyst layer will also depend on the intended application. In this context, electrocatalyst loading refers to the amount of active metal for a desired reaction (e.g., active metal for the oxygen reduction reaction in a proton exchange membrane fuel cell cathode), e.g., platinum group metal, in the electrocatalyst layer. Thus, when the electrocatalyst is an alloy of platinum, the electrocatalyst loading is expressed in mg / cm. 2 In fuel cell cathodes using platinum electrocatalysts, the electrocatalyst loading is preferably at least 0.05 mg Pt / cm 2 , e.g., 0.7 mgPt / cm 2 Less than 0.3 mgPt / cm 2 In a fuel cell anode, the platinum loading in the electrocatalyst layer is preferably at least 0.02 mg Pt / cm 2 , e.g., 0.2 mg Pt / cm 2 or less, preferably 0.15 mgPt / cm 2 The following is the result.

[0050] The electrocatalyst layer of the present invention preferably includes an ion-conducting polymer, such as a proton-conducting polymer, to improve the ionic conductivity of the layer. Thus, the ion-conducting material may include an ionomer such as a perfluorosulfonic acid material (e.g., perfluorosulfonic acid ionomer materials from Nafion® (Chemours Company), Aciplex® (Asahi Kasei), Aquivion® (Solvay Specialty Polymer), Flemion® (Asahi Glass Co.), and 3M®), or an ionomer based on a partially fluorinated or non-fluorinated hydrocarbon that is a sulfonated or phosphonated polymer, such as those available from FuMA-Tech GmbH as products in the fumapem® P, E, or K series, or from JSR Corporation, Toyobo Corporation, etc. Preferably, the ionomer is a perfluorosulfonic acid ionomer, in particular the Nafion® series available from Chemours company, in particular Nafion® 1100EW, the Aquivion® series available from Solvay, in particular Solvay® 830EW, and 3M 825EW perfluorosulfonic acid ionomer.

[0051] The electrocatalyst layer may contain additional components. For example, the proton exchange membrane fuel cell electrocatalyst layer of the present invention may contain the oxygen evolution reaction catalyst described above for use in the anode or cathode of a proton exchange membrane fuel cell, along with a hydrogen oxidation reaction (anode) electrocatalyst or an oxygen reduction reaction (cathode) electrocatalyst. Such additional components may also include, but are not limited to, a hydrogen peroxide decomposition catalyst, a hydrophobic additive (e.g., a polymer such as polytetrafluoroethylene (PTFE) or an inorganic solid, with or without a surface treatment) or a hydrophilic additive (e.g., a polymer or inorganic solid such as an oxide) to control reactant and water transport properties. The selection of additional components is within the ability of one skilled in the art to determine the application of the electrocatalyst layer.

[0052] To prepare the electrocatalyst layer, the catalyst material of the present invention and any additional components are dispersed in an aqueous and / or organic solvent to form a catalyst ink. If necessary, particle disruption is performed to achieve a suitable particle size distribution by methods known in the art, such as high-shear mixing, milling, ball milling, passage through a microfluidizer, or the like, or a combination thereof. After preparation of the catalyst ink, the ink is deposited on a substrate (e.g., a gas diffusion layer, an ion-conducting membrane, or a support material / transfer substrate) to form the electrocatalyst layer. The ink may be deposited by any suitable technique known in the art, including, but not limited to, gravure coating, slot die (slot, extrusion) coating, screen printing, rotary screen printing, inkjet printing, spraying, painting, bar coating, pad coating, gap coating techniques such as knife or doctor blade over roll, and metering rod application.

[0053] The electrocatalyst layer may be deposited on a gas diffusion layer to form the gas diffusion electrode of the present invention. The gas diffusion layer comprises a gas diffusion substrate and, preferably, a microporous layer. When the microporous layer is present, the electrocatalyst layer is deposited on the microporous layer. Typical gas diffusion substrates include nonwoven papers or webs comprising a carbon fiber network and a thermosetting resin binder (e.g., TGP-H series of carbon fiber papers available from Toray Industries Inc. (Japan), H2315 available from Freudenberg FCCT KG (Germany), Sigracet® series available from SGL Technologies GmbH (Germany), or Ballard Power Systems Examples of suitable carbon substrates include the AvCarb® series manufactured by Epson Corporation, or woven carbon cloth. Carbon paper, web, or cloth can be pretreated prior to electrode fabrication and incorporated into membrane electrode assemblies to make it either more wettable (hydrophilic) or more resistant to wettability (hydrophobic). The nature of any optional treatment depends on the type of fuel cell and the operating conditions used. The substrate can be made more wettable by incorporating materials such as amorphous carbon black via impregnation from a liquid suspension, or made more hydrophobic by impregnating the substrate's pore structure with a colloidal suspension of a polymer such as PTFE or polyfluoroethylenepropylene (FEP), followed by drying and heating above the softening point of the polymer. A typical microporous layer comprises a mixture of carbon black and a polymer such as polytetrafluoroethylene (PTFE).

[0054] In the catalyst-coated ion-conducting membrane of the present invention, an electrocatalyst layer is deposited on the ion-conducting membrane by coating a catalyst ink directly onto the membrane or indirectly by transfer from a decal transfer substrate to form the catalyst-coated ion-conducting membrane. The catalyst-coated ion-conducting membrane of the present invention may include a second electrocatalyst layer on its opposite surface, which may or may not be in accordance with the present invention. The ion-conducting membrane is preferably any membrane suitable for use in proton exchange membrane fuel cells; for example, the membrane may be based on perfluorinated sulfonic acid materials such as Nafion™ (Chemours Company), Aquivion® (Solvay Specialty Polymers), Flemion® (Asahi Glass Group), and Aciplex™ (Asahi Kasei Chemicals Corp.), as well as perfluorosulfonic acid ionomer materials manufactured by 3M®. Alternatively, the membrane may be based on a sulfonated hydrocarbon membrane, such as those available from FuMA-Tech GmbH as the fumapem® P, E, or K series of products, or those available from JSR Corporation, Toyobo Corporation, and others.

[0055] The thickness of the ion-conductive membrane is not particularly limited and depends on the intended use of the ion-conductive membrane. For example, a typical fuel cell ion-conductive membrane has a thickness of at least 5 μm, preferably at least 8 μm, and more preferably at least 10 μm. A typical fuel cell ion-conductive membrane has a thickness of 50 μm or less, preferably 30 μm or less, and more preferably 20 μm or less. Thus, a typical fuel cell ion-conductive membrane has a thickness in the range of 5 to 50 μm, preferably 8 to 30 μm, and more preferably 10 to 20 μm.

[0056] The ion-conducting membrane may contain additional components, such as a peroxide decomposition catalyst and / or a radical decomposition catalyst, and / or a recombination catalyst. The recombination catalyst catalyzes the recombination of unreacted H and O, which can diffuse from the anode and cathode of the fuel cell, respectively, into the ion-conducting membrane to produce water. The ion-conducting membrane may also contain a reinforcing material, such as a planar porous material (e.g., expanded polytetrafluoroethylene (ePTFE) as described in USRE 37307), embedded within the thickness of the ion-conducting membrane to provide improved ion-conducting membrane strength, such as increased tear resistance and reduced dimensional change upon hydration and dehydration, thus further extending the durability of the membrane electrode assembly and the lifespan of fuel cells incorporating the catalytic ion-conducting membranes of the present invention. Other approaches to forming reinforced ion-conducting membranes include those disclosed in U.S. Patent Nos. 7,807,063 and 7,867,669, where the reinforcement is a rigid polymer film, such as a polyimide, into which multiple pores are formed and then filled with a PFSA ionomer. The selection of additional components is within the ability of one skilled in the art to determine depending on the application of the electrocatalyst layer.

[0057] Any reinforcement present may extend across the entire thickness of the ion conductive membrane or may extend through only a portion of the thickness of the ion conductive membrane. It will be understood that the thickness of the ion conductive membrane extends perpendicular to the plane of the ion conductive membrane, e.g., in the z-direction of the penetration plane. It may be further advantageous to reinforce the peripheries of the first and second surfaces of the ion conductive membrane to a greater extent than the central planes of the first and second surfaces of the ion conductive membrane. Conversely, it may be desirable to reinforce the center of the first or second surface of the ion conductive membrane to a greater extent than the peripheries of the first or second surface of the ion conductive membrane.

[0058] The catalyst ink is coated onto the decal transfer substrate to deposit an electrocatalyst layer on the decal transfer substrate, forming a catalyst decal transfer substrate. Prior to removal of the decal transfer substrate, additional layers may be deposited on the exposed surface of the electrocatalyst layer. For example, an ion-conducting ionomer layer may be applied from an ionomer dispersion using any suitable deposition technique known in the art, as described above with respect to the deposition of the electrocatalyst layer. Additional layers may be added as needed, for example, as described in PCT Patent Application No. GB2015 / 050864. The decal transfer substrate is then removed from the electrocatalyst layer at an appropriate time. The decal transfer substrate may be formed from any suitable material that can be removed without damaging the electrocatalyst layer. Examples of suitable materials include fluoropolymers, such as polytetrafluoroethylene (PTFE), ethylene tetrafluoroethylene (ETFE), perfluoroalkoxy polymers (PFA), fluorinated ethylene propylene (FEP—a copolymer of hexafluoropropylene and tetrafluoroethylene), and polyolefins, such as biaxially oriented polypropylene (BOPP).

[0059] As will be appreciated by those skilled in the art, the membrane electrode assembly of the present invention can be constructed in several ways, provided that it includes at least one electrocatalyst layer of the present invention. For example, the membrane electrode assembly can include a catalyst-coated ion-conductive membrane of the present invention including two electrocatalyst layers, at least one of which is an electrocatalyst layer of the present invention, with a gas diffusion layer applied to each electrocatalyst layer. Alternatively, the membrane electrode assembly can include an ion-conductive membrane sandwiched between two gas diffusion electrodes, with at least one of the two gas diffusion electrodes being a gas diffusion electrode of the present invention. The membrane electrode assembly can also include a catalyst-coated ion-conductive membrane having one electrocatalyst layer and a gas diffusion electrode on the opposite side of the ion-conductive membrane, with either or both of the electrocatalyst layer and the gas diffusion electrode being of the present invention. [Example]

[0060] Synthesis of support materials S1 is Nb 0.5 Ti0.5 C 1-p N p and step b) of the process was carried out at 900° C. for 4 hours. S2 is Nb 0.5 Ti 0.5 C 1-p N p and step b) of the process was carried out at 900° C. for 12 hours. S3 is Nb 0.5 Ti 0.5 C 1-p N p and step b) of the process was carried out at 1200° C. for 12 hours.

[0061] In step a) of the method, Nb 0.5 Ti 0.5 C 1-p N p A metal carbonitride with the composition expressed as (N(V)) was prepared by mixing A) ammonium niobate oxalate hydrate (NHNbO(C2O4)2·xH2O), B) ammonium titanyl oxalate monohydrate ((NH4)2TiO(C2O4)2·H2O), and C) guanidine carbonate (6.4 g) in a 1:1:4 molar ratio of A:B:C). The mixture was homogenized by grinding with a pestle and mortar for 5 minutes. Thermogravimetric analysis was used to calculate the hydration of the ammonium niobate oxalate hydrate to confirm that the correct molar ratio was achieved. The homogenized mixture was then heated in an oven at 150 °C in air for 12 hours and then cooled to room temperature.

[0062] In step b) of the method, the product from step a) was heated in a tube furnace under nitrogen flow for 4 hours at 900°C (S1), 12 hours at 900°C (S2), or 4 hours at 1200°C (S3). The sample was then cooled at a rate of 20°C / min. After cooling, the airtight seal was slowly loosened over several hours, the nitrogen gas was shut off, and the sample was left for an additional hour. This was done to passivate the surface of the material using oxygen from the air.

[0063] Synthesis of catalytic materials Support materials S1, S2 and S3 support iridium as a water electrolysis (oxygen generation) catalyst to provide catalyst materials E1, E2 and E3, respectively, each containing 30 wt % iridium (based on the total weight of the catalyst material).

[0064] Iridium was loaded onto the support material by the polyol method. 0.5 g of the support material was slurried in 100 mL of ethylene glycol containing 0.5 g of NaOH. Iridium was added in the form of 0.5 g of chloroiridic acid to obtain 30 wt. % iridium in the resulting catalyst material. The slurry was heated to 160°C and stirred for 2 hours. After cooling, the solution was diluted to pH 2 using 1 M H2SO4. It was then filtered and washed three times with 100 mL of deionized water, and the solid material was then dried at 80°C.

[0065] Characterization The ratio of niobium to titanium in the support material is controlled by the molar ratio of reagent A) to reagent B) of the synthesis and can be confirmed by energy dispersive X-ray (EDX) analysis data collected using a Zeiss SUPRA 55VP FEGSEM scanning electron microscope (SEM).

[0066] The carbon to nitrogen ratio, or "p" value, in the samples was determined using a combination of thermogravimetric analysis (TGA) and CHN analysis.

[0067] Specifically, thermogravimetric analysis (TGA) was used to observe the decomposition of metal carbonitrides into their corresponding metal oxides in air. This information on mass change, combined with CHN analysis, was used to calculate the amount of amorphous carbon present in the samples. TGA was used to calculate how much metal was present at room temperature by assuming that all metal carbonitride oxides had become the metal oxides TiO2 and Nb2O5 by 900°C, which was confirmed by x-ray diffraction (XRD). CHN analysis was used assuming that all nitrogen present was within the carbonitride structure, with the remainder being carbon. Table 1 shows the results of the TGA and CHN analyses performed on support materials S1 and S2.

[0068] [Table 1]

[0069] CHN analysis was performed by combustion analysis on an elemental analyzer. The original analytical method is based on the complete and instantaneous oxidation of the sample by dynamic flash combustion, which converts all organic and inorganic materials into combustion products. The resulting combustion gases are passed through a reduction furnace and then carried by He carrier gas into a chromatography column. Here, the combustion gases are separated and eluted as nitrogen, carbon dioxide, water, and sulfur dioxide, which are detected by a thermal conductivity detector, which gives an output signal proportional to the concentration of the individual components of the mixture. The detector is calibrated by analysis of known standard compounds.

[0070] The structure of the support materials and their characterization as niobium- and titanium-containing carbonitrides were confirmed by X-ray diffraction and transmission electron microscopy (TEM) elemental mapping. Figure 1 shows the X-ray diffraction patterns of support materials S1, S2, and S3. The presence of a single metal carbonitride phase can be seen. XRD data were collected at higher resolution using a Panalytical X'Pert Pro MPD equipped with monochromated CuKα1 radiation (λ = 1.54056 Å) and a PIXcel semiconductor detector. For refinement of the material's unit cell from the powder XRD, Pawley refinement was performed using TOPAS software implemented with jedit. The Pawley method involves a least-squares analysis of the powder diffraction pattern, with the variables being peak position parameters, peak shape parameters, and peak area. This means that a structural model is not required.

[0071] Figure 2 shows a TEM image and elemental mapping of support material S1. This sample contains amorphous carbon surrounding a carbonitride material. Elemental mapping shows that niobium, titanium, and nitrogen are present throughout the sample, suggesting an atomically mixed sample. Figure 3 shows TEM imaging and elemental analysis of material S2. This sample has less amorphous carbon than the S1 material, but still has a visible layer of amorphous carbon, indicated by disorder in the TEM image. Elemental mapping shows a similar pattern to the S1 material. Titanium, niobium, and nitrogen are present throughout the material.

[0072] For TEM images and elemental mapping, the structure and morphology of the samples were analyzed using a JEOL 2100 microscope equipped with a LaB6 cathode operated at 200 kV. The original images, converted to grayscale, were mapped using blue for niobium, pink for titanium, yellow for carbon, and green for nitrogen.

[0073] Powder Conductivity The powder conductivities of S1 and S3 are shown in Figure 4. S1 has a conductivity of about 0.8 Scm, suitable for use in proton exchange membrane fuel cells or electrolyzers. -1 The conductivity of S3 is approximately 1.5 Scm -1 which is also suitable for use in proton exchange membrane fuel cells.

[0074] To measure powder conductivity, a powder sample was added to a cylinder and two gold-plated electrode plates (1 cm 2 The pellets were compressed at 2 bar pressure under inert gas using two pistons (one above the cylinder and one at the bottom). The thickness of the resulting pellets was measured, and the conductivity, derived from the resistivity, was determined from the slope of the change in voltage versus applied current using an Autolab potentiostat.

[0075] stability Acid resistance testing was performed in 1 M H2SO4 at 80 °C for 24 hours to mimic the harsh conditions found in PEM fuel cells. The resulting solutions were analyzed by inductively coupled plasma optical emission spectroscopy (ICP-OES). Measurements were performed using a PerkinElmer 5300DV ICP-OES. Standard solutions were prepared using reference solutions from Fischer Chemical. Reference solutions were prepared at 4000, 2000, 1000, 500, 250, and 50 ppb. Calibration results were used only if the correlation coefficient exceeded 0.999. Table 2 shows that for support materials S1, S2, and S3, some Ti ions were found in solution after testing, but the total metal remaining in the solid was approximately 94%, indicating stability in strongly acidic conditions.

[0076] [Table 2]

[0077] Synthesis of electrocatalyst layer Electrocatalyst layers were prepared on gas diffusion layers using catalyst materials E1, E2, and E3, respectively.

[0078] 0.1 g of catalyst material was combined with 0.02 g of Nafion® perfluorosulfonic acid ionomer solution (11.92 wt. % solids) and three drops of water were added. This was then mixed in a planetary mixer at 3000 rpm for 15 seconds. The resulting ink was shear mixed in a planetary mixer using 5 mm diameter yttrium-stabilized zirconia ceramic beads, adding one more drop of water as needed, and mixing for an additional 2 minutes at 3000 rpm. The ink was manually stirred using a spatula, occasionally loosening any sediment during mixing. The resulting ink was further diluted by adding 2 g of water. A 7 x 7 cm 3D print of Toray paper was then sprayed by diluting 0.25 mL of ink with 0.75 mL of isopropanol and 1.5 mL of water in the spray gun. 2After spraying the ink onto a square (hydrophobic gas diffusion layer (GDL) TGP-H-60 containing carbon fiber paper and PTFE), a uniform layer of material was sprayed onto Toray paper on a hot plate at 80 °C. The weight of the resulting layer was measured to yield a mass of 0.05–0.15 mg cm. -2 X-ray fluorescence (XRF) spectroscopy was used to estimate the layer loading and analyze the layer loading uniformity, targeting iridium of 1000 ppm. A 20 mm diameter disk was cut from the resulting catalyst layer deposited on Toray paper and further analyzed by XRF.

[0079] Electrochemical Testing Because the oxygen evolution reaction (OER) was used as the test reaction, an iridium OER electrocatalyst was used as the test electrocatalyst. Suitability in the OER indicates suitability in other primary electrochemical reactions in a proton exchange membrane fuel cell or electrolyzer (e.g., oxygen reduction reaction, hydrogen evolution reaction, and hydrogen oxidation reaction). Furthermore, specifically testing for the OER allows the support material to be subjected to more severe conditions than specifically testing for other electrochemical reactions that occur during the primary reaction in a proton exchange membrane fuel cell.

[0080] The catalytic material was tested for Ir mass activity in an OER. Wet cell testing was performed in 0.1 M H2SO4 at 60 °C to confirm the activity of the catalytic material. The disk carrying the sample (i.e., the electrocatalyst layer prepared by the method described above) was wetted with 200 mL of 0.1 M H2SO4 overnight under vacuum to allow the solution to penetrate the Toray paper. 5 mL of the soaking solution was taken for ICP-MS, and a button was attached to a gold wire to form the working electrode. The cell was filled with 100 mL of 0.1 M H2SO4 and degassed with nitrogen. Once the disk was in place and the cell was set up, another 5 mL sample was taken for ICP-MS, and the solution was replaced with fresh 0.1 M H2SO4. The counter electrode was a platinum wire, and the reference electrode was a RHE consisting of hydrogen bubbled over a Pt / C catalyst. The battery was first cycled between 0 and 1.35 V vs. RHE at different scan rates (300 and 5 mV / s). Then, at the beginning of life (BOL), an activity sweep was performed between 1 and 1.55 V vs. RHE at 1 mV / s. A 5 mL sample was then taken for ICP-MS and replaced with fresh 0.1 M H2SO4. The battery was then degraded for 1000 cycles at 100 mV / s from 0.6 to 1.35 V vs. RHE (approximately 4 hours and 10 minutes). This was chosen to raise the potential to the onset of OER without forming bubbles that could affect the results. Another 5 mL sample was taken for ICP-MS analysis. The battery was then degraded in the same manner as the beginning of life (cyclic voltammograms at different scan rates, followed by activity sweeps), followed by an end-of-life (EOL) activity test.

[0081] Two disks with catalyst layers containing catalytic material E1 were tested for reproducibility. The activity values for E1, shown in Figure 5, show increased activity relative to both the commercial IrO2 catalyst from Alpha Aesar® and a carbon support loaded with 30 wt% iridium using the polyol method described above for the materials of the present invention. E1 shows a decrease in activity after the cyclic cracking process (i.e., end-of-life), but is still more active at the beginning of life than both the 30 wt% iridium loaded carbon and the commercial IrO2.

[0082] References [1] B.M. Tackett, Y.C. Kimmel and J.G. Chen, Int. J. Hydrogen Energy, 2016, 41, 5948 - 5954. [2] S.N. Stamatin and E.M. Skou, ECS Trans., 2013, 58, 1267 - 1276. [3] K. Nam, A. Ishihara, K. Matsuzawa, S. Mitsushima, K. Ota, M. Matsumoto and H. Imai, Electrochim. Acta, 2010, 55, 7290 - 7297. [4] Y.C. Kimmel, X. Xu, W. Yu, X. Yang and J.G. Chen, ACS Catal., 2014, 4, 1558 - 1562. [5] Z. Cui, R.G. Burns and F.J. DiSalvo, Chem. Mater., 2013, 25, 3782 - 3784. [6] G. Li, K. Li, L. Yang, J. Chang, R. Ma, Z. Wu, J. Ge, C. Liu and W. Xing, ACS Appl. Mater. Interfaces, 2018, 10, 38117 - 38124. [7] B. Avasarala, T. Murray, W. Li and P. Haldar, J. Mater. Chem., 2009, 19, 1803. [8] Z. Jin, P. Li and D. Xiao, Sci. Rep., 2014, 4, 1 - 7. [9] F.A.O. Fontes, J.F. De Sousa, C.P. Souza, M.B.D. Bezerra, M. Benachour, J.F. De Sousa, C.P. Souza, M.B.D. Bezerra and M. Benachour, Chem. Eng. J., 2011, 175, 534 - 538.

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Claims

1. 1. A catalyst support material comprising a metal carbonitride, the metal carbonitride comprising: i) a first metal M 1 and, ii) a second metal M 2 and M 1 is titanium, zirconium, or hafnium, and M 2 is a catalyst support material, wherein the catalyst support material is vanadium, niobium, tantalum, chromium, molybdenum, tungsten, iron, ruthenium, or osmium.

2. M 2 x M 1 1-x C 1-p N p 10. The catalyst support material of claim 1 having a composition expressed as follows:

3. M 1 3. The catalyst support material according to claim 1, wherein is titanium.

4. M 2 The catalyst support material according to any one of claims 1 to 3, wherein is vanadium, niobium, or tantalum.

5. Catalyst support material according to any one of claims 2 to 4, wherein x is in the range of 0.05 to 0.

95.

6. The catalyst support material of claim 5, wherein x is in the range of 0.05 to 0.

55.

7. 7. A catalyst support material according to any one of claims 2 to 6, wherein p is in the range of 0.1 to 0.

7.

8. A catalytic material comprising an electrocatalyst supported on the catalyst support material of claim 1.

9. An electrocatalyst layer comprising the catalytic material of claim 8.

10. A catalyst coated ion conducting membrane comprising the catalyst material according to claim 8 or the electrocatalyst layer according to claim 9.

11. A catalyst decal transfer substrate comprising the electrocatalyst layer according to claim 9 and a decal transfer substrate.

12. A gas diffusion electrode comprising the electrocatalyst layer according to claim 9 and a gas diffusion layer.

13. A membrane electrode assembly comprising the electrocatalyst layer according to claim 9, the catalyst coated ion conductive membrane according to claim 10, or the gas diffusion electrode according to claim 12.

14. A fuel cell comprising the electrocatalyst layer according to claim 9, the catalyst coated ion conductive membrane according to claim 10, the gas diffusion electrode according to claim 12, or the membrane electrode assembly according to claim 13.

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