EP4154340A1 - Lewis/bronsted acid/base and nickel phosphide binary catalyst-system (co-catalysts) for direct electrochemical coreduction to hydrocarbons - Google Patents
Lewis/bronsted acid/base and nickel phosphide binary catalyst-system (co-catalysts) for direct electrochemical coreduction to hydrocarbonsInfo
- Publication number
- EP4154340A1 EP4154340A1 EP21809820.0A EP21809820A EP4154340A1 EP 4154340 A1 EP4154340 A1 EP 4154340A1 EP 21809820 A EP21809820 A EP 21809820A EP 4154340 A1 EP4154340 A1 EP 4154340A1
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- Prior art keywords
- catalyst
- cathode
- electrocatalyst
- combination
- carbon dioxide
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- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B3/00—Electrolytic production of organic compounds
- C25B3/01—Products
- C25B3/07—Oxygen containing compounds
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- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B11/00—Electrodes; Manufacture thereof not otherwise provided for
- C25B11/04—Electrodes; Manufacture thereof not otherwise provided for characterised by the material
- C25B11/051—Electrodes formed of electrocatalysts on a substrate or carrier
- C25B11/073—Electrodes formed of electrocatalysts on a substrate or carrier characterised by the electrocatalyst material
- C25B11/091—Electrodes formed of electrocatalysts on a substrate or carrier characterised by the electrocatalyst material consisting of at least one catalytic element and at least one catalytic compound; consisting of two or more catalytic elements or catalytic compounds
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- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B11/00—Electrodes; Manufacture thereof not otherwise provided for
- C25B11/04—Electrodes; Manufacture thereof not otherwise provided for characterised by the material
- C25B11/051—Electrodes formed of electrocatalysts on a substrate or carrier
- C25B11/054—Electrodes comprising electrocatalysts supported on a carrier
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- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B11/00—Electrodes; Manufacture thereof not otherwise provided for
- C25B11/04—Electrodes; Manufacture thereof not otherwise provided for characterised by the material
- C25B11/051—Electrodes formed of electrocatalysts on a substrate or carrier
- C25B11/055—Electrodes formed of electrocatalysts on a substrate or carrier characterised by the substrate or carrier material
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- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B11/00—Electrodes; Manufacture thereof not otherwise provided for
- C25B11/04—Electrodes; Manufacture thereof not otherwise provided for characterised by the material
- C25B11/051—Electrodes formed of electrocatalysts on a substrate or carrier
- C25B11/073—Electrodes formed of electrocatalysts on a substrate or carrier characterised by the electrocatalyst material
- C25B11/091—Electrodes formed of electrocatalysts on a substrate or carrier characterised by the electrocatalyst material consisting of at least one catalytic element and at least one catalytic compound; consisting of two or more catalytic elements or catalytic compounds
- C25B11/095—Electrodes formed of electrocatalysts on a substrate or carrier characterised by the electrocatalyst material consisting of at least one catalytic element and at least one catalytic compound; consisting of two or more catalytic elements or catalytic compounds at least one of the compounds being organic
-
- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B3/00—Electrolytic production of organic compounds
- C25B3/20—Processes
- C25B3/25—Reduction
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- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B3/00—Electrolytic production of organic compounds
- C25B3/20—Processes
- C25B3/25—Reduction
- C25B3/26—Reduction of carbon dioxide
Definitions
- the present invention relates to a novel binary catalyst system combining an acid/base co-catalyst and a nickel phosphide electrocatalyst for the direct electrochemical reduction of carbon dioxide and/or carbon monoxide and/or alpha-hydrogen reactive aldehydes and ketones to hydrocarbons, carbohydrates and other useful products, collectively referred to below as oxygenated hydrocarbons (or oxyhydrocarbons).
- the future renewable economy has yet to learn how to replicate these products.
- Manufacturing of complex chemicals made directly from CO2 and water is one such possible solution to both energy storage and a sustainable chemical industry that can close the carbon loop.
- the relatively clean stream of waste CO 2 produced from the combustion of natural gas by these industries is available as a resource for recycling both for energy storage and chemical feedstock production.
- the present application provides a direct method for achieving this recycling.
- Electrochemical reduction of CO 2 uses water as the hydrogen source (H + /e) to perform hydrogenation, producing alkanes on Cu and alcohols on noble metals and copper oxides.
- H + /e the hydrogen source
- These technologies are unable to make a significant impact owing to these limitations and more: in water the competition with 3 ⁇ 4 production (by-product) is significant, the high cost of noble metal electrocatalysts, and the poor product selectivity incapable of producing single alkane or alkene product when using abundant Cu as electrocatalyst.
- cocatalysts a different class of catalysts (herein denoted cocatalysts) to the previously disclosed electrocatalysts (based on transition metal phosphides for the electroreduction of CO2 to hydrocarbons; US Patent Application Serial No. 15/765,896) will provide enhanced product selectivity specifically to form carbon products containing one or more carbon atoms.
- the joint electrocatalyst plus co-catalyst when used together is called the catalyst system.
- These act on in addition to carbon dioxide and/or carbon monoxide, the following additives and intermediates: hydrocarbons, aldehydes or ketones type.
- additives encompass all possible additives to the binary compounds of nickel and phosphorous that modify the performance of the catalytic process without being consumed themselves.
- Additives can include any element or compound which is not a binary compound of nickel and phosphorus (i.e., a nickel phosphide), under 50% by weight of the composition.
- This co-catalyst binds to a reaction intermediate either in solution or on the surface: 1) influencing the intermediate’s binding orientation and binding strength, thereby 2) activating the intermediate for subsequent reaction with surface-bound hydrides or with other CO2/CO or other Cn reaction intermediates, thereby 3) facilitating the formation of new reaction intermediates on the surface or, thereby 4) leading to desorption of the reaction intermediates, by this means increasing selectivity towards this product.
- the combination of the co-catalyst with the transition metal phosphide catalyst changes the carbon product selectivity while having only a small effect on the 3 ⁇ 4 vs DCRR selectivity.
- the catalyst system alters the partitioning among the following chemical classes of carbon products: hydrocarbons, carboxylic acids, aldehydes, ketones, ethers, and alcohols (either aromatic or aliphatic).
- the co-catalyst may act on the reaction intermediate as above or on the electrocatalyst (the catalyst system) to achieve this overall outcome without requiring a separate stage or reactor.
- the co-catalyst may act either directly by binding to the electrocatalyst (so- called “push effect”) or to any of the surface-bound reaction intermediates (so-called “pull effect”).
- the co-catalyst may act indirectly in solution to modify the reactant or product concentrations in such a way that influences the availability of each for activation by the electrocatalyst (transition metal phosphide). In the latter case, these intermediates may or may not form on the electrocatalyst alone.
- the co-catalyst can be immobilized on the electrocatalyst in a subsequent synthesis step, incorporated directly during electrocatalyst synthesis, incorporated in the support, or dissolved in the electrolyte solution together with the reactants.
- the improved product selectivity provided by such a catalyst system enables an electrochemical method for producing purer compounds that require less processing.
- ethylene glycol can be produced from CO2, water, and renewable electricity, which would allow green and sustainable polymers to be produced for various markets.
- Ethylene glycol and related diols are commercially used as monomers in polymer production.
- feedstocks and monomers can be made from CO2, such as the C3 compound, methylglyoxal (1,2-propanedione; MEG), and the C5 compound mixture of 3-hydroxy-2- furancarboxaldehyde and 2 -hydroxy-3 -furancarboxaldehyde, which mixture has possible utility as an octane booster in fuels among others.
- MEG methylglyoxal
- C5 compound mixture 3-hydroxy-2- furancarboxaldehyde and 2 -hydroxy-3 -furancarboxaldehyde, which mixture has possible utility as an octane booster in fuels among others.
- One aspect of the invention is directed to a combination of 1) a cathode for direct electrochemical reduction of carbon dioxide and/or carbon monoxide with/without carbohydrates containing aldehyde or ketone functional groups with active alpha-hydrogens (together called feedstock) to form oxyhydrocarbon products, the cathode comprising a conductive support substrate, a co-catalyst other than a nickel phosphide, and an electrocatalyst coating, the electrocatalyst coating comprising nanoparticles of Ni x P y , (also referred to herein as “Ni-P”) where x and y represent integers such that the compounds are selected from the group consisting of N3 ⁇ 4P, N1 5 P2, N112P 5 , NI2P, N1 5 P4, NIP2, and N1P3; or the electrocatalyst coating comprising nanoparticles of Ni x P y is selected from the group consisting of N3 ⁇ 4P, N1
- the co-catalyst can comprise any acid; the acid can be selected from a Lewis acid or a Bronsted-Lowry acid.
- the co-catalyst can comprise any base; the base can be selected from a Lewis base or a Bronsted-Lowry base.
- the base can be selected from the group consisting of the conjugate base of each of the Lewis acids above or each of the Bronsted-Lowry acids above.
- the cathode can be in contact with an electrolyte solution comprising the co-catalyst or the co-catalyst can be an ionic liquid electrolyte that possesses HCO3 or CO3 2 or H + transport functionality and is in contact with the cathode.
- the co-catalyst can comprise an ionomer or a conducting polymer or a modification or doping of the electrode support.
- the co-catalyst can comprise a salt of Cu, Ag, Au, Zn, mixtures of two or more thereof, or salts or oxides thereof.
- the salt or oxides may also become soluble at an appropriate pH.
- the co-catalyst can comprise a simple metal or alloy selected from the group consisting of Cu, Ag, Au, Zn, and intermetallic compounds thereof.
- the co-catalytic metal or intermetallic compounds can be in the form of molecular ions, nanoparticles or larger particles.
- the co-catalyst of the above combination binds to a reaction intermediate, such as but not limited to formate, formyl/formaldehyde, glycoaldehyde, methylglyoxal or furan derivatives, on the electrocatalyst surface, and 1) influences the intermediate’s binding orientation, and/or 2) activates the intermediate for subsequent reaction with surface-bound hydrides or other CO2/CO reaction intermediates, and/or 3) influences the intermediate’s binding strength to become stronger or weaker, and/or 4) facilitates the formation of new reaction intermediates on the surface.
- the co-catalyst increases the carbon product selectivity towards a particular hydrocarbon or oxyhydrocarbon product.
- the cathode can be in contact with the electrolyte solution comprising the co-catalyst with the conductive support further comprising the same co-catalyst.
- the conductive support substrate can further incorporate a material to be reduced, whereby the electrocatalyst coating catalytically interacts with the material to be reduced, which is incorporated into the conductive support substrate.
- the material to be reduced comprises carbon dioxide, carbon monoxide, a mixture thereof, or any other oxyhydrocarbon molecules containing either aldehyde or ketone functional groups and reactive alpha-hydrogens.
- the conductive support substrate can be an ionomer or a conducting polymer.
- Another aspect of the invention is directed to a method for generating oxyhydrocarbon products from water, carbon dioxide and/or carbon monoxide via an electrolysis reaction, performed by: (a) placing the cathode of the above combination in an electrolyte together with an anode; (b) placing the anode and cathode in conductive contact with an external source of electric current; (c) providing a carbon source of carbon dioxide and/or carbon monoxide to the cathode; and (d) applying the electric current to drive an electrolysis reaction at the cathode, whereby oxyhydrocarbon products are generated selectively from the carbon dioxide and/or carbon monoxide.
- the electrocatalyst and co-catalyst are selected to generate a product selected from 2, 3-furandiol, 2-formylfuran-3-ol, ethylene glycol, 1,3-propanediol, 1,2- propanediol, stereo-isomers thereof, and combinations thereof.
- the source of carbon dioxide, carbon monoxide or any other oxyhydrocarbon molecules containing either aldehyde or ketone functional groups and reactive alpha-hydrogens is a flowing source.
- the flowing source can be a flow reactor.
- a further aspect of the invention is directed to a method for reduction of carbon dioxide to oxyhydrocarbon products, performed by: (a) placing a cathode in an aqueous electrolyte together with an anode and a co-catalyst (as described above), where the cathode includes a conductive support substrate, co-catalyst (as described above), and an electrocatalyst coating including nanoparticles of Ni x P y where x and y represent integers such that the compounds are selected from N13P, N1 5 P2, N112P 5 , N12P, N1 5 P4, N1P2, and N1P3, where the co-catalyst can be on the conductive support, in the electrolyte, or both; (b) placing the anode and cathode in conductive contact with an external source of electric current; (c) providing a flowing source of carbon dioxide to the cathode; and (d) applying the electric current to drive an electrolysis
- Another aspect of the invention is directed to a method for reducing carbon dioxide to oxyhydrocarbon products, performed by: (a) placing a cathode in an electrolyte together with an anode and a co-catalyst, where the cathode includes a conductive support substrate and an electrocatalyst coating, the electrocatalyst coating includes nanoparticles of Ni x P y where x and y are integers such that the compounds are selected from N13P, N1 5 P2, N112P 5 , N12P, N1 5 P4, N1P2, and N1P 3 , where the co-catalyst can be on the conductive support, in the electrolyte, or both; where the co-catalyst binds to an aldehyde, ketone, carboxylic acid, diol, or alcoholic functional group of a reaction intermediate, thereby activating it for further reaction with the electrocatalyst; (b) placing the anode
- FIG. 1 shows the faradaic efficiency (electron efficiency) for the N3 ⁇ 4P, N1 12 P 5 , N1 2 P, N1 5 P 4 , N1P 2 electrocatalysts in the absence of co-catalysts in CO 2 purged potassium bicarbonate (electrolyte). The potential was corrected for the pH dependence of the standard 3 ⁇ 4 electrode (i.e. reversible 3 ⁇ 4 electrode, RHE).
- FIG. 2 shows the faradaic efficiency (electron efficiency) for the N12P electrocatalysts with two different co-catalysts in CO2 purged potassium bicarbonate (electrolyte).
- FIGS. 3A, 3B, 3C and 3D show proposed changes in mechanism caused by the addition of the aforementioned various co-catalysts.
- FIG. 4A shows ’H NMR of products demonstrating change in selectivity upon addition of 25 mM boric acid.
- the electrocatalyst is a solid pellet of N12P at 0V vs RHE at pH 7.5.
- FIG. 4B shows the corresponding HPLC (refractive index detector trace) demonstrating change in selectivity upon addition of 25 mM boric acid.
- the electrocatalyst is a solid pellet of N12P at 0V vs RHE at pH 7.5. Comparison is shown to the electrolyte blank and pure ethylene glycol standard.
- FIG. 5 shows a ’H NMR spectrum demonstrating change in product selectivity upon deposition of Cu metal onto the electrocatalyst (solid pellet of N12P at 0V vs RHE at pH 1).
- the presently disclosed technology is directed to the preparation of oxyhydrocarbons that are common chemical feedstocks which can readily be handled by existing transport and export facilities.
- HER 2 e hydrogen evolution reaction
- the challenge is to produce an electrocatalyst which preferentially provides hydrogen equivalents (H* or hydrides) to reduce CO2 to a specific carbon product rather than forming a mixture of products or 3 ⁇ 4.
- H* hydrogen equivalents
- Common CO2 reduction electrocatalysts based on Cu electrodes form a mixture of products where optimized results show selectivity towards hydrocarbons of 72.3% (CH4 was the major product) achieved at -1.04V vs. the reversible hydrogen electrode (“RHE”), which is about 1.2 V more negative than the thermodynamic limit of +0.16V vs. RHE.
- RHE reversible hydrogen electrode
- a viable technology to produce fuels from CO2 must quantitatively compare to industrial procedures.
- industrial methanol production from CO is estimated at 51% energy efficiency.
- the theoretical maximum energy efficiency for DCRR — assuming 0V over-potential and complete recovery of products — is 73%, indicating that DCRR is a technology theoretically capable of significantly outperforming the current industrial standard.
- Efficiency for the electrochemical reduction (also referred to herein as “electroreduction”) of CO2 to CH 4 is currently 13% on Cu surfaces assuming oxygen evolution is the anode reaction.
- electrocatalysts are an expensive down-time investment for any commercial process, hence it is critical to maintain extended life-times of excellent electrocatalyst performance. There are currently very few examples of tests exceeding even 2 hours of DCRR on transition metal electrodes.
- the electrocatalysts of the invention target at least 16 hours of continuous activity. Industrial application requires significantly longer stabilities than hours. For example, industrial anodes for the chlor-alkali process (based on RuO x and IrO x ) have lifetimes of about 7 years.
- N3 ⁇ 4P, N112P5, N12P, N15P4, and N1P2 have now been synthesized as highly compacted powders forming approximately flat surfaces for the inventive family of direct CO2 reduction electrocatalysts. This allows direct observation of catalytic activity on the most stable crystal phase termination, and is directly comparable to optimized Cu- foils of the prior art. Their activity as DCRR electrocatalysts in the absence of co-catalyst are shown in the data below (FIG. 1). The selectivity of these electrocatalysts for DCRR was found to be tunable based on composition and structure. The high natural abundance of both Ni and P elements ensures the scalable production of these electrocatalysts for industrial applications.
- nickel phosphide electrocatalysts above together with the co-catalyst changes the carbon product selectivity by interacting with selected reaction intermediates.
- anion exchange membranes allow for the transport of CO3 2 and neutral CC (aq) and H2O to the electrocatalyst surface, while restricting H + accessibility due to charge repulsion.
- DCRR activity is known to be sensitive to pH in that higher pH improves selectivity but limits CO2 availability.
- an anion exchange membrane rather than increasing the pH of bulk solution, strongly favors DCRR over HER. Therefore, one aspect of the present invention is directed to a composite electrode of an inventive binary electrocatalyst and co-catalyst and various polymers with anion conduction properties near the electrocatalyst surface.
- hydrophobic polymer materials incorporated into the electrode substrate allow for the transport of neutral CC (g) to the electrocatalyst and co-catalyst.
- DCRR is critically dependent on mass-transport when producing liquid products or operating in liquid electrolytes.
- one aspect of the present invention is directed to a composite electrode of the above electrocatalyst and co- catalyst in various polymers with varying hydrophobicity or of varying composition as to tune the electrodes ensemble hydrophobicity.
- an anionic ionomer may be replaced with an ionic liquid that possesses HCO3 or CO3 2 or H + transport functionality.
- the bicarbonate, carbonate, or H + functional groups are bound to either a polymer or a soluble molecule, where the soluble molecule can be of variable size: small, medium, or large.
- FIG. 1 shows how going from N1 3 P (high nickel content) to N1P 2 (high phosphorous content), an increased DCRR selectivity at low applied voltages can be observed. At higher applied voltages, 3 ⁇ 4 evolution is favored over DCRR .
- N1 2 P and N1P 2 show the highest selectivity for DCRR but the former favors a C 4 product whereas the latter favors a C 3 product. This indicates that, for this family of binary compounds, where only the crystalline phase changes (the same binary elements), there is a clear difference in how the surfaces bind CO 2 and therefore in the carbon product.
- co-catalysts encompass all possible additives to the binary compounds of nickel and phosphorous that modify the performance of the catalytic process without being consumed themselves.
- Additives include any element or compound that is not a binary compound of nickel and phosphorus, under 50% by weight of the composition.
- This co-catalyst binds to a reaction intermediate on the surface or in solution: 1) influencing the intermediate’s binding orientation, and/or 2) activating the intermediate for subsequent reaction with surface-bound hydrides or other CO2/CO reaction intermediates, and/or 3) influencing the intermediate’s binding strength to become stronger or weaker, and/or 4) facilitating the formation of new reaction intermediates on the surface.
- the co-catalysts of the invention that are ionic are conjugate acid/base pairs and charged ions that are used together with the transition metal phosphide electrocatalysts as dopants incorporated during electrocatalyzed synthesis, co-deposited on the transition metal phosphide electrocatalyst, or added to the electrolyte bathing the electrodes.
- Other chemical terms used to denote these co-catalysts are Lewis acid/base pairs, Bronsted-Lowry acid/base pairs (also known as Bronsted acids/bases) and cations/anions, respectively.
- adjustment of pH can provide a mixture of acidic and conjugate base species.
- boric acid can be added to the electrolyte solution, and adjustment of pH provides a mixture of boric acid and borate species.
- sodium borate can be added to the electrolyte solution, and adjustment of pH provides a mixture of boric acid and borate.
- the co-catalyst is non- ionic and affects reaction on the transition metal phosphide electrocatalyst as a deposit on the surface (or as a dopant in the catalyst surface) binding reaction intermediates such that they can react with the transition metal phosphide surface, or DCRR intermediates bound to the transition metal phosphide electrocatalyst surface.
- co-catalysts i.e., species or materials that are not consumed and can exist either as soluble molecules in the electrolyte, adsorbed molecules on the electrocatalyst surface, incorporated into the electrocatalyst support or ionomer or conductive polymer, or as dopant ions throughout the electrocatalyst bulk.
- co-catalysts i.e., species or materials that are not consumed and can exist either as soluble molecules in the electrolyte, adsorbed molecules on the electrocatalyst surface, incorporated into the electrocatalyst support or ionomer or conductive polymer, or as dopant ions throughout the electrocatalyst bulk.
- Mg 2+ (classified as a cation or Lewis acid) forms minimal C 2 product and a increased level of formic acid compared to the electrocatalyst only; however, this is still below 15% max likely due to the solubility limit of MgCC> 3 co-catalyst.
- a method of improvement could be the use of other co-catalysts with higher solubility or the incorporation of the co-catalyst in the conductive catalyst support positioned primarily in the hydrophilic regions.
- the applied negative bias is increased, the yield of oxyhydrocarbon products decreases in competition with increasing 3 ⁇ 4 yield on all electrocatalysts with or without co-catalysts. This offers direct insight into the mechanism (see FIGS. 3A-3D).
- FIGS. 3A and 3B Glycoaldehyde reduction: Lewis (or Bronsted) acid activation of the aldehyde group of surface-bound glycoaldehyde*. This activates the aldehyde for reduction into the corresponding alcohol. This mechanism is supported by the activation at low pH.
- FIG. 3C Glycoaldehyde-formaldehyde disproportionation reaction: The Lewis or Bronsted base-catalyzed hydrolysis of surface-bound formaldehyde* sets up its disproportionation reaction with surface-bound glycoaldehyde* (by intermolecular hydride transfer) to form formic acid and ethylene glycol, respectively.
- the base-catalyzed disproportionation reaction of two carbonyls to produce a carboxylic acid and alcohol is an example of a class of reactions called the Cannizzaro reaction.
- the formic acid* product is further electro-reduced to formaldehyde* at the electrode surface and ultimately consumes all CO2 to make ethylene glycol.
- FIG. 3D Oxalic acid pathway: A third possible pathway that fits the available data is CO2 insertion into the C-H bond of surface-bound formic acid*. This step forms oxalate which can react further with surface hydride to generate ethylene glycol and water.
- N12P was prepared by solid state synthesis and pressed into a pellet. The tests were performed under the specified applied potentials in CC -saturated electrolyte (a solution containing 0.5 M KHCO3 and one of the three co-catalysts selected from 25 mM hexamethylene tetraamine, 25 mM boric acid, or 1.5 mM Mg 2+ . The tests were conducted at ambient pressure and temperature, at pH 7.5, for 16 h per experiment. Ambient temperature typically fell between 70 and 80°F. The composition of the headspace was monitored by gas chromatography, and the liquid products were analyzed by HPLC and NMR.
- FIG. 4A shows the ’H NMR of the electrolyte, where the major peak is ethylene glycol (as confirmed by the HPLC trace FIG. 4B), confirming the shift in selectivity caused by the addition of the co-catalyst.
- the co-catalysts are effective when applied to all members of the nickel phosphide family of electrocatalysts disclosed above, including N13P, N1 5 P2, N112P 5 , N12P, N1 5 P4, N1P2, and N1P 3 as well as the electrocatalyst nanoparticles of an alloy of one or more of the above Ni x P y compounds and Fe 2 P, where the alloy has a Ni-P:Fe 2 P ratio of between 100:0 to 0:100 wt%, and preferably between about 99: 1 and 1 :99 wt%.
- Particularly preferred nickel phosphides for cocatalysis include N13P, N112P 5 , N12P, N1 5 P4, and N1P2.
- the co-catalyst concentration in the electrolyte can range from very low up to its limit of solubility, and is typically about 0.1 mM to about 10 M.
- concentration range of the co-catalyst is about 0.5 mM to about 5 M.
- concentration range of the cocatalyst can be about 1 mM to about 1 M, or about 1 mM to about 100 mM, or about 1.5 mM to about 50 mM, or about 1.5 mM to about 25 mM.
- the concentration of soluble co-catalyst can range from about 0.1 mM to about 100 mM.
- the co-catalyst can be present in the electrolyte in about 1.5 mM or about 25 mM.
- a number of ranges of values are provided. It is understood that each intervening value, to the tenth of the unit of the lower limit, unless the context clearly dictates otherwise, between the upper and lower limits of that range is also specifically disclosed.
- Each smaller range between any stated value or intervening value in a stated range and any other stated or intervening value in that stated range is encompassed within the invention.
- the upper and lower limits of these smaller ranges may independently be included or excluded in the range, and each range where either, neither, or both limits are included in the smaller ranges is also encompassed within the invention, subject to any specifically excluded limit in the stated range.
- ranges excluding either or both of those included limits are also included in the invention.
- the term “about” generally includes up to plus or minus 10% of the indicated number. For example, “about 10%” may indicate a range of 9% to 11%, and “about 20” may mean from 18 to 22. Preferably “about” includes up to plus or minus 6% of the indicated value. Alternatively, “about” includes up to plus or minus 5% of the indicated value. Other meanings of “about” may be apparent from the context, such as rounding off, so, for example “about 1” may also mean from 0.5 to 1.4.
- co-catalysts of the present invention encompass all possible additives to the binary compounds of nickel and phosphorous that modify the performance of the catalytic process without being consumed themselves.
- This second co-catalytic metal or metal ion must be selected from a group that is known to facilitate the reduction of CCh or CO or other reaction intermediates from the DCRR.
- the co-catalytic metal, intermetallic or oxide are preferably nanoparticles ranging in size from about 0.1 to about 1000 nm.
- the co-catalyst particle size can be about 0.5 nm to about 1000 nm, or about 0.5 nm to about 500 nm, or about 0.5 nm to about 50 nm, or about 0.5 nm to about 20 nm.
- the co-catalyst particle size can be about 0.1 nm to about 500 nm, or about 0.1 nm to about 50 nm, or about 0.1 nm to about 5 nm, or about 0.1 nm to about 2 nm.
- Deposition of such a co-catalyst on nickel phosphide alters the selectivity of the reaction by changing the populations and binding affinities of reaction intermediates on the surface.
- the ’H NMR spectrum in FIG. 5 shows the CCh reduction products formed upon electrodeposition of copper metal on N12P nanoparticles, or soluble Cu salts on N12P nanoparticles at 0V vs RHE and acidic pH.
- the data demonstrate the formation of two C5 compounds (3-hydroxy-2- furancarboxaldehyde and 2-hydroxy-3-furancarboxaldehyde).
- binary transition metal phosphide electrocatalyst compounds in combination with the co-catalyst have been demonstrated to have surprising DCRR carbon product selectivity for hydrocarbons or oxyhydrocarbons.
- the carbon-containing products are formed at higher rates and in higher concentrations. This constitutes another aspect of the invention.
- An aspect of the invention is directed to a combination of 1) a cathode for direct electrochemical reduction of carbon dioxide and/or carbon monoxide, together with any other added hydrocarbon molecules containing either aldehyde or ketone functional groups and reactive alpha-hydrogens to oxyhydrocarbon products, the cathode including a conductive support substrate and an electrocatalyst coating, the electro-catalyst coating including nanoparticles of Ni x P y , where x and y represent integers such that the compounds are selected from N1 3 P, N ⁇ R S , N112P 5 , NbP, N1 5 P4, N1P2, and N1P3; or the electro-catalyst coating including nanoparticles of NixPy is selected from N13P, N1 5 P2, N112P 5 , N12P, N1 5 P4, N1P2, and N1P3, and further alloyed with Fe2P, where the alloy has a Ni-P:Fe2
- the Ni-P:Fe2P ratio can be between about 99: 1 to about 1 :99 wt%.
- the NiP:Fe2P ratio can be between about 95:5 to about 5:95 wt%.
- the Ni-P:Fe2P ratio can be between about 90:10 to about 10:90 wt%.
- the Ni-P:Fe2P ratio can be between about 25:75 to about 75:25 wt%.
- the co-catalyst can comprise an acid; the acid can be selected from a Lewis acid or a Bronsted-Lowry acid.
- Suitable R alkyl groups include, without limitation, methyl, ethyl, n-propyl, iso-propyl, n-butyl, sec-butyl, iso-butyl, tert- butyl, n-pentyl, iso-pentyl, sec-pentyl, tert-pentyl, neopentyl.
- this also includes (C63 ⁇ 4)3B (triphenyl borane) and H3NBH3 when x or y is 0, and H3BO3 (boric acid) and B3 ⁇ 4 when z is 0.
- the co-catalyst can comprise a base; the base can be selected from a Lewis base or a Bronsted-Lowry base.
- the base can be selected from NH3, carbamide, urea, hydrazine, primary amines, secondary amines, tertiary amines, pyridines, and mixtures of two or more thereof.
- the cathode can be in contact with an electrolyte solution containing the co-catalyst or the co-catalyst can be an ionic liquid electrolyte that possesses HCO3 or CO3 2 or H + transport functionality and is in contact with the cathode.
- the co-catalyst can be an ionomer or a conducting polymer.
- the co-catalyst can include a soluble salt of Cu, Ag, Au, Zn, mixtures of two or more thereof, or salts or oxides thereof.
- the salts or oxides become soluble at an appropriate pH.
- the co-catalyst can include a simple metal or alloy selected from Cu, Ag, Au, Zn, and intermetallic compounds thereof.
- the co-catalytic metal or intermetallic compounds can be in the form of nanoparticles.
- the co-catalytic metal, inter-metallic or oxide nanoparticles range in size from about 0.1 to about 1000 nm.
- the co-catalyst particle size can be about 0.5 nm to about 1000 nm, or about 0.5 nm to about 500 nm, or about 0.5 nm to about 50 nm, or about 0.5 nm to about 20 nm.
- the co-catalyst particle size can be about 0.1 nm to about 500 nm, or about 0.1 nm to about 50 nm, or about 0.1 nm to about 5 nm, or about 0.1 nm to about 2 nm.
- the co-catalyst of the above combination binds to a reaction intermediate on the electrocatalyst surface or in solution and 1) influences the intermediate’s binding orientation, and/or 2) activates the intermediate for subsequent reaction with surface-bound hydrides or other CO2/CO reaction intermediates, and/or 3) influences the intermediate’s binding strength to become stronger or weaker, and/or 4) facilitates the formation of new reaction intermediates on the surface.
- the cathode can be in contact with the electrolyte solution comprising the co-catalyst with the conductive support further comprising the same co-catalyst.
- the conductive support substrate can further incorporate a material to be reduced, whereby the electrocatalyst coating catalytically interacts with the material to be reduced which is incorporated into the conductive support substrate.
- the material to be reduced comprises carbon dioxide, carbon monoxide, or a mixture thereof.
- the conductive support substrate can be an ionomer or a conducting polymer.
- Another aspect of the invention is directed to a method for generating oxyhydrocarbon products from water, carbon dioxide and/or carbon monoxide via an electrolysis reaction, performed by: (a) placing the combination of the electrocatalyst-coated cathode and a co-catalyst in an electrolyte together with an anode; (b) placing the anode and cathode in conductive contact with an external source of electric current; (c) providing a carbon source of carbon dioxide and/or carbon monoxide to the cathode; and (d) applying the electric current to drive an electrolysis reaction at the cathode, whereby oxyhydrocarbon products are generated selectively from the carbon dioxide and/or carbon monoxide.
- the electrocatalyst and cocatalyst are selected to generate a product selected from 2,3-furandiol, 2-formylfuran-3-ol, ethylene glycol, 1,3-propanediol, 1,2-propanediol, stereo-isomers thereof, and combinations thereof.
- the source of carbon dioxide and/or carbon monoxide is a flowing source.
- the flowing source can be a flow reactor.
- a further aspect of the invention is directed to a method for reduction of carbon dioxide to oxyhydrocarbon products performed by (a) placing a cathode in an aqueous electro-lyte together with an anode and a co-catalyst of an acid or a base or a charged ionic species, where the cathode includes a conductive support substrate, a co-catalyst including an acid or a base or a charged ionic species, and an electrocatalyst coating of nanoparticles of Ni x P y where x and y represent integers such that the compounds are selected from N13P, N1 5 P2, N112P 5 , NbP.NisP ⁇ N1P 2 , and N1P 3 , where the co-catalyst can be on the conductive support, in the electrolyte, or both; (b) placing the anode and cathode in conductive contact with an external source of electric current; (c) providing a flowing
- Yet another aspect of the invention is directed to a method for reducing carbon dioxide to oxyhydrocarbon products, performed by: (a) placing a cathode in an electrolyte together with an anode and a co-catalyst, where the cathode includes a conductive support substrate and an electrocatalyst coating, the electrocatalyst coating includes nanoparticles of Ni x P y where x and y are integers such that the compounds are selected from N13P, NI 5 P2, N112P 5 , NI2P, N1 5 P4, N1P2, and N1P 3 , where the co-catalyst can be on the conductive support, in the electrolyte, or both; where the co-catalyst binds to an aldehyde, ketone or alcoholic functional group of a reaction intermediate, thereby activating it for further reaction with the electrocatalyst; (b) placing the anode and cathode in conductive
- the electrocatalysts in the examples below were synthesized and characterized by physical characterization methods to ascertain their atomic structure and their HER activity is tested electrochemically and by gas chromatography.
- the inventive electrocatalysts can be supported on a titanium film electrode, for example, by being pressed into a pellet and bonded to a titanium film electrode via silver paint and sealed in a non-conducting epoxy.
- the electrocatalysts can be supported on carbon or ceramic powder.
- the as-synthesized electrocatalysts of this disclosure have grain sizes in the range from about 5 nm to about 5000 nm, preferably from about 5 nm to about 1000 nm, more preferably from about 5 nm to about 500 nm, and even more preferably from about 5 nm to about 20 nm.
- the grain sizes can range from about 10 to about 4000 nm, or from about 25 to about 3000 nm, or from about 50 to about 2500 nm.
- the particle size can be at least 100 nm. These grains are part of larger 0.3 -1.8 pm spherical particle agglomerates.
- the electrocatalyst comprises a catalytic group and a conductive support substrate supporting a plurality of the catalytic groups.
- the support substrate can be capable of incorporating hydrogen cations, and at least some of the catalytic groups supported by the support substrate are able to catalytically interact with the hydrogen cations incorporated into the support substrate.
- the support substrate can be capable of incorporating water molecules, and at least some of the catalytic groups supported by the support substrate are able to catalytically interact with water molecules incorporated into the support substrate.
- the support substrate can be capable of incorporating carbon dioxide, and at least some of the catalytic groups supported by the support substrate are able to catalytically interact with CO2 molecules incorporated into the support substrate.
- the support substrate can be capable of incorporating the co-catalyst and at least some of the catalytic groups comprising the support substrate are able to catalytically interact with the co-catalyst incorporated into the support substrate.
- the support substrate has a plurality of porous regions that are microporous, mesoporous, and/or macroporous.
- the support substrate can be a microporous substrate having an average pore size of less than about 2 nm.
- the support substrate can be a mesoporous substrate having an average pore size of from about 2 to about 50.
- the support substrate can be a macro-porous substrate having an average particle size of greater than about 50 nm.
- the support substrate is conductive to electrons so that when an electric potential difference is present across separate points on the support substrate, the mobile charges within the support substrate are forced to move, and an electric current is generated between those points.
- the support substrate can be rendered conductive by applying a thin layer of the support substrate on a conductive material.
- Suitable conductive materials include glassy carbon, carbon nanotubes and nanospheres, titanium foils/wires/meshes/foams/knitted wire meshes, aluminum foils/ wires/meshes/foams/knitted wires meshes, fluoride doped tin oxide (FTO or ((F)SnC )) coated glass and indium tin oxide (ITO) (or any of the transparent conductive oxides) coated glass, and multilayer structures having nano-structured semiconductor films coated onto the con-ductive substrates.
- FTO or ((F)SnC ) fluoride doped tin oxide
- ITO indium tin oxide
- the support substrate can contact a sensitized semiconductor.
- the support substrate has hydrophobic regions and hydrophilic regions, and contributes co-catalyst function.
- the catalytic groups can be supported in the hydrophobic regions of the support substrate and once supported are able to catalytically interact with water or CO2 molecules in the hydrophilic regions.
- the support substrate is thought to act as an interface between hydrogen cations, water molecules or CO2 molecules and the catalytic groups that are otherwise insoluble in aqueous solution.
- the hydrophobic regions can be formed by a hydrophobic polymeric backbone and the hydrophilic regions are regions of ionizable functional groups, preferably on the polymer backbone that can serve as sites for proton conductance.
- the ionizable functional groups are sulfonate groups (-SO3H) that lose a proton to form negatively charged sulfonate groups.
- the ionizable functional groups can form positively charged functional groups that can serve as sites for hydroxide or carbonate ion conductance, if preferred.
- the support substrate can be, for example, polysulfones, polysulfonates, and poly- phosphonates.
- the supports substrate can comprise a sulfonated fluoro-polymer (sold under the trade mark of NAFION ® ).
- the hydrophobic CF2CF(CF3)0- polymer backbone of NAFION ® forms a hydrophobic solid that is penetrated by aqueous channels lined with the hydrophilic ionizable sulfonic acid groups. Investigations into the sub-structure of NAFION ® coatings on solid surfaces have revealed that the polymer layers contain these hydrophilic channels throughout the otherwise hydrophobic regions of the membrane. These channels allow the diffusion of small molecules such as water.
- support substrates that can be used include, for example, perfluorinated sulfonic acid polymer cation-exchange membranes such as F-14100, F-930 and F-950, the GEFC perfluorinated proton exchange membranes, polysulfone ionomers, nanostructured films formed by metal oxide nanoparticles suitably decorated with organic acids including perfluorinated sulfonic acids, nanostructured films formed by the hydrolysis of alkoxysilanes suitably decorated with organic acids including perfluorinated sulfonic acids.
- Other supporting substrates can be, for example, polyfluorinated alkaline exchange membranes (AEM) that rely upon fixed cationic functional groups within the polymer to prevent the conduction of protons and allow conduction of mobile anions for conductivity.
- AEM polyfluorinated alkaline exchange membranes
- examples of commercial AEMs include TOKUYAMA® AEM.
- heterogeneous- homogeneous colloidal systems two-phase (bi-phasic) mixtures (stabilized and unstabilized with surfactant), conducting polymers (e.g., poly(3,4-ethylenedioxythiophene) (PEDOT)), surface- modified silica and titania.
- PEDOT poly(3,4-ethylenedioxythiophene)
- support substrates that can be used to contribute co-catalyst functionality include borate/boronic acid- or amine/ammonium- functionalized polymers with an alkyl or aryl or polyfluorinated polymer backbone.
- support substrates that can be used to contribute hydrophobic functional domains include alkyl or aryl or polyfluorinated polymer backbone polymers.
- the electrocatalyst can be immersed in a solution containing water molecules.
- the solution can be an aqueous solution containing electrolyte.
- the aqueous solution can be a solution from which water is preferentially removed (i.e. solid liquid separation).
- water is preferentially removed (i.e. solid liquid separation).
- the aqueous solution is salt water or sea water the water could be removed leaving the salt behind (i.e., desalination).
- about 0.5M electrolyte is sufficient.
- the resulting electrocatalyst/polymer composite was pressed under 5-29 tons of pressure in a 30 mm diameter die.
- the resulting pellet was mounted on a conductive aluminum support using Kapton tape.
- the geometric surface area was determined applying a silicone polymer gasket with a predefined opening on the exposed surface.
- Electrolytes were prepared from MILLIPORE® water using high purity grade reagents.
- Temperatures were ramped from 80°C to 250°C over 580 min with a 360 min dwell time, then to 350°C over 300 min with a 200 min dwell time, then to 450°C over 300 min with a 200 min dwell time, and finally to 700°C over 350 min with a 24 hour dwell time. Samples were then cooled to room temperature under ambient conditions. Sample purity was checked by powder X-ray diffraction (PXRD) and additional Ni or P was added if necessary, mixed and sealed as above, and reheated using an accelerated sequence (580 min from 80°C to 750°C with a 24 hour dwell time).
- PXRD powder X-ray diffraction
- Nanoparticulate nickel phosphides were prepared starting from 20 nm Ni nanoparticles (99.9% USNano Ltd.) which were lightly mixed with 101.5 mol% red P in a glovebox under Ar.
- the sample was sealed in an evacuated quartz tube and heated slowly to 450°C with a dwell time of 48 hours.
- the ramp was 80°C to 175°C in 580 min, followed by dwell for 360 min, ramp to 250°C in 580 min, followed by dwell time of 360 min, then ramped to 350°C in 360 min, followed by dwell time 300 min, and then finally to 450°C in 360 min, followed by 48 hours dwell time.
- the sample cooled to room temperature under ambient conditions, and phase purity was checked by PXRD.
- PXRD analysis was performed on a Bruker AXS D8 Advance using a Cu Ka X-ray tube (1.546A), a scan time of 1 hour or 12 hours and a 20 range of 15-70° or 10-120°. Samples were analyzed prior to electrochemical testing by dispersing the powder on a glass microscope slide and flattening the powder surface using another glass slide.
- Nanoparticles were also successfully prepared by hydrothermal or solvothermal methods as described in literature:
- Trioctylphosphine A general phosphorus source for the low-temperature conversion of metals into metal phosphides. Chemistry of Materials, 79(17), 4234-4242. doi:10.1021/cm071021w
- Nanocrystalline Ni5P4 a hydrogen evolution electrocatalyst of exceptional efficiency in both alkaline and acidic media. Energy Environ. Sci., 8(3), 1027-1034. doi: 10.1039/C4EE02940B
- CE current efficiency
- N12P was prepared by solid state synthesis and pressed into a pellet as described in Calvinho, K. U. D., Laursen, A. B., Yap, K. M. K., Goetjen, T. A., Hwang, S., Mejia-Sosa, B., Lubarski, A., Teeluck, K. M., Murali, N., Hall, E. S., Garfunkel, E., Greenblatt, M., and Dismukes, G. C. “Selective CO2 Reduction to C3 and C4 Oxyhydrocarbons on Nickel Phosphides at Overpotentials as Low as 10 mV” Energy & Environmental Science, 2018, 11, 2550-2559.
- the N12P pellet was tested under constant applied potential in C0 2 -saturated electrolyte (a solution containing 0.5 M KHCO3 and co-catalyst (25 mM hexamethylene tetraamine, 25 mM boric acid, or 1.5 mM Mg 2+ ). The tests were conducted at ambient pressure and temperature, at pH 7.5, for 16 h per experiment. The composition of the headspace was monitored by gas chromatography, and the liquid product was analyzed by HPLC and NMR according to methods described in Calvinho et al, Energy & Environmental Science, 2018, 11, 2550-2559. FIG.
- FIG. 4A shows NMR of the electrolyte, where the major peak is ethylene glycol, confirming the shift in selectivity caused by the addition of co-catalyst. This result is corroborated by HPLC using a refractive index detector showing boric acid and ethylene glycol as the major peaks (FIG. 4B).
- Deposition of a metal or metal cation co-catalyst on nickel phosphide also alters the selectivity of the reaction by changing the populations and binding affinities of reaction intermediates on the surface.
- the ’H NMR spectrum in FIG. 5 shows the CO2 reduction products formed upon electrodeposition of copper metal or soluble Cu salts on N12P nanoparticles at 0V vs RHE and acidic pH. The data demonstrate the formation of two C 5 compounds (3-hydroxy-2- furancarboxaldehyde and 2-hydroxy-3-furancarboxaldehyde).
- the CO2 Conversion Challenge is a $1 million competition funded by NASA to convert carbon dioxide into sugars such as glucose, as a step toward creating mission-critical resources, particularly for future Mars missions.
- Such technologies will allow the manufacture of products using local, indigenous resources on Mars, as well as being applicable to Earth, by using waste and atmospheric carbon dioxide as a resource.
- Electrocatalysts for the direct CO2 reduction to hydrocarbons may be realized through flow electrolyzers of similar types to the chlor-alkali producing cells currently used on an industrial scale.
- CO2 sources could be point sources such as power stations, cement plants, or similar large CO2 emitting industries or from extraction directly from the atmosphere.
- the Ni x P y phase would be applied as nanoparticles or microparticles (5-5000 nm) on a conductive substrate electrode.
- the particles may be affixed using one or more polymers with or without chemical binding groups for coordination of protons or CO2. This polymer may be of the same type as the supporting membrane conducting ions from the anode to cathode. Electrolysis may be performed around neutral pH using carbonate, phosphate, KC1, or sulfate electrolytes.
- the inventive Ni x P y together with a co-catalyst system have the potential to be a direct alternative to fossil raw materials (crude oil, coal, and natural gas) as a source for chemical feedstocks and energy storage.
- Carbon neutral synthetic fuels resulting from this technology will not need the expensive and environmentally impactful fossil fuel supply chain (mining/drilling, pipelines/tankers, refineries). Fuel could be made on demand and at strategic locations near hubs. Carbon chemical feedstocks could be tailor-made and would not be the result of the inefficient processing of raw fossil materials.
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| Application Number | Priority Date | Filing Date | Title |
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| US16/878,165 US12286714B2 (en) | 2015-10-09 | 2020-05-19 | Nickel phosphide catalysts for direct electrochemical CO2 reduction to hydrocarbons |
| PCT/US2021/033119 WO2021236746A1 (en) | 2020-05-19 | 2021-05-19 | Lewis/bronsted acid/base and nickel phosphide binary catalyst-system (co-catalysts) for direct electrochemical co2 reduction to hydrocarbons |
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| WO2024137897A1 (en) * | 2022-12-21 | 2024-06-27 | Renewco2 Inc. | Liquid phase dual membrane single-conversion-step electrolyzer for reduction of co 2 to ethylene glycol |
| WO2024137895A1 (en) * | 2022-12-21 | 2024-06-27 | Renewco2 Inc. | Proton exchange membrane electrolyzer for single- conversion-step electrocatalytic reduction of co2 to ethylene glycol |
| WO2024137997A1 (en) * | 2022-12-21 | 2024-06-27 | Renewco2 Inc. | System and method for single-conversion-step electrocatalytic reduction of co2 to ethylene glycol in liquid phase dual membrane electrolyzer |
| DE102023204127A1 (en) * | 2023-05-04 | 2024-11-21 | Volkswagen Aktiengesellschaft | polyethylene from CO2 |
| DE102023208909A1 (en) | 2023-09-13 | 2025-03-13 | Volkswagen Aktiengesellschaft | Electrode material for the electrochemical reduction of carbon dioxide, electrode and electrochemical cell comprising such an electrode material |
| WO2025101853A1 (en) * | 2023-11-08 | 2025-05-15 | Renewco2 Inc. | Apparatus and method for producing formate salt brines from carbon dioxide and alkali brines |
| WO2025101899A1 (en) * | 2023-11-08 | 2025-05-15 | Renewco2 Inc. | Apparatus and methods for electrocatalytic and hydrogenation conversion of hydrocarbon fuels from carbon dioxide |
| CN119932635B (en) * | 2025-01-24 | 2026-04-21 | 中国科学院生态环境研究中心 | An anionic ionomer-modified silver-based electrode, its preparation method and application |
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| US20070243452A1 (en) * | 2006-04-14 | 2007-10-18 | Applied Materials, Inc. | Reliable fuel cell electrode design |
| US20110237830A1 (en) * | 2010-03-26 | 2011-09-29 | Dioxide Materials Inc | Novel catalyst mixtures |
| WO2013134418A1 (en) * | 2012-03-06 | 2013-09-12 | Liquid Light, Inc. | Reducing carbon dioxide to products |
| WO2014210484A1 (en) * | 2013-06-27 | 2014-12-31 | The Board Of Trustees Of The University Of Illinois | Catalysts for carbon dioxide conversion |
| DE102015202258A1 (en) * | 2015-02-09 | 2016-08-25 | Siemens Aktiengesellschaft | Reduction process and electrolysis system for electrochemical carbon dioxide recovery |
| US10676833B2 (en) * | 2015-10-09 | 2020-06-09 | Rutgers, The State University Of New Jersey | Nickel phosphide catalysts for direct electrochemical CO2 reduction to hydrocarbons |
| US20180171492A1 (en) * | 2016-12-20 | 2018-06-21 | Board Of Trustees Of The University Of Illinois | Photoelectrochemical cell for carbon dioxide conversion |
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| AU2021276383B2 (en) | 2025-09-11 |
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