WO2014209237A1 - Methanation catalyst - Google Patents
Methanation catalyst Download PDFInfo
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- WO2014209237A1 WO2014209237A1 PCT/SG2014/000311 SG2014000311W WO2014209237A1 WO 2014209237 A1 WO2014209237 A1 WO 2014209237A1 SG 2014000311 W SG2014000311 W SG 2014000311W WO 2014209237 A1 WO2014209237 A1 WO 2014209237A1
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- catalyst
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- sulfur
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- B01J23/70—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group B01J21/00 of the iron group metals or copper
- B01J23/76—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group B01J21/00 of the iron group metals or copper combined with metals, oxides or hydroxides provided for in groups B01J23/02 - B01J23/36
- B01J23/83—Catalysts comprising metals or metal oxides or hydroxides, not provided for in group B01J21/00 of the iron group metals or copper combined with metals, oxides or hydroxides provided for in groups B01J23/02 - B01J23/36 with rare earths or actinides
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- C10G2/332—Production of liquid hydrocarbon mixtures of undefined composition from oxides of carbon from carbon monoxide with hydrogen with the use of catalysts characterised by the catalyst used containing group VIII-metals of the iron-group
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- C10L—FUELS NOT OTHERWISE PROVIDED FOR; NATURAL GAS; SYNTHETIC NATURAL GAS OBTAINED BY PROCESSES NOT COVERED BY SUBCLASSES C10G OR C10K; LIQUIFIED PETROLEUM GAS; USE OF ADDITIVES TO FUELS OR FIRES; FIRE-LIGHTERS
- C10L3/00—Gaseous fuels; Natural gas; Synthetic natural gas obtained by processes not covered by subclass C10G, C10K; Liquefied petroleum gas
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Definitions
- the present invention relates generally to the field of catalysis. More specifically, the present invention relates to catalysis of methanation reactions.
- SNG Substitute Natural Gas
- Combining gasification and catalytic methanation technologies may enable production of SNG from a variety of feedstocks such as coal,biomass and waste.
- a simplified SNG production process is as follows: Feedstock, i.e., coal and biomass ⁇ Gasification ⁇ Gas cleaning and conditioning ⁇ Fuel upgrading.
- methanation is a reaction that generates methane from a mixture of gases, for example, those derived from gasification of coal, biomass and waste.
- methanation is a reaction that generates methane from a mixture of gases, for example, those derived from gasification of coal, biomass and waste.
- catalysts robust enough for use in catalysing methanation reactions and which ensure a high methane yield.
- sulfur poisoning of catalyst surfaces represents a major challenge in the field of catalysis, and of methanation catalysis more particularly, there is also a need for catalysts having good chemical and physical stabilities including resistance to sulfur poisoning.
- catalysts having improved coking resistance as coke deposition on catalyst surfaces can lead to a drop in catalytic activity and selectivity.
- catalysts comprising a catalytic element, for example, metallic nickel, disposed on a ceria-based substrate lead to a significant improvement in catalytic performance when used to catalyse the methanation reaction of a feedstock, and in particular, a feedstock including sulfur, when compared with conventional catalysts.
- a catalytic element for example, metallic nickel
- the present invention provides a catalyst, comprising a catalytic element disposed on a substrate, wherein said substrate has formula Cei -X M X 02, wherein x is between about 0 and about 0.3, optionally between about 0.01 and about 0.3, and wherein M, if present, is a metallic element other than Ce, when used for catalysing a methanation reaction.
- the catalytic element may be a metal.
- the metal may be a transition metal, e.g., it may be selected from the group consisting of Co, Fe, Pt, Ru, Rh, Pd, Ni and Ir. Therefore, the catalytic element may be Co, Fe, Pt, Ru, Rh, Pd, Ni or Ir.
- the catalytic element may be metallic, e.g., it may be metallic nickel, or may be metallic cobalt, or metallic palladium, or metallic platinum, or metallic iron, or metallic rhodium, or metallic ruthenium, or metallic iridium. In some instances it may be a mixture or alloy of any two or more of these metals, or may be a mixture or alloy of any one of these metals with some other metal.
- the substrate may be particulate.
- the particles of the substrate may have a mean particle diameter of less than about 0.5 ⁇ or less than about 100 nm.
- x may be between about 0.01 and about 0.25, or may be between about 0.1 and about 0.2.
- x M x 0 2 x may be about 0.01 , or may be about 0.05, or may be about 0.1, or may be about 0.15, or may be about 0.2.
- x 0.
- the metallic element, M may be a lanthanoid, or it may be a transition metal, or it may be an alkaline earth metal, e.g., the metallic element may be a transition metal.
- the transition metal may be Y.
- the metallic element may alternatively be a lanthanoid.
- the lanthanoid may be selected from the group consisting of Sm and Gd. It may be Sm or it may be Gd.
- the metallic element may be an alkaline earth, e.g., Ca.
- the metallic element may have a greater affinity for sulfur than for oxygen and/or may enhance the sulfur adsorption ability of the catalyst.
- the substrate is Ceo.9Smo.1O2. In another embodiment, the substrate is Ceo.9Gdo.1O2. In a further embodiment, the substrate is Ceo.9Cao.1O2. In yet a further embodiment, the substrate is Ceo.85Yo.1 sO2. In yet a further embodiment, the substrate is
- the catalyst may include regions, commonly discrete or unconnected regions, of a catalytic element disposed on a surface of the substrate.
- the catalyst may include a catalytic element dispersed on a surface of the substrate, e.g., uniformly or non-uniformly dispersed.
- the catalyst may include between about 1 % and about 40% of a catalytic element by weight, e.g., may include between about 5% and about 20% of a catalytic element by weight.
- the specific surface area of the substrate may be between about 10 and about 300 m 2 /g, e.g., between about 50 and about 300 m 2 /g.
- the present invention provides a catalyst, comprising a catalytic element selected from the group consisting of metallic Co, Fe, Pt, Ru, Rh, Pd, Ni or Ir, disposed on a substrate, wherein said substrate has formula Cei -X M X 0 2 , wherein x is between about 0 and about 0.3, optionally between about 0.01 and about 0.3, and wherein M, if present, is a metallic element other than Ce, when used for catalysing a methanation reaction.
- a catalytic element selected from the group consisting of metallic Co, Fe, Pt, Ru, Rh, Pd, Ni or Ir
- the present invention provides a catalyst, comprising metallic nickel disposed on a substrate, wherein said substrate has formula Cei_ x M x 0 2 , wherein x is between about 0 and about 0.3, optionally between about 0.01 and about 0.3, and wherein M, if present, is a metallic element other than Ce, when used for catalysing a methanation reaction.
- the present invention provides a catalyst including between about 1% and about 40% of a catalytic element selected from the group consisting of metallic Co, Fe, Pt, Ru, Rh, Pd, Ni or Ir by weight of the catalyst disposed on a surface of a substrate, wherein said substrate has formula Ce0 2 , when used for catalysing a methanation reaction; wherein said substrate is particulate and the particles have a mean particle diameter of less than about 0.5 ⁇ .
- a catalytic element selected from the group consisting of metallic Co, Fe, Pt, Ru, Rh, Pd, Ni or Ir by weight of the catalyst disposed on a surface of a substrate, wherein said substrate has formula Ce0 2 , when used for catalysing a methanation reaction; wherein said substrate is particulate and the particles have a mean particle diameter of less than about 0.5 ⁇ .
- the present invention provides a catalyst, comprising a catalytic element selected from the group consisting of metallic Co, Fe, Pt, Ru, Rh, Pd, Ni or Ir disposed on a substrate, wherein said substrate has formula Cei. x M x 0 2 , wherein x is between about 0.1 and about 0.3 and wherein M is a metallic element selected from the group consisting of a lanthanoid, a transition metal and an alkaline earth metal, when used for catalysing a
- the present invention provides a catalyst, comprising discrete regions of a catalytic element disposed on a substrate, wherein said substrate has formula Cei- x M x 0 2 , wherein x is between about 0.1 and about 0.3 and wherein M is a metallic element selected from the group consisting of Y, Sm, Gd and Ca, when used for catalysing a
- the present invention provides a catalyst, comprising a catalytic element disposed on a substrate, wherein said substrate has formula Cei -x M x 0 2 , wherein x is between about 0.1 and about 0.3 and wherein M is a metallic element that enhances the sulfur adsorption ability of the catalyst, when used for catalysing a methanation reaction; wherein said substrate has a specific surface area of between about 10 and about 300 m 2 /g; and wherein said substrate is particulate and the particles have a mean particle diameter of less than about 0.5 ⁇ .
- the present invention provides a catalyst, comprising between about 1% and about 40% by weight of the catalyst of a catalytic element, wherein the catalytic element is metallic nickel, disposed in discrete regions on a surface of a substrate, wherein said substrate has formula Cei. x M x 0 2 , wherein x is between about 0.1 and about 0.3 and wherein M is a metallic element selected from the group consisting of a lanthanoid, a transition metal and an alkaline earth metal, when used for catalysing a methanation reaction; wherein said substrate is particulate and the particles have a mean particle diameter of less than about 0.5 ⁇ .
- the present invention provides a catalyst, comprising metallic nickel disposed on a substrate, wherein said substrate has formula Ce 0 .9M 0 .iO 2 , (i.e., x is 0.1 ), and wherein M is a metallic element selected from the group consisting of Y, Sm, Gd and Ca, when used for catalysing a methanation reaction.
- the present invention provides a catalyst, comprising between about 1% and about 40% by weight of the catalyst of metallic nickel disposed on a surface of a substrate, wherein said substrate has formula Ceo.9Gdo.1O2, (i.e., x is 0.1), when used for catalysing a methanation reaction; wherein said substrate has a specific surface area of between about 10 and about 300 m 2 /g; and wherein said substrate is particulate and the particles have a mean particle diameter of less than about 0.5 ⁇ .
- the present invention provides a catalyst,_comprising metallic nickel disposed on a substrate, wherein said substrate has formula Cei -x Ca x 0 2 , wherein x is between about 0.01 and about 0.3, when used for catalysing a methanation reaction.
- the present invention provides a catalyst, comprising metallic nickel disposed on a substrate, wherein said substrate has formula Cei. x Gd x 0 2 , wherein x is between about 0.01 and about 0.3, when used for catalysing a methanation reaction.
- the present invention provides a catalyst, comprising between about 1 % and about 40% by weight of the catalyst of metallic nickel disposed on a surface of a substrate, wherein said substrate has formula Ceo.9Cao.1O2, (i.e., x is 0.1), when used for catalysing a methanation reaction; wherein said substrate has a specific surface area of between about 10 and about 300 m /g; and wherein said substrate is particulate and the particles have a mean particle diameter of less than about 0.5 ⁇ .
- the present invention provides a catalyst, comprising between about 1 % and about 40% by weight of the catalyst of metallic nickel disposed on a surface of a substrate, wherein said substrate has formula Ceo.9Smo.1 O2, (i.e., x is 0.1), when used for catalysing a methanation reaction; wherein said substrate has a specific surface area of between about 10 and about 300 m 2 /g; and wherein said substrate is particulate and the particles have a mean particle diameter of less than about 0.5 ⁇ .
- the present invention provides use of a catalyst comprising between about 1 % and about 40% of a catalytic element selected from the group consisting of metallic Co, Fe, Pt, Ru, Rh, Pd, Ni or Ir by weight of the catalyst disposed on a surface of a substrate, wherein said substrate has formula Cei -x M x 0 2 , wherein x is between about 0.1 and about 0.3 and wherein M is a metallic element selected from the group consisting of a lanthanoid, a transition metal and an alkaline earth metal, for catalysing a methanation reaction.
- the present invention provides use of a catalyst, comprising metallic nickel disposed on a substrate, wherein said substrate has formula Ceo.9Mo.i0 2 , (i.e., x is 0.1), and wherein M is a metallic element selected from the group consisting of Y, Sm, Gd and Ca, for catalysing a methanation reaction.
- a catalyst according to the first aspect above said use being for reducing the carbon monoxide content of a gas mixture including carbon monoxide and hydrogen.
- methanation of a feedstock including carbon monoxide and hydrogen said method comprising contacting the feedstock with a catalyst according to the first aspect above.
- the feedstock may additionally include carbon dioxide gas.
- the feedstock may additionally include steam.
- the feedstock may include coal gasification effluent and biomass gasification effluent.
- the feedstock may alternatively include coal gasification effluent or biomass gasification effluent.
- the feedstock may additionally include a sulfur-containing gas or vapour.
- the sulfur- containing gas or vapour may be present at a concentration of about 0.1 to about 5000 ppm.
- the sulfur-containing gas or vapour may include any one or more of hydrogen sulfide, carbonyl sulfide, sulfur dioxide and an organic thiol.
- the molar ratio of hydrogen to carbon monoxide in the feedstock may be between about 4: 1 and about 1 : 1.
- Contacting may include passing the feedstock through a packed bed reactor comprising the catalyst, or it may comprise passing the feedstock through a fluidised bed reactor.
- the pressure of the feedstock during the contacting may be between about 1 bar and about 40 bar.
- the contacting may be conducted at a temperature of at least about 250 °C.
- the contacting may be conducted at a temperature of between about 250 and about 750 °C.
- the temperature and feedstock flow rate, e.g., gas hourly space velocity, during the contacting may be sufficient to achieve equilibrium conversion of carbon oxides to methane.
- the flow rate, e.g., gas hourly space velocity (GHSV) of the feedstock may be between about 1000 h "1 and about 100 000 h "1 .
- GHSV gas hourly space velocity
- the present invention provides a method for methanation of a feedstock including carbon monoxide and hydrogen, said method comprising contacting the feedstock with a catalyst according to the first aspect above, wherein the feedstock additionally includes a sulfur-containing gas or vapour present at a concentration of about 0.1 to about 5000 ppm and wherein the contacting is conducted at a temperature of at least about 250 °C.
- the present invention provides a method for methanation of a feedstock including carbon monoxide, hydrogen and carbon dioxide, said method comprising contacting the feedstock with a catalyst according to the first aspect above, wherein the feedstock additionally includes a sulfur-containing gas or vapour present at a concentration of about 0.1 to about 5000 ppm and wherein the contacting is conducted at a temperature of between about 250 and about 750 °C.
- the present invention provides a method for methanation of a feedstock including carbon monoxide and hydrogen, wherein the molar ratio of hydrogen to carbon monoxide in the feedstock is between about 4: 1 and about 1 : 1 , said method comprising contacting the feedstock with a catalyst according to the first aspect above, wherein the feedstock additionally includes a sulfur-containing gas or vapour present at a concentration of about 0.1 to about 5000 ppm and wherein the contacting is conducted at a temperature of between about 250 and about 750 °C wherein the pressure of the feedstock during contacting is between about 1 bar and about 40 bar.
- the present invention provides a method for methanation of a feedstock including carbon monoxide and hydrogen, said method comprising contacting the feedstock with a catalyst comprising metallic nickel disposed on a substrate, wherein said substrate has formula Cei. x M x C>2, wherein x is between about 0.1 and about 0.3 and wherein M is a metallic element selected from the group consisting of a lanthanoid, a transition metal and an alkaline earth metal, wherein the feedstock includes coal gasification effluent or biomass gasification effluent and further includes a sulfur-containing gas or vapour at a concentration of about 0.1 to about 5000 ppm.
- the present invention provides a method for methanation of a feedstock including carbon monoxide and hydrogen, said method comprising contacting the feedstock with a catalyst comprising metallic nickel disposed on a substrate, wherein said substrate has formula Ceo.9Mo.
- M is a metallic element selected from the group consisting of Sm, Gd and Ca, wherein said substrate has a specific surface area of between about 10 and about 300 m 2 /g; and wherein said substrate is particulate and the particles have a mean particle diameter of less than about 0.5 ⁇ , wherein the feedstock includes coal gasification effluent or biomass gasification effluent and further includes a sulfur- containing gas or vapour at a concentration of about 0.1 to about 5000 ppm.
- a method for reducing the carbon monoxide content of a gas mixture including carbon monoxide and hydrogen comprising contacting the feedstock with a catalyst according to the first aspect above.
- a substrate of formula Cei -x M x 0 2 wherein x is between about 0 and about 0.3, optionally between about 0.01 and about 0.3, and wherein M, if present, is a metallic element other than Ce, for reducing poisoning of a catalytic element by a sulfur-containing gas or vapour.
- a method for reducing poisoning of a catalytic element by a sulfur-containing gas or vapour comprising depositing said catalytic element on a substrate, wherein said substrate has formula Cei -x M x 0 2 , wherein x is between about 0 and about 0.3, optionally between about 0.01 and about 0.3, and wherein M, if present, is a metallic element other than Ce.
- Said depositing may be conducted before exposing said catalytic element to the sulfur- containing gas or vapour. Said depositing may be such that the catalytic element is present in discrete regions on the substrate.
- Figure 2 shows the positive SIMS spectrum of spent 5%Ni/Al 2 0 3 (left)
- Figure 3 shows the positive SIMS spectrum of spent 5%Ni/Ceo.9Gdo.i0 2 .
- Figure 4 shows a proposed reaction mechanism of methanation of syngas in the presence of H 2 S over Ni/Ce0 2 (top) and Ni/Al 2 0 3 (bottom).
- Figure 5 shows the Ca 2p XPS spectra of (a) as-calcined 5%Ni/Ce 0 .9Cao.i0 2 ; (b) spent 5%Ni/Ceo.9Cao.i0 2 after methanation in 20 ppm of H 2 S for 5 h; (c) Ceo.9Cao. 1 O;> exposed to 100 ppm of H 2 S for 16 h at 500 °C and (d) 5%Ni/Ceo . 9Cao.i0 2 , reduced and exposed to 100 ppm of H 2 S for 16 h at 500 °C.
- Figure 6 shows the S 2p XPS spectra of (a) Ceo.9Cao. 1 O 2 and (b) reduced
- the term “comprising” means “including.” Variations of the word “comprising”, such as “comprise” and “comprises,” have correspondingly varied meanings. As used herein, the terms “including” and “comprising” are non-exclusive. Thus, for example, a feedstock “including” carbon monoxide and hydrogen may consist exclusively of carbon monoxide and hydrogen or it may contain one or more additional components (e.g. carbon dioxide). Similarly, a method “comprising” contacting a feedstock with a catalyst may consist exclusively of contacting the feedstock with the catalyst, or it may contain one or more additional steps (e.g., a feedstock analysis step). As used herein, the terms “including” and “comprising” do not imply that the specified integer(s) represent a major part of the whole.
- a plurality means more than one.
- a plurality may mean 2, 3 , 4, 5 , 6, 7, 8 , 9, 10, 15, 20, 30, 40, 50, 10 2 , 10 3 , 10 4 , 10 5 , 10 6 , 10 7 , 10 8 , 10 9 , 10 10 , 10", 10 12 , 10 13 , 10 14 , 10 15 , 10 16 , l O 1"7 , 10 18 , 10 19 , 10 20 , or more, and any integer derivable therein, and any range derivable therein.
- methanation and methanation reaction refer to a reaction that generates methane, and in particular, these terms refer to the reaction between hydrogen and one or more oxides of carbon to form methane. Accordingly, the terms “methanation” and “methanation reaction” may refer to the reaction between carbon monoxide and hydrogen to form methane and water, or the reaction between carbon dioxide and hydrogen to form methane and water, or a combination of both of these reactions.
- the term "catalytic element” may refer to any element which is recognised as having catalytic capabilities, e.g., an element that can catalyse a methanation reaction.
- the term "metallic nickel”, or “metallic cobalt”, or “metallic palladium” etc. refers to the metal, e.g., nickel, cobalt, or palladium, etc. in its elemental state (i.e., Ni(0), Co(0), Pd(0), etc.).
- the nomenclature x 0 /oMetal/Cei -x M x C> 2 e.g., 5% i/Ce 0 . 9 Cao.i0 2 is taken to mean x% by weight of the Metal, e.g., Ni, disposed or dispersed on a surface of a substrate of formula Cei. x M x 0 2 .
- a temperature of between 250 and 750 °C is inclusive of a temperature of 250 °C and a temperature of 750 °C.
- the present invention provides catalytic element-based methanation catalysts including, e.g., metallic Ni or metallic Co, Fe, Pt, Ru, Rh, Pd, or Ir, disposed on a substrate when used for catalysing a methanation reaction.
- the substrate has formula Cei -X M X 0 2 , wherein x is between about 0 and about 0.3, optionally between about 0.01 and about 0.3, and M, if present, is a metallic element other than Ce.
- Methanation reaction as referred to herein involves the generation of methane from a feedstock including an oxide of carbon and hydrogen, e.g., carbon monoxide and hydrogen.
- the associated exothermic chemical transformation may be represented by Equation 1 :
- Equation 1 The methanation reaction in Equation 1 is the reverse reaction of steam reforming of methane.
- the methanation reaction may also generate methane via Equation 2:
- the substrate of the catalyst according to the present invention may be particulate.
- the particles of the substrate may have a known mean particle diameter as measured using techniques such as microscopy, light scattering or any other suitable method for measuring particle diameter known to those skilled in the art.
- the shape of the substrate particles may be spherical, acicular, flat, flaky, prismoidal, polyhedral, fibrous, irregular, spheroidal, or granular.
- the term "mean particle diameter" may refer to the average diameter of a plurality of particles, e.g., the average hydrodynamic diameter of a plurality of particles, or may be taken to be the collective average of the minimum and maximum diameters of a plurality of particles, or the term “mean particle diameter” may refer to the average of the minimum and maximum diameter of a single particle.
- the particles of the substrate may have a mean particle diameter of less than about 0.5 ⁇ , or less than about 0.4 ⁇ , about 0.3 ⁇ , about 0.2 ⁇ , about 0.1 ⁇ (i.e., about 100 nm), about 90 nm, about 80 nm, about 70 nm, about 60 nm or less than about 50 nm.
- the particles of the substrate may have a mean particle diameter of between about 0.5 ⁇ and about 0.1 ⁇ , or between about 0.25 ⁇ and 75 nm, or between about 100 nm and about 10 nm.
- the particles of the substrate may have a mean particle diameter of about 0.4 ⁇ , about 0.3 ⁇ , about 0.2 ⁇ , about 0.1 ⁇ (i.e., about 100 nm), about 90 nm, about 80 nm, about 70 nm, about 60 nm or about 50 nm.
- x M x 0 2 In the substrate of formula Cei. x M x 0 2 , x may be between about 0 and about 0.3.
- x may be between about 0 and about 0.1 , or may be between about 0.01 and about 0.1 , or may be between about 0.05 and about 0.25, or may be between about 0.1 and about 0.3, or may be between about 0.1 and about 0.2, or may be between about 0.01 and about 0.25.
- x may be 0, or may be about 0.01, about 0.05, about 0.1 , about 0.15, about 0.2, about 0.25, or about 0.3.
- the substrate is of formula Ce0 2 .
- the substrate is of formula Ceo.9Mo.1O_ ⁇ wherein M is a metallic element other than Ce.
- Substrates of formula Cei -x M x 0 2 wherein x may be between about 0.01 and about 0.3 and M, if present, is a metallic element other than Ce, may be synthesised using any suitable method known in the art.
- x M x 0 2 may comprise vacancies, e.g., oxygen vacancies, to maintain charge balance.
- vacancies e.g., oxygen vacancies
- the ratio (Ce+M):0 may actually vary from 1 :2, e.g., the ratio (Ce+M):0 may be about 1 : 1.95, or about 1 : 1.9, or about 1 : 1.85, etc.
- the substrate of formula Cei_ x M x 0 2 may be represented as, e.g., Cei. x M x 0 2 .
- 'y' may be about 0 to about 0.5, or about 0 to about 0.1 , about 0 to about 0.2, about 0.1 to about 0.3, about 0 to 0.05, about 0.001 to about 0.05, about 0.001 to about 0.01 , about 0.001 to about 0.5 or about 0.3 to about 0.5. It may for example be about 0, 0.001 , 0.002, 0.005, 0.01 , 0.02, 0.05, 0.1 , 0.15, 0.2, 0.25, 0.3, 0.35, 0.4, 0.45 or 0.5.
- M in the substrate of formula Cei -x M x 0 2 , M, if present, may be a metallic element.
- Any suitable metal may be chosen, for example, the metallic element may be a lanthanoid, a transition metal, or an alkaline earth metal.
- the metallic element may therefore be a transition metal, e.g., may be Y.
- the metallic element may be a lanthanoid, e.g., may be Sm or may be Gd or may be a mixture of Sm and Gd.
- the metallic element may be an alkaline earth metal, e.g., may be Ca.
- the metallic element may be a mixture of two or more metallic elements, wherein, for example, the formula Cei_ x M x 0 2 may be represented by formula wherein the sum of x and n may be between about 0.01 and about 0.3 and M 1 and M 2 are each, independently, selected from the group consisting of a lanthanoid, a transition metal and an alkaline earth metal.
- the one or more metallic elements enhance the sulfur adsorption ability of the catalyst and/or increase the oxygen mobility in the Cei. x M x 0 2 material. Further, the one or more metallic elements may have a greater affinity for sulfur than for oxygen.
- the catalyst as described herein may comprise regions of a catalytic element disposed on a surface of the substrate.
- the catalyst as described herein may comprise regions of metallic Ni or metallic Co, Fe, Pt, Ru, Rh, Pd, or Ir disposed on a surface of the substrate. Mixtures of catalytic metals, at least one of which is catalytic, may also be used.
- the catalyst may additionally or alternatively comprise a catalytic element dispersed on a surface of the substrate.
- the catalyst as described herein may comprise regions of metallic Ni or metallic Co, Fe, Pt, Ru, Rh, Pd, or Ir dispersed on a surface of the substrate.
- 'region' as used herein may refer to discrete areas of a catalytic element disposed or dispersed on a surface of the substrate, e.g., non-connected, non-contiguous areas of metallic Ni or metallic Co, Fe, Pt, Ru, Rh, Pd, or Ir, or it may refer to continuous areas of a catalytic element disposed or dispersed on a surface of the substrate, e.g., interconnected or contiguous areas of metallic Ni or metallic Co, Fe, Pt, Ru, Rh, Pd, or Ir, as viewed using any suitable technique known in the art, for example, microscopy.
- the catalytic element disposed on or dispersed on a surface of the substrate may be particulate. Accordingly, a region of catalytic element may include, e.g., one metallic nickel or metallic Co, Fe, Pt, Ru, Rh, Pd, or Ir particle or may include, e.g., a plurality of metallic nickel or metallic Co, Fe, Pt, Ru, Rh, Pd, or Ir particles.
- the regions of catalytic element include a plurality of metallic nickel or metallic Co, Fe, Pt, Ru, Rh, Pd, or Ir particles
- the metallic nickel or metallic Co, Fe, Pt, Ru, Rh, Pd, or Ir particles may be uniformly or substantially uniformly disposed or dispersed throughout the region(s) on the surface of the substrate, or may be non-uniformly disposed or dispersed throughout the region(s) on the surface of the substrate, wherein the regions are as described in the preceding paragraph.
- the term 'region' may thus encompass one or more metallic nickel or metallic Co, Fe, Pt, Ru, Rh, Pd, or Ir particles disposed on a surface of the substrate, or two or more metallic nickel or metallic Co, Fe, Pt, Ru, Rh, Pd, or Ir particles dispersed on a surface of the substrate.
- the shape of the catalytic element particles may be spherical, acicular, flat, flaky, prismoidal, polyhedral, fibrous, irregular, spheroidal, or granular.
- the catalytic element particles may have a mean particle diameter of about 2 to about 100 nm, or about 2 to about 10, about 10 to about 40, about 20 to about 50, about 30 to about 60, about 50 to about 80, or about 70 to about 100 nm, e.g., about 2, about 5, about 10, about 20, about 40, about 60, about 80, or about 100 nm.
- the diameter of a particle may be taken as the hydrodynamic diameter, or may be taken to be the minimum diameter of a particle (e.g., a thickness), the maximum diameter of a particle (e.g., a length) or the mean diameter of a particle.
- the particle diameter of the catalytic element particles may be determined using well-established techniques including transmission electron microscopy and X-ray powder diffraction.
- the catalytic element may be disposed on or dispersed on the substrate using any suitable synthetic methods, for example, by conventional wet impregnation methods using salts of nickel, e.g., ⁇ ( ⁇ 3 ) 2 ⁇ 2 0, or other suitable salts of Co, Fe, Pt, Ru, Rh, Pd, or Ir and subsequent reduction to metallic nickel or metallic Co, Fe, Pt, Ru, Rh, Pd, or Ir in situ, for example, under a hydrogen atmosphere at elevated temperatures.
- the substrate may be monolithic rather than particulate.
- the regions of catalytic element e.g., metallic Ni or metallic Co, Fe, Pt, Ru, Rh, Pd, or Ir disposed on a surface of the substrate may be in the form of one or more layers (optionally discontinuous layers) of catalytic element or one or more veins of catalytic element on a surface of the monolithic substrate.
- the layer or vein of catalytic element may include particles of catalytic element as described above.
- the catalyst may comprise between about 1% and about 40% catalytic element, e.g., metallic Ni or metallic Co, Fe, Pt, Ru, Rh, Pd, or Ir by weight.
- the catalyst may comprise between about 1% and about 10% metallic nickel by weight, or between about 5% and 20% by weight, or between about 10% and 30% by weight, or between about 30% and 40% metallic nickel by weight, e.g., the catalyst may comprise about 1% metallic nickel by weight, or about 5% , about 8%, about 10%, about 12%, about 14%, about 16%, about 18%, about 20%, about 25%, about 30%, about 35% or about 40% metallic nickel by weight.
- the catalyst may comprise between about 1% and about 40% metallic Co, Fe, Pt, Ru, Rh, Pd, or Ir by weight, e.g., between about 1 % and about 10%, or between about 5% and 20%, or between about 10% and 30%, or between about 30% and 40% by weight metallic Co, Fe, Pt, Ru, Rh, Pd, or Ir. Suitable methods for determining metal content in materials are known in the art.
- the catalyst may have a metallic surface area, as measured in m 2 catalytic element per gram of catalyst, of between about 0.1 and about 3.0 m 2 /g, or between about 0.1 and about 1.5 m 2 /g, or between about 1 and about 2 m 2 /g, or between about 2 and about 3 m 2 /g.
- the metallic surface area in m 2 per gram of catalyst may be about 0.1 m 2 /g, about 0.5 m 2 /g, about 1.0 m 2 /g, about 1.5 m 2 /g, about 2.0 m 2 /g, about 2.5 m 2 /g, or about 3.0 m 2 /g.
- the catalyst may have a metallic surface area, as measured in m metallic catalytic element per gram of metal, of between about 5 and about 50 m " /g, or between about 5 and about 20 m /g, or between about 20 and about 35 m 2 /g, or between about 30 and about 50 m 2 /g.
- the metallic surface area in m 2 per gram of metal may be about 5 m 2 /g, about 10 m 2 /g, about 15 m 2 /g, about 20 m 2 /g,
- the specific surface area of the substrate may be between about 10 and about 300 m 2 /g as measured, for example, using BET methods well known in the art.
- the specific surface area of the substrate may be between about 10 m 2 /g and about 100 m 2 /g, or between about 50 m Ig and about 300 m7g, or between about 100 m7g and about 200 m7g, or between about 200 m7g and about 300 m7g, or between about 150 and 250 m7g, e.g., the specific surface area of the substrate may be about 10 m 2 /g, about 50 m 2 /g, about 75 m 2 /g, about 100 m7g, about 125 m7g, about 150 m7g, about 175 m7g, about 200 m7g, about 225 m7g, about 250 m Ig, about 275 m7g or about 300 m7g.
- the catalyst according to the invention and as described above in the section entitled 'Catalyst' may be used for catalysing a methanation reaction.
- the catalyst according to the invention and as described above in the section entitled 'Catalyst' may be used for reducing the carbon monoxide content of a gas mixture including carbon monoxide and hydrogen.
- the substrate of formula Cei. x M x 0 2 wherein x is between about 0 and about 0.3, optionally between about 0.01 and about 0.3, and wherein M, if present, is a metallic element other than Ce as described above in the section entitled 'Catalyst' may be used for reducing poisoning of a catalytic element by a sulfur-containing gas or vapour.
- a method for methanation of a feedstock including carbon monoxide and hydrogen comprising contacting the feedstock with a catalyst as described above in the section entitled 'Catalyst'.
- a method for reducing the carbon monoxide content of a gas mixture including carbon monoxide and hydrogen comprising contacting the feedstock with a catalyst as described above in the section entitled 'Catalyst'.
- the feedstock for input into the method of the invention may include molecular hydrogen and carbon monoxide.
- the feedstock may additionally include any other gas or vapour, for example, carbon dioxide gas, steam (i.e., water vapour), molecular nitrogen, methane, or a mixture of any two or more of these gases or vapours.
- the molar ratio of molecular hydrogen to carbon monoxide in the feedstock may be between about 4: 1 and about 1 : 1 , between about 4: 1 and about 3: 1 , between about 4: 1 and about 2: 1 , between about 3: 1 and about 2: 1, or between about 3: 1 and about 1 : 1 , e.g., the molar ratio of molecular hydrogen to carbon monoxide in the feedstock may be about 4: 1 , about 3.5: 1 , about 3: 1 , about 2.5: 1 , about 2: 1 , about 1.5: 1 or about 1 : 1.
- the ratio may depend on the source of the feedstock.
- the concentration of carbon monoxide in the gas mixture may be about 10% to about 40%, or about 10 to 30%, 20 to 40% or 20 to 30%, e.g., about 10%, 15%, 20%, 25%, 30%, 35% or 40%. This percentage may be by volume.
- the feedstock for input into the method of the invention may include, or may consist essentially of, coal gasification effluent, biomass gasification effluent, or a mixture of both of these.
- Coal gasification effluent may be the product of the gasification of black and/or brown coal or petroleum coke in the presence of oxygen, steam (water vapour) and heat and may optionally include any by-products of the coal gasification process.
- Biomass gasification effluent may be the product of the gasification of any suitable biomass, e.g., woody plant matter or components thereof in the form of pellets or chips, fibrous plant matter or components thereof, including fruits, flowers, grains, grasses, herbaceous crops, wheat straw, switchgrass, salix, sugarcane bagasse, cotton seed hairs, leaves, bark, needles, logs, roots, saplings, short rotation woody crops, shrubs, switch grasses, trees and vines, and grains or grain processing wastes (e.g., wheat/oat hulls, corn fines etc.), waste or byproduct streams from wood products, sawmill and paper mill discards and off-cuts, sawdust, and particle board or from wood-related materials and woody wastes and industrial products, e.g., pulp, paper (e.g., newspaper) papermaking sludge, cardboard, textiles and cloths, dextran, and rayon, agricultural crops or agricultural crop residues, sewage sludge, municipal waste, and/or
- the feedstock as described in the preceding paragraphs may additionally include a sulfur-containing gas or vapour.
- the sulfur containing gas may be present at a total
- the sulfur-containing gas may be hydrogen sulfide, or may be carbonyl sulfide, or may be organic thiols (e.g. methane thiol, ethane thiol, thiophenol etc.), or may be an oxide of sulfur, e.g., sulfur dioxide, or may be a mixture of any two or more of these.
- ppm of a sulfur-containing gas is by volume, i.e., is taken to mean microlitres of gas per litre of air ( ⁇ LI ).
- the feedstock as described in the preceding paragraphs may be analysed prior to contacting the feedstock with a catalyst according to the invention to determine the composition of the feedstock, and in particular, the concentrations of gases present, e.g., concentration of hydrogen gas, carbon monoxide, carbon dioxide, sulfur-containing gases, steam (i.e., water vapour), molecular nitrogen, methane, etc.
- concentration of any one or more of these gases may be altered, e.g., by removal of some or all of any one or more of the gases, or by supplementing the concentration of any one or more of the gases with additional gas(es) obtained or derived from any suitable source.
- the ratio of hydrogen to carbon monoxide in the feedstock derived from biomass or coal gasification effluent is about 2: 1
- additional hydrogen gas may be added to the feedstock prior to contacting the feedstock with the catalyst.
- contacting may comprise passing the feedstock through a packed bed reactor including the catalyst, or over or past a catalyst disposed in a reactor.
- the reactor may include one or more (e.g., 1 , 2, 3, 4 or 5) packed reactor beds arranged in series or in parallel.
- the packed bed reactor or reactors may operate under isothermal or adiabatic conditions.
- the catalyst may be packed in beds, rods, or plates, or may be coated on the inside surface of a reactor vessel or on some other surface thereof.
- the catalyst may be coated on any one or more of honeycomb catalyst structures, porous metal catalyst structures, or ceramic matrix catalyst structures.
- the contacting method may instead include bubbling the feedstock through a slurry including the catalyst, or include passing the feedstock through a fluidised bed reactor including the catalyst.
- the feedstock may be at a pressure of between about 1 to about 40 bar, or between about 1 and about 5 bar, between about 5 and about 10 bar, between about 5 and about 20 bar, between about 10 and about 25 bar, between about 20 and about 35 bar, or between about 25 and about 40 bar, e.g., the feedstock may be at a pressure of about 1 , 2, 3, 3.5, 4, 5, 6, 7, 8, 9, 10, 15, 20, 25, 30, 35 or 40 bar.
- the flow rate, e.g., gas hourly space velocity, of the feedstock may be between about 1000 h “1 and about 100 000 h “1 , or between about 1000 h “1 and about 10 000 h “1 , or between about 10 000 h “1 and about 50 000 h “1 , or between about 50 000 h “1 and about 100 000 h “1 , e.g., it may be about 1000, 5000, 10 000, 20 000, 30 000, 40 000, 50 000, 60 000, 70 000, 80 000, 90 000, or 100 000 h "1 . At times, other flow rates may be used.
- These flow rates may be a space velocity (SV; volumetric flow rate/catalyst volume) or a gas hourly space velocity (GHSV; reactant gas flow rate/catalyst volume).
- the contacting may be conducted at a temperature of at least about 250 °C, or at least about 300, 350, 400, 450, 500, 550 or 600°C, or between about 250 and about 750 °C, or between about 250 and about 400 °C, or between about 350 and about 600 °C, or between about 500 and about 750 °C, e.g., it may be about 400, about 450, about 500, about 550, about 600, about 650, about 700, or about 750 °C.
- the temperature and feedstock flow rate during the contacting method may be chosen to be sufficient to achieve equilibrium conversion of carbon oxides to methane, or at least 50%, at least 60%, at least 70%, at least 80%, or at least 90% of the equilibrium conversion of carbon oxides to methane.
- the gas mixture may include any gases in addition to carbon monoxide and molecular hydrogen, e.g., carbon dioxide gas, steam (i.e., water vapour), molecular nitrogen, methane, or a mixture of any two or more of these. Reducing the carbon monoxide content of such a gas mixture may be desired where carbon monoxide would act as a poison in industrial processes or where it would be toxic or poisonous to animals. It is envisaged that the methods described herein for catalysing a methanation reaction would be applicable to the method of reducing the carbon monoxide content of a gas mixture.
- gases in addition to carbon monoxide and molecular hydrogen e.g., carbon dioxide gas, steam (i.e., water vapour), molecular nitrogen, methane, or a mixture of any two or more of these. Reducing the carbon monoxide content of such a gas mixture may be desired where carbon monoxide would act as a poison in industrial processes or where it would be toxic or poisonous to animals. It is envisaged
- a method for reducing poisoning of a catalytic element by a sulfur-containing gas or vapour comprising depositing a catalytic element as described above in the section entitled 'Catalyst' on a substrate, wherein said substrate has formula Cei -x M x 0 2 , wherein x is between about 0 and about 0.3, optionally between about 0.01 and about 0.3, and wherein M, if present, is a metallic element other than Ce.
- the substrate of formula Cei_ x M x 0 2 may be as described above in the section entitled 'Catalyst'.
- said depositing may be conducted before exposing said catalytic element to the sulfur-containing gas or vapour. Further, said depositing may be such that the catalytic element is present in discrete regions on the substrate, for example, discrete regions as described herein for catalytic elements in the section entitled 'Catalyst'. 'Depositing' may be effected using any suitable technique known in the art, for example, conventional wet impregnation methods using salts of the catalytic element. It may comprise subsequent in situ reduction of the salt of the catalytic element to a metallic form of the catalytic element, for example, under a hydrogen atmosphere at elevated temperatures. Exposing said catalytic element to the sulfur-containing gas or vapour may comprise contacting a feedstock comprising the sulfur-containing gas or vapour with the catalytic element and/or substrate as described in this section entitled
- Ni/Cei -x M x 0 2 catalysts wherein x is between about 0 and about 0.3, optionally between about 0.01 and about 0.3, and wherein M, if present, is a metallic element other than Ce, were prepared by conventional wet impregnation methods using Ni(N0 3 ) 3 - 6H 2 0 as the Ni precursor and commercially available Cei.
- x M x C>2 Sigma Aldrich.
- Cerium oxide is well known for its oxygen storage and redox properties.
- the partial replacement of Ce with some other components, for example, Zr, Gd, Sm etc is believed to increase the stability, oxygen storage ability and reducibility.
- various nano-size cerium oxides with dopants of Y, Sm, Gd and Ca, nano- and micro- size Ce0 2 were used as catalyst supports.
- Figure 1 shows the results of the performance of 5%Ni supported on A1 2 0 3 , Ceo.gCao i0 2 ,Ceo.
- Ni dispersion refers to the ratio of the exposed number of Ni atoms to the total number of Ni atoms in the catalyst. Table 1: Ni dispersion (Micromeritics ASAP 2020 Surface Area and Porosity Analyser)
- Ni/Ce 0 . 9 Gd 0 . iO2 despite the fact that there are many more surface active Ni sites (metal dispersion 5.9% vs 1.5%) and sulfur content (0.19% vs 352 ppm) on 5% Ni/Ceo. 9 Gd 0 .i0 2 than on 5% Ni/Al 2 0 3 . Therefore, it is reasonable to propose that sulfur is more strongly bonded to Ni on A1 2 0 3 than on Ce 0 9 Gdo.i0 2 .
- Ceria is thought to react with H 2 S and form Ce 2 0 2 S according to Equation 4. Indeed, peaks attributed to Ce 2 0 2 S and respective fragments can be observed from the SIMS spectrum of spent 5%Ni/Ce 0 gGdo.iC ⁇ in Figure 3.
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| CN201480047397.8A CN105636688B (en) | 2013-06-28 | 2014-06-27 | methanation catalyst |
| SG11201510686TA SG11201510686TA (en) | 2013-06-28 | 2014-06-27 | Methanation catalyst |
| JP2016523707A JP6279726B2 (en) | 2013-06-28 | 2014-06-27 | Methanation catalyst |
| US14/901,523 US9908104B2 (en) | 2013-06-28 | 2014-06-27 | Methanation catalyst |
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| US9908104B2 (en) | 2013-06-28 | 2018-03-06 | Agency For Science, Technology And Research | Methanation catalyst |
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| US9908104B2 (en) | 2018-03-06 |
| SG2013050877A (en) | 2015-01-29 |
| SG11201510686TA (en) | 2016-01-28 |
| US20160151765A1 (en) | 2016-06-02 |
| JP2016523182A (en) | 2016-08-08 |
| CN105636688A (en) | 2016-06-01 |
| SG10201901016XA (en) | 2019-03-28 |
| JP6279726B2 (en) | 2018-02-14 |
| CN105636688B (en) | 2019-12-17 |
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