Systems and methods for high concentrations of multi-electron products or CO in electrolyzer output
The system addresses the challenge of producing high concentrations of gas-phase multi-electron products by converting unreacted carbon monoxide to bicarbonate and transporting it to the anode side, reducing carbon dioxide to carbon monoxide and enhancing the chemical reduction of carbon monoxide to methane and ethylene using catalysts like gold and copper.
Patent Information
- Application Number
- JP2022575454
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-06-09
- Filing Date
- 2021-06-08
- Publication Date
- 2025-11-17
- Estimated Expiration
- 2041-06-08
AI Technical Summary
Existing systems face challenges in producing high concentrations of gas-phase multi-electron products, such as methane and ethylene, from carbon dioxide reduction due to issues like water management, low current efficiencies, and inefficient utilization of carbon monoxide, leading to unwanted by-products like hydrogen gas.
A system and method involving a carbon dioxide reduction reactor with a membrane electrode assembly (MEA) and an anion exchange membrane (AEM)-only MEA to convert unreacted carbon monoxide to bicarbonate, transport it to the anode side, and output a cathode-side gas-phase product stream with reduced carbon monoxide content, using catalysts like gold and copper to enhance the chemical reduction of carbon dioxide to carbon monoxide.
The system effectively enhances the chemical reduction of carbon dioxide to carbon monoxide and methane and ethylene, and/or oxygen- and hydrogen-containing organic compounds such as methanol, ethanol, and acetic acid.
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Abstract
Description
[Technical Field]
[0001] [Cited by reference] A PCT Request Form is being filed contemporaneously herewith as part of the present application. Each application to which this application claims benefit or priority, as identified in the contemporaneously filed PCT Request Form, is hereby incorporated by reference in its entirety for all purposes.
[0002] [Statement of Government Support] This invention was made with government support under Award No. 1738554 awarded by the National Science Foundation and Award No. DE-SC0018831-01 awarded by the Department of Energy, Office of Science. The government has certain rights in this invention.
[0003] The present disclosure relates generally to the field of electrolytic carbon oxide reduction, and more specifically to systems and methods for operation of an electrolytic carbon oxide reactor for the production of carbon monoxide, methane, and multi-carbon products. [Background technology]
[0004] Carbon dioxide (CO x A membrane electrode assembly (MEA) for carbon dioxide (CO) reduction can include a cathode layer, an anode layer, and a polymer electrolyte membrane (PEM) that provides ionic transport between the cathode and anode layers. x ) Reduction Reactor (CRR) is an electrochemical CO x to produce products such as CO, hydrocarbons such as methane and ethylene, and / or oxygen- and hydrogen-containing organic compounds such as methanol, ethanol, and acetic acid. Obtaining high concentrations of gas-phase products can be difficult.
[0005] The background and contextual discussion contained herein is provided solely for the purpose of generally setting out the context of the present disclosure. Much of the present disclosure presents work of the inventors, and merely because such work is set forth in the Background section or presented as context elsewhere herein does not mean that such work is admitted to be prior art. Summary of the Invention
[0006] One aspect of the present disclosure relates to a system for producing gas-phase multi-electron products, the system comprising: a carbon dioxide (CO) reduction reactor having a membrane electrode assembly including one or more ion-conducting polymer layers and a cathode catalyst for promoting the chemical reduction of carbon dioxide to carbon monoxide; and a carbon dioxide (CO) reduction reactor having an anion exchange membrane (AEM)-only membrane electrode assembly (MEA) including one or more ion-conducting polymer layers and a cathode catalyst for promoting the chemical reduction of carbon oxide to gas-phase multi-electron products. x ) a CO reduction reactor; x The reduction reactor is configured to receive an intermediate product stream comprising carbon monoxide (CO) and unreacted CO from the CO reduction reactor, reduce the CO to multi-electron gas-phase products, convert at least some of the unreacted CO to bicarbonate, transport the bicarbonate to the anode side of the AEM-only MEA, and output a cathode-side gas-phase product stream comprising the multi-electron products, wherein the amount of CO in the gas-phase product stream is less than the amount in the intermediate gas-phase product stream.
[0007] In some embodiments, the CO2 reduction reactor has a bipolar MEA. In some embodiments, the CO2 reduction reactor has a cation-exchange membrane-only MEA. In some embodiments, the CO2 reduction reactor and the CO2 reduction reactor have a bipolar MEA. x Each reduction reactor has a stack of electrochemical cells, each containing an MEA.
[0008] In some embodiments, CO xThe reduction reactor is configured to output an anode-side stream comprising O2 and CO2, and the system further includes a separator configured to separate the CO2 and O2 in the anode-side stream; and a mixing unit configured to mix the separated CO2 with fresh CO2 for entry into the CO2 reduction reactor.
[0009] In some embodiments, CO x The reduction reactor is configured to output an anode-side stream comprising CO2, and the system further includes a recirculation loop configured to recirculate CO2 from the anode-side stream to the CO2 reduction reactor.
[0010] In some embodiments, CO x The reduction reactor is configured to output an anode-side stream comprising CO and O, and the system further includes a separator configured to separate the CO and O in the anode-side stream; and a mixing unit configured to mix the fresh CO with the separated CO for entry into the CO reduction reactor.
[0011] In some embodiments, the cathode catalyst for promoting the chemical reduction of carbon dioxide to carbon monoxide comprises gold.
[0012] In some embodiments, the cathode catalyst for promoting the chemical reduction of carbon oxides to gas-phase multi-electron products comprises copper.
[0013] In some embodiments, the gas-phase multi-electron product is a hydrocarbon. In some embodiments, the gas-phase multi-electron product is methane (CH). In some embodiments, the gas-phase multi-electron product is ethylene (CHCH).
[0014] Another aspect of the present disclosure relates to a method for producing a gas-phase multi-electron product, the method comprising the steps of reducing CO to CO in a carbon dioxide CO reduction reactor having a membrane electrode assembly including one or more ion-conducting polymer layers and a cathode catalyst for promoting the chemical reduction of carbon dioxide to carbon monoxide; and removing an intermediate gas-phase product stream comprising carbon monoxide (CO) and unreacted CO from the CO reduction reactor. x feeding CO to a reduction reactor; x The reduction reactor comprises: an anion exchange membrane (AEM)-only membrane electrode assembly (MEA) including one or more ion-conducting polymer layers and a cathode catalyst for promoting the chemical reduction of carbon oxides to gas-phase multi-electron products; reducing CO to multi-electron gas-phase products; converting at least some of the unreacted CO to bicarbonate; transporting the bicarbonate to the anode side of the AEM-only MEA; and outputting a cathode-side gas-phase product stream including the multi-electron products, wherein the amount of CO in the gas-phase product stream is less than the amount in the intermediate gas-phase product stream.
[0015] In some embodiments, the CO2 reduction reactor has a bipolar MEA. In some embodiments, the CO2 reduction reactor has a cation exchange membrane-only MEA.
[0016] In some embodiments, the CO reduction reactor and CO x Each reduction reactor has a stack of electrochemical cells, each containing an MEA.
[0017] In some embodiments, CO x The reduction reactor outputs an anode-side stream comprising O and CO, and the method further includes separating the CO and O in the anode-side stream, and in some such embodiments, the method further comprises mixing the separated CO with fresh CO for entry into the CO reduction reactor.
[0018] In some embodiments, COx The reduction reactor is configured to output an anode-side stream comprising CO2, and the method further comprises recycling CO2 from the anode-side stream to the CO2 reduction reactor.
[0019] In some embodiments, CO x The reduction reactor is configured to output an anode-side stream comprising CO and O, and the method further comprises separating the CO and O in the anode-side stream. In some such embodiments, the method comprises combining the separated CO with fresh CO for entry into the CO reduction reactor.
[0020] In some embodiments, the cathode catalyst for facilitating the chemical reduction of carbon dioxide to carbon monoxide comprises gold. In some embodiments, the cathode catalyst for facilitating the chemical reduction of carbon oxide to gas-phase multi-electron products comprises copper. In some embodiments, the gas-phase multi-electron product is a hydrocarbon. In some embodiments, the gas-phase multi-electron product is methane (CH). In some embodiments, the gas-phase multi-electron product is ethylene (CHCH).
[0021] Another aspect of the present disclosure relates to a system for producing CO, the system comprising: a carbon dioxide (CO) reduction reactor having a membrane electrode assembly including one or more ion-conducting polymer layers and a cathode catalyst for facilitating the chemical reduction of carbon dioxide to carbon monoxide; and a carbon dioxide (CO) reduction reactor having an anion exchange membrane (AEM)-only membrane electrode assembly (MEA) including one or more ion-conducting polymer layers and a cathode catalyst for facilitating the chemical reduction of carbon dioxide to gas-phase multi-electron products. x ) a CO reduction reactor; xThe reduction reactor is configured to receive an intermediate product stream comprising carbon monoxide (CO) and unreacted CO from the CO reduction reactor, convert at least some of the unreacted CO to bicarbonate, transport the bicarbonate to the anode side of the AEM-only MEA, and output a cathode-side gas-phase product stream comprising CO, wherein the amount of CO in the gas-phase product stream is less than the amount in the intermediate gas-phase product stream.
[0022] In some embodiments, the CO2 reduction reactor has a bipolar MEA. In some embodiments, the CO2 reduction reactor has a cation-exchange membrane-only MEA. In some embodiments, the CO2 reduction reactor has a stack of electrochemical cells, each containing an MEA, x The reduction reactor comprises a stack of electrochemical cells, each containing an MEA. x The reduction reactor is configured to receive a carbon-containing anode-side feed stream.
[0023] Another aspect of the present disclosure relates to a method for producing CO, the method comprising: a carbon dioxide (CO) reduction reactor having a membrane electrode assembly including one or more ion-conducting polymer layers and a cathode catalyst for promoting the chemical reduction of carbon dioxide to carbon monoxide; and a process for converting an intermediate gas-phase product stream including carbon monoxide (CO) and unreacted CO from the CO reduction reactor into CO. x feeding CO to a reduction reactor; x The reduction reactor includes an anion exchange membrane (AEM)-only membrane electrode assembly (MEA) including one or more ion-conducting polymer layers and a cathode catalyst for promoting the chemical reduction of carbon dioxide; converting at least some of the unreacted CO to bicarbonate; transporting the bicarbonate to the anode side of the AEM-only MEA; and outputting a cathode-side gas-phase product stream including CO, wherein the amount of CO in the gas-phase product stream is less than the amount in the intermediate gas-phase product stream.
[0024] In some embodiments, the CO2 reduction reactor has a bipolar MEA. In some embodiments, the CO2 reduction reactor has a cation exchange membrane-only MEA.
[0025] In some embodiments, the CO reduction reactor comprises a stack of electrochemical cells, each containing an MEA, x The reduction reactor comprises a stack of electrochemical cells, each containing an MEA.
[0026] In some embodiments, CO x The reduction reactor is configured to receive a carbon-containing anode-side feed stream.
[0027] Another aspect of the present disclosure relates to a system for producing a gas-phase product, the system comprising: a carbon dioxide (CO) reduction reactor having an anion exchange membrane (AEM)-only membrane electrode assembly (MEA) including a cathode catalyst for promoting the chemical reduction of CO to the gas-phase product, the CO reduction reactor configured to reduce CO to the gas-phase product, convert at least some of the unreacted CO to bicarbonate, transport the bicarbonate to an anode side of the AEM-only MEA for reaction to CO, and output a cathode-side gas-phase product stream including the product, and an anode-side stream including O and CO; a separator configured to separate the CO and O in the anode-side stream; and a mixing unit configured to mix the separated CO with fresh CO for input to the CO reduction reactor.
[0028] In some embodiments, the gas phase product is carbon monoxide (CO). In some embodiments, the gas phase product is a gas phase multi-electron product. In some embodiments, the gas phase multi-electron product is a hydrocarbon. In some embodiments, the gas phase multi-electron product is methane (CH). In some embodiments, the gas phase multi-electron product is ethylene (CHCH). In some embodiments, the CO reduction reactor has a stack of electrochemical cells, each containing an MEA.
[0029] Another aspect of the present disclosure relates to a method for producing a gas-phase product, the method comprising: reducing carbon dioxide (CO) to a gas-phase product in a carbon dioxide (CO) reduction reactor having an anion exchange membrane (AEM)-only membrane electrode assembly (MEA) including a cathode catalyst to promote the chemical reduction of the CO to the gas-phase product; converting at least some unreacted CO to bicarbonate and transporting the bicarbonate to the anode side of the AEM-only MEA for reaction to CO; outputting a cathode-side gas-phase product stream including the product; and outputting an anode-side stream including O and CO; separating the CO from the O in the anode-side stream; and mixing the separated CO with fresh CO for input to the CO reduction reactor.
[0030] In some embodiments, the gas phase product is carbon monoxide (CO). In some embodiments, the gas phase product is a gas phase multi-electron product. In some embodiments, the gas phase multi-electron product is a hydrocarbon. In some embodiments, the gas phase multi-electron product is methane (CH). In some embodiments, the gas phase multi-electron product is ethylene (CHCH). In some embodiments, the CO reduction reactor has a stack of electrochemical cells, each containing an MEA.
[0031] Another aspect of the present disclosure relates to a system for producing a gas-phase product, the system comprising: a carbon dioxide (CO) reduction reactor having an anion exchange membrane (AEM)-only membrane electrode assembly (MEA) including a cathode catalyst for facilitating the chemical reduction of CO to the gas-phase product, the CO reduction reactor configured to reduce CO to the gas-phase product, convert at least some of the unreacted CO to bicarbonate, transport the bicarbonate to an anode side of the AEM-only MEA for reaction to CO, and output a cathode-side gas-phase product stream including the product; and receive a carbon-containing anode feedstock, oxidize the carbon-containing anode feedstock to CO, and output an anode-side product stream including CO.
[0032] In some embodiments, the system further comprises a recycle loop for recycling CO in the anode-side product stream to the cathode for reduction. In some embodiments, the gas phase product is carbon monoxide (CO). In some embodiments, the gas phase product is a gas phase multi-electron product. In some embodiments, the gas phase multi-electron product is a hydrocarbon. In some embodiments, the gas phase multi-electron product is methane (CH). In some embodiments, the gas phase multi-electron product is ethylene (CHCH).
[0033] In some embodiments, the CO2 reduction reactor comprises a stack of electrochemical cells, each containing an MEA.
[0034] In some embodiments, the anode feedstock is one of biogas, natural gas, CO separated from biogas containing trace amounts of methane and / or other hydrocarbons, municipal wastewater, alcohol or aqueous alcohol solutions, steam methane reforming waste streams, and carbon monoxide.
[0035] Another aspect of the present disclosure relates to a method for producing a gas phase product, the method comprising: providing a carbon dioxide (CO) reduction reactor having an anion exchange membrane (AEM)-only membrane electrode assembly (MEA) including a cathode catalyst for promoting the chemical reduction of CO to the gas phase product; reducing the CO to the gas phase product; converting at least some unreacted CO to bicarbonate; transporting the bicarbonate to an anode side of the AEM-only MEA for reaction to CO; outputting a cathode side gas phase product stream including the product; receiving a carbon-containing anode feedstock; oxidizing the carbon-containing anode feedstock to CO; and outputting an anode side product stream including CO.
[0036] In some embodiments, the method further includes recycling CO in the anode-side product stream to the cathode for reduction. In some embodiments, the gas phase product is carbon monoxide (CO). In some embodiments, the gas phase product is a gas phase multi-electron product. In some embodiments, the gas phase multi-electron product is a hydrocarbon. In some embodiments, the gas phase multi-electron product is methane (CH). In some embodiments, the gas phase multi-electron product is ethylene (CHCH). In some embodiments, the CO reduction reactor has a stack of electrochemical cells, each containing an MEA.
[0037] In some embodiments, the anode feedstock is one of biogas, natural gas, CO separated from biogas containing trace amounts of methane and / or other hydrocarbons, municipal wastewater, alcohol or aqueous alcohol solutions, steam methane reforming waste streams, and carbon monoxide.
[0038] Another aspect of the present disclosure relates to a system for producing a gas phase product, the system comprising one or more ion-conducting polymer layers and CO x and a cathode catalyst for promoting the chemical reduction of carbon dioxide (CO) to gas phase products. x ) a reduction reactor, x a CO reduction reactor configured to receive a feed stream comprising a gas phase product and to discharge a gas phase product stream comprising a gas phase product; x and a recirculation loop configured to recirculate a portion of the vapor-phase product stream without separation, such that the vapor-phase product stream comprises a mixture of CO. In some embodiments, the recirculation loop includes a compressor. x is carbon dioxide (CO2). In some embodiments, the gas phase product is CO. In some embodiments, CO xis carbon monoxide (CO). In some embodiments, the gas phase multi-electron product is a multi-electron product. In some embodiments, the gas phase multi-electron product is methane (CH4). In some embodiments, the gas phase multi-electron product is ethylene (CH2CH2). In some embodiments, the MEA is a bipolar MEA. In some embodiments, the MEA is an anion exchange membrane (AEM)-only MEA. In some embodiments, the MEA is a cation exchange membrane-only MEA. In some embodiments, the MEA includes a liquid buffer layer disposed between the cathode catalyst and one or more ion-conducting polymer layers. In some embodiments, CO x The reduction reactor comprises a stack of electrochemical cells, each containing an MEA.
[0039] Another aspect of the present disclosure relates to a method for producing a gas phase product, the method comprising: combining one or more ion-conducting polymer layers with CO x and a cathode catalyst for promoting the chemical reduction of carbon dioxide (CO) to gas phase products. x ) providing a reduction reactor; and x to form a feed stream; feeding the feed stream to a CO reduction reactor; and reducing the CO under conditions to produce a gas-phase product stream comprising a gas-phase product. x operating a reduction reactor; and recycling a portion of the vapor-phase product stream without separation to produce fresh CO x and forming a mixed recycle stream.
[0040] In some embodiments, the method further comprises compressing the recycle stream to produce CO x In some embodiments, the method further comprises compensating for a pressure drop across the reduction reactor. x is carbon dioxide (CO2). In some embodiments, the gas phase product is CO. In some embodiments, CO xis carbon monoxide (CO). In some embodiments, the gas-phase multi-electron product is a hydrocarbon. In some embodiments, the gas-phase multi-electron product is methane (CH). In some embodiments, the gas-phase multi-electron product is ethylene (CHCH).
[0041] In some embodiments, the MEA is a bipolar MEA. In some embodiments, the MEA is an anion exchange membrane (AEM)-only MEA. In some embodiments, the MEA includes a liquid buffer layer disposed between the cathode catalyst and one or more ion-conducting polymer layers. In some embodiments, the CO x The reduction reactor comprises a stack of electrochemical cells, each containing an MEA.
[0042] Another aspect of the present disclosure relates to a system for producing a gas phase product, the system comprising one or more ion-conducting polymer layers and CO x and a cathode catalyst for promoting the chemical reduction of carbon dioxide (CO) to gas phase products. x ) reduction electrolyzers, each of which contains CO x and configured to receive a feed stream comprising a CO x a reduction electrolytic cell, n being an integer greater than 1, x The reduction electrolysis cell is the n+1th CO x The electrolyzer feed stream is the nth CO x The electrolytic cells are connected in series to contain at least a portion of the output.
[0043] In some embodiments, CO x is carbon dioxide (CO). In some embodiments, the gas phase product is carbon monoxide (CO). In some embodiments, the gas phase product is a gas phase multi-electron product. In some embodiments, CO xis carbon monoxide (CO). In some embodiments, the gas phase product is a gas phase multi-electron product. In some embodiments, the gas phase product is methane (CH). In some embodiments, the gas phase product is ethylene (CHCH). In some embodiments, n CO x The MEAs of the reduction electrolyzers are substantially the same. x At least two MEAs in the reduction electrolyzer differ in one or more of catalyst type, catalyst loading, or membrane type. x In some such embodiments, the reduction electrolyzers are arranged in a stack. x The stack of reduction electrolyzers is connected in parallel with the CO x Contains multiple stacks of CO reduction electrolyzers x The reduction electrolysis cells are arranged in a super stack.
[0044] In some embodiments, the MEA is a bipolar MEA. In some embodiments, the MEA is an anion exchange membrane (AEM)-only MEA. In some embodiments, the MEA includes a liquid buffer layer disposed between the cathode catalyst and one or more ion-conducting polymer layers.
[0045] Another aspect of the present disclosure relates to a method for producing a gas phase product, the method comprising: combining one or more ion-conducting polymer layers with CO x and a cathode catalyst for promoting the chemical reduction of carbon dioxide (CO) to gas phase products. x ) The stage of preparing a reduction electrolysis cell and each CO x In the reduction electrolysis cell, CO x and providing a feed stream comprising each CO x and discharging a gas phase product stream from the reduction electrolyzer, the gas phase product stream comprising the gas phase product, wherein n is an integer greater than 1, and n CO x The reduction electrolysis cell is the n+1th CO xThe electrolyzer feed stream is the nth CO x The electrolytic cells are connected in series to contain at least a portion of the output.
[0046] Another aspect of the present disclosure relates to a system for producing a gas phase product, the system comprising one or more ion-conducting polymer layers, CO x a cathode catalyst for promoting the chemical reduction of carbon dioxide (CO) to gas phase products, and a membrane electrode assembly (MEA) including a liquid buffer layer disposed between the cathode catalyst and one or more ion-conducting polymer layers; x ) reduction reactor, and the COx reduction reactor x and configured to receive a feed stream comprising the vapor-phase product and to discharge a vapor-phase product stream comprising the vapor-phase product.
[0047] Another aspect of the present disclosure relates to a method for producing a gas phase product, the method comprising: x a cathode catalyst for promoting the chemical reduction of carbon dioxide (CO) to gas phase products, and a membrane electrode assembly (MEA) including a liquid buffer layer disposed between the cathode catalyst and one or more ion-conducting polymer layers; x ) providing a reduction reactor; supplying a feed stream comprising carbon oxides to the COx reduction reactor; and discharging a gas-phase product stream comprising gas-phase products.
[0048] These and other aspects of the present disclosure are further described below with reference to the drawings. [Brief explanation of the drawings]
[0049] [Figure 1] 1 illustrates an example of a system having an electrochemical cell and a recirculation loop in accordance with certain embodiments.
[0050] [Figure 2] 1 illustrates an example of a system including multiple electrochemical cells in series according to certain embodiments.
[0051] [Figure 3a] 1 illustrates an example of a system including multiple electrochemical cells stacked in parallel with a single CO 2 flow stream shared between the cells, according to certain embodiments.
[0052] [Figure 3b] 1 illustrates an example of a system including multiple electrochemical cells arranged in a stack and connected in series, according to certain embodiments.
[0053] [Figure 4] 1 illustrates an example of a system including a single-stage CO2 reduction electrolyzer with an AEM-only MEA, according to certain embodiments.
[0054] [Figure 5] 1 illustrates an example of a system including a two-stage CO2 reduction electrolyzer that includes an AEM-only MEA, according to certain embodiments.
[0055] [Figure 6] 1 illustrates an example of a system including an electrolytic cell that includes a buffer layer of aqueous alkaline solution disposed between the membrane and the cathode, according to certain embodiments.
[0056] [Figure 7] 1 illustrates an example of a system for controlling the operation of a carbon oxide reduction reactor, according to certain embodiments.
[0057] [Figure 8] 1 shows an example of a system including a direct air CO2 capture subsystem and a CO2 reduction electrolyzer subsystem.
[0058] [Figure 9] 1 shows an example of an MEA for use in COx reduction according to various embodiments.
[0059] [Figure 10]1 illustrates an example of a CO electrolyzer configured to receive reactants water and CO at a cathode and output product CO, according to certain embodiments.
[0060] [Figure 11] 1 shows an example configuration of a COx reduction MEA according to a specific embodiment. [Figure 12] 1 shows an example configuration of a COx reduction MEA according to a specific embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0061] [explanation] Provided herein are methods for producing high concentrations of carbon oxide (CO) and gas phase products, including carbon monoxide (CO) and multi-electron gas products, such as methane (CH) and ethylene (C2H4). x A system and method for operating a catalytic reduction reactor (CRR).
[0062] Carbon dioxide (CO x A membrane electrode assembly (MEA) for CO reduction can include a cathode layer, an anode layer, and a polymer electrolyte membrane (PEM) that provides ionic transport between the cathode and anode layers. A CRR with such an MEA electrochemically converts CO x to produce products such as CO, hydrocarbons such as methane and ethylene, and / or organic compounds containing oxygen and hydrogen, such as methanol, ethanol, and acetic acid.
[0063] CO2 electrolysis can produce a variety of products depending on the catalyst used, MEA design, and operating conditions. Hydrogen is also produced as a by-product of CO2 electrolysis. This can be useful for some applications where a mixture of H2 and CO2 electrolysis products is desired, but in many cases, only the CO2 electrolysis product is desired and it is useful to limit the amount of hydrogen in the product stream. Different catalysts at the cathode of the CRR can produce different products or product mixtures from CO2. x It is formed from a reduction reaction.
[0064] The number of electrons required to produce CO2 electrolysis products varies depending on the product. Two-electron products, such as CO, require two electrons per product molecule. "Many-electron products" and "multi-electron products" refer to products from reactions that use more than two electrons per product molecule. Examples of possible two-electron and many-electron reactions at the cathode from CO and CO2 electrolysis are given below: CO2 + 2H + +2e - →CO+H2O(2 electrons)2CO2+12H + +12e - →CH2CH2+4H2O(12 electrons)2CO2+12H + +12e - →CH3CH2OH+3H2O(12 electrons)CO2+8H + +8e - →CH4+2H2O(8 electrons)2CO+8H + +8e - →CH2CH2+2H2O(8 electrons)2CO+8H + +8e - →CH3CH2OH+H2O(8 electrons)CO+6H + +6e - → CH4 + H2O (6 electrons) CO and CO2 electrolysis reaction when water is the proton source CO2 + H2O + 2e - →CO+2OH - (2 electrons)2CO2+8H2O+12e - →CH2CH2+12OH - (12 electrons)2CO2+9H2O+12e - →CH3CH2OH+12OH - (12 electrons)CO2+6H2O+8e - →CH4+8OH - (8 electrons)2CO+10H2O+8e - →CH2CH2+8OH - (8 electrons)2CO+7H2O+8e - →CH3CH2OH+8OH - (8 electrons)CO+5H2O+6e - →CH4+6OH - (6 electrons)
[0065] Furthermore, at the potential levels used for the cathodic reduction of CO2, hydrogen ions may be reduced to hydrogen gas in a parasitic reaction. + +2e - →H2 (2 electrons)
[0066] Even at relatively low current efficiencies, electrolyzers will produce relatively large amounts of low electron gas products such as CO and H. As an example, an electrolyzer with a 30% current efficiency with respect to ethylene and a 5% current efficiency with respect to hydrogen will result in a 1:1 molar CH:H ratio in the gas exhaust stream. This is due to the fact that ethylene requires six times the number of electrons as hydrogen.
[0067] While some majority-electron products (e.g., ethanol) are liquids at typical operating temperatures, majority-electron products such as methane, ethane, ethylene, propane, and propylene are in the gas phase and are present in the product stream along with other gas-phase products and unreacted CO. x is mixed with
[0068] Another challenge with many electronic gas producers is water management. Water reacts with CO according to the chemical equations above. x CO may be generated during the electrochemical reduction of CO and / or migrate to the cathode side of the electrochemical cell, where it is transported by diffusion, migration, and / or drag forces through the polymer electrolyte membrane to the cathode side of the electrochemical cell. x The reduction occurs by removing water from the electrochemical cell and allowing it to accumulate, and by removing the reactant CO x from reaching the catalyst layer.
[0069] CO x A higher input flow rate of CO helps remove water from the cell. x Lower flow rates may not be sufficient to push the water out, resulting in self-cladding, water accumulation on the MEA catalyst layer, cathode gas diffusion layer, or all or part of the flow field. In the flooded areas, CO xcannot reach the catalyst at the rate required to support high current efficiencies at high current densities, and this x Instead of being reduced to the desired product, undesirable hydrogen gas is produced.
[0070] The required gas flow through the cell to prevent flooding depends on the flow field design, current density, and gas pressure within the cell. According to various embodiments, 100 cm 2 The cells may have a flow of at least 100 sccm, 300 sccm, 450 sccm, or 750 sccm to prevent flooding.
[0071] Relatively high flow rates can be used for water management, while CO is a multi-electron product. x For high utilization, low flow rates are required. x Utilization refers to the transfer of CO to an electrochemical reactor where it is converted into products. x Percent of input CO x Utilization is the CO2 emitted when the gas passes through the reactor once. x Current density, input CO x Flow rate, current efficiency, and CO x Single-pass CO is determined by parameters such as the number of electrons required to reduce CO to its products. x Use is to be determined.
[0072] The following example shows the multi-electron product CO x To illustrate how higher utilization results in lower flow rates, the CO reference example is 600 mA / cm 2 100cm 2 This is a Reference Example in which 450 sccm of CO was input to an electrochemical cell to produce CO, and Examples 1 and 2 show single-pass utilization for CH production, as well as output gas stream composition and flow rate. Example 1 has the same input flow rate as the CO Reference Example, and Example 2 has the same single-pass utilization. Table 1: Input CO2 flow and single-pass CO2 utilization for CH4 production compared to CO production [Table 1]
[0073] In the CO reference example, 450 sccm results in 84% CO utilization. In Example 1, using the same input flow rate results in only 21% utilization for methane production. To reach 84% CO utilization, a lower input flow of 112.5 sccm is used (Example 2). This is one-quarter of the input flow required to convert 84% of the CO in the input stream at the outlet to CO (a two-electron product) versus the flow rate required to reach 84% CO utilization to methane (an eight-electron product).
[0074] These difficulties are exacerbated with products containing multiple carbon atoms. The gas flow rate through the electrolyzer is further reduced when multiple gas-phase CO molecules are converted to a single gas-phase molecule of the multi-carbon product. Table 2 below includes Examples 3-5, which show, for example, input CO flow rates and single-pass utilization for ethylene production. Table 2: Input CO2 flow and single-pass CO2 utilization for CH2CH2 production [Table 2]
[0075] Product concentrations and flow rates are much lower than is possible when two-electron products are made, as in the CO reference example. In addition, total flow rates are lower as gas moves through the reactor, making water management more difficult at higher CO utilization.
[0076] In Example 5, some of the CO reacts to form liquid products, which account for 33% of the current efficiency, but is not present in the gas phase output of the electrolyzer. Six times more H is produced compared to ethylene due to the difference in the number of electrons required to make each product.
[0077] The above examples highlight the impact that even low current efficiencies for H have on the concentration of multi-electron CO reduction products resulting from an electrochemical cell. In the CO reference example, the H concentration in the output gas stream is 8.5%. To achieve the same utilization, the CH output gas stream contains 27.2% H (Example 2) and the CH output gas stream contains 21.9% H (Example 4).
[0078] In some embodiments, CO is the starting reactant. This can alleviate some of the problems mentioned above because fewer electrons are used to create each of the many-electron products compared to using CO as the starting reactant. Table 3 below shows the results for 100 cm 2 1 shows an example of an output gas stream for CH produced from CO reduction in the cell. Table 3: Input CO flow and single-pass CO utilization for CH4 [Table 3]
[0079] Examples 6 and 7 can be compared to Examples 1 and 2, respectively. To reach 84% CO utilization (Example 7), the input flow rate of CO is 33% higher than that of CO2 (Example 2).
[0080] Provided herein are CO x Systems and methods for increasing the concentration of desired products in the gas-phase output stream of an electrolyzer. While the following description primarily refers to gas-phase many-electron products such as methane, ethane, ethylene, propane, and propylene, the systems and methods may also be implemented to increase the concentration of CO in an electrolyzer configured for CO production.
[0081] In the following examples, reference is made to MEAs, including bipolar membrane MEAs and MEAs containing only anion exchange membranes or only cation exchange membranes. Further details of MEAs are included below. In certain embodiments, MEAs with bipolar membranes and those with anion exchange membranes (AEMs) may be used. Examples of MEAs for methane and ethylene are provided below, with additional description of MEAs for these and other products below. In particular, bipolar membrane MEAs are discussed with reference to Figures 9 and 10, and AEM-only MEAs are discussed with reference to Figures 11 and 12. Further description may be found in U.S. Patent Application No. 17 / 247,036, filed November 24, 2020, which is incorporated herein by reference for its description of MEAs.
[0082] In a first example, a bipolar membrane MEA for methane production can include a gas distribution layer (GDL), a cathode catalyst layer, a bipolar membrane, and an anode catalyst layer as follows: ●GDL: Sigracet 39BC (5% PTFE-treated microporous layer on carbon fiber, 0.325 mm thick) ●Catalyst layer: 0.16 mg / cm 2 20nm 40% Premetek Cu / Vulcan XC-72 (360~410nm particle size) 19 wt% anion exchange polymer electrolyte (FumaTech FAA-3) ○ Catalyst layer thickness of 1 to 2 μm ●Membrane: 10-12 μm thick anion exchange (AEM) polymer electrolyte on Nafion (PFSA) 212 (50.8 μm thick) Proanode (Fuel Cell Etc) membrane Anode: 3 mg / cm 2 IrRuOx anode
[0083] In another example, a bipolar membrane MEA for methane production can include a GDL, a cathode catalyst layer, a bipolar membrane, and an anode catalyst layer as follows: ●GDL: Single or multiple stacked 5-20% PTFE-treated microporous layer coated carbon fiber substrates (SGL Carbon, Freudenberg Performance Materials, AvCarb Material Solutions, or other GDL manufacturers, 0.25-0.5 mm thick) ●Catalyst layer: Carbon-supported Cu nanoparticles of 20-100 nm at 0.1-3.0 mg / cm², e.g., Premetek Cu / Vulcan XC-72 (20%-60% Cu loading) 5-50 wt% anion exchange polymer electrolyte (Fumatech BWT GmbH, Ionomr Innovations Inc, or other anion exchange polymer electrolyte manufacturers) ○ Catalyst layer thickness of 1 to 5 μm ●Membrane: A 5-20 μm thick anion exchange polymer electrolyte on a cation exchange membrane such as a Nafion® membrane (25-254 μm thick) Anode: 0.5-3 mg / cm2 IrRuOx or IrOx anode catalyst layer and porous Ti gas diffusion layer
[0084] In another example, a bipolar MEA for ethylene production can include a GDL, a cathode catalyst layer, a bipolar membrane, and an anode catalyst layer as follows: ●GDL: Sigracet 39BC (5% PTFE-treated microporous layer on carbon fiber, 0.325 mm thick) ●Catalyst layer: 0.35 mg / cm² of 100% Sigma Aldrich Cu (80 nm particle size) 19 wt% anion exchange polymer electrolyte (FumaTech FAA-3) ○2 to 3 μm thick ●Membrane: AEM polymer electrolyte 20-24 μm thick on Nafion (PFSA) 115 (50.8 μm thick) Proanode (Fuel Cell Etc) membrane Anode: ○3mg / cm2 IrRuOx anode
[0085] In another example, a bipolar MEA for ethylene production can include a gas distribution layer (GDL), a cathode catalyst layer, a bipolar membrane, and an anode catalyst layer as follows: ●GDL: Single or multiple stacked 5-20% PTFE-treated microporous layer coated carbon fiber substrates (SGL Carbon, Freudenberg Performance Materials, AvCarb Material Solutions, or other GDL manufacturers, 0.25-0.5 mm thick) ●Catalyst layer: 0.1-3.0 mg / cm, deposited by ultrasonic spray deposition, electron beam evaporation, magnetron sputtering, or other similar coating processes 2 Pure Cu nanoparticles or Cu-based alloy nanoparticles (particle size 5-150 nm) 5-50 wt% anion exchange polymer electrolyte (Fumatech BWT GmbH, Ionomr Innovations Inc, or other anion exchange polymer electrolyte manufacturers) ○ Catalyst layer thickness of 1 to 5 μm ●Membrane: A 5-20 μm thick anion exchange (AEM) polymer electrolyte on a cation exchange membrane such as a Nafion® membrane (25-254 μm thick) (Fumatech BWT GmbH, Ionomr Innovations Inc, or other anion exchange polymer electrolyte manufacturers) Anode: 0.5-3 mg / cm2 IrRuOx or IrOx anode catalyst layer and porous Ti gas diffusion layer
[0086] In another example, an AEM-only MEA for ethylene production can include a GDL, a cathode catalyst layer, an anion exchange membrane, and an anode catalyst layer as follows: ●GDL: Sigracet 39BC (5% PTFE-treated microporous layer on carbon fiber, 0.325 mm thick) Catalyst layer sprayed onto GDL: 0.35 mg / cm² of 100% Sigma Aldrich Cu (80 nm particle size) 19 wt% anion exchange polymer electrolyte (FumaTech FAA-3) ○2 to 3 μm thick ●Membrane: ○KOH exchanged Ionomr AF1-HNN8-50-X AEM ○50μm thickness, conductivity >80mS / cm, water absorption rate 33~37% Anode: ○IrOx coated porous Ti (Proton Onsite)
[0087] In another example, an AEM-only MEA for ethylene production can include a GDL, a cathode catalyst layer, an anion exchange membrane, and an anode catalyst layer as follows: ●GDL: Single or multiple stacked 5-20% PTFE-treated microporous layer coated carbon fiber substrates (SGL Carbon, Freudenberg Performance Materials, AvCarb Material Solutions, or other GDL manufacturers, 0.25-0.5 mm thick) Catalyst layer on GDL: 0.1-3.0 mg / cm2 of pure Cu nanoparticles or Cu-based alloys (25-100 nm particle size) deposited by ultrasonic spray deposition, electron beam evaporation, magnetron sputtering, or other similar coating processes 5-50 wt% anion-exchange or cation-exchange polymer electrolyte (Fumatech BWT GmbH, Ionomr Innovations Inc, or other anion / cation-exchange polymer electrolyte manufacturers) ○Thickness of 1 to 5 μm ●Membrane: KOH-exchanged anion-exchange polymer membrane (Fumatech BWT GmbH, Ionomr Innovations Inc, or other anion-exchange polymer membrane manufacturers) ○15~75μm thickness, conductivity >60mS / cm, water absorption rate 20~100% Anode: ○IrOx coated porous Ti
[0088] The cathode catalyst layer of the MEA includes a catalyst configured for the production of ethylene or other desired products. A catalyst configured for ethylene has a tendency to catalyze one or more methanogenesis reactions in preference to other reactions. Suitable catalysts include transition metals such as copper (Cu). According to various embodiments, the catalyst may be Cu, doped or undoped, or an alloy thereof. MEA cathode catalysts described as containing copper or other transition metals are understood to include alloys, doped metals, and other variations of copper or other transition metals. Generally, the catalysts described herein for hydrocarbon and oxygen-containing organic products are non-noble metal catalysts. For example, gold (Au) may be used to catalyze carbon monoxide (CO) production. The morphology of the catalyst layer may be engineered to achieve desired methane (or other desired product) production characteristics for the MEA. Morphological characteristics such as thickness, catalyst loading, and catalyst roughness can affect the desired product production rate, the desired product selectivity (e.g., selectivity of methane over other possible products such as hydrogen, ethylene, etc.), and / or any other suitable characteristics of carbon dioxide reactor operation.
[0089] Examples of cathode catalyst layers for multi-electron producers such as ethylene are given above. Further examples and examples of cathode catalyst layers for CO production include: CO generation: 4 nm diameter Au nanoparticles supported on Vulcan XC72R carbon and mixed with Orion's TM1 anion exchange polymer electrolyte. The layer was approximately 15 μm thick, with Au / (Au+C) = 30%, TM1 to catalyst mass ratio of 0.32, and 1.4–1.6 mg / cm. 2 mass loading, estimated porosity of 0.47 Methane production: Cu nanoparticles of 20-30 nm size supported on Vulcan XC72R carbon and mixed with FAA-3 anion-exchange solid polymer electrolyte from Fumatech. FAA-3 to catalyst mass ratio of 0.18. Wider range of 1-100 μg / cm. 2 ~7.1μg / cm 2 Estimated Cu nanoparticle loading. Ethylene / ethanol production: Cu nanoparticles of 25–80 nm size mixed with FAA-3 anion-exchange solid polymer electrolyte from Fumatech. FAA-3 to catalyst mass ratio of 0.10. Deposited either on a Sigracet 39BC GDE for pure AEM or on a polymer electrolyte membrane. 270 μg / cm 2 Estimated Cu nanoparticle loading. Bipolar MEA for methane production: The catalyst ink was made from 20 nm Cu nanoparticles supported on Vulcan carbon (Premetek 40% Cu / Vulcan XC-72) and mixed with FAA-3 anion-exchange solid polymer electrolyte (Fumatech), with an FAA-3 to catalyst mass ratio of 0.18. The cathode was formed by ultrasonic spray deposition of the catalyst ink onto a bipolar membrane containing FAA-3 anion-exchange solid polymer electrolyte spray-coated onto a Nafion (PFSA) 212 (Fuel Cell Etc) membrane. The anode was formed using a 3 mg / cm catalyst ink. 2 The MEA consists of IrRuOx spray-coated on the opposite side of the bipolar membrane at a loading of 1000 MPa. A porous carbon gas diffusion layer (Sigracet 39BB) is sandwiched between the Cu catalyst-coated bipolar membrane to form the MEA. Bipolar MEA for ethylene production: The catalyst ink was made from pure 80 nm Cu nanoparticles (Sigma Aldrich) mixed with FAA-3 anion-exchange solid polymer electrolyte (Fumatech), with a mass ratio of FAA-3 to catalyst of 0.09. The cathode was formed by ultrasonic spray deposition of the catalyst ink onto a bipolar membrane containing FAA-3 anion-exchange solid polymer electrolyte spray-coated onto a Nafion (PFSA) 115 (Fuel Cell Etc) membrane. The anode was formed using a 3 mg / cm catalyst ink. 2 The MEA consists of IrRuOx spray-coated on the opposite side of the bipolar membrane at a loading of 1000 MPa. A porous carbon gas diffusion layer (Sigracet 39BB) is sandwiched between the Cu catalyst-coated bipolar membrane to form the MEA. CO generation: 4 nm diameter Au nanoparticles supported on Vulcan XC72R carbon and mixed with Orion's TM1 anion exchange polymer electrolyte. The layer was approximately 14 microns thick, with a Au / (Au+C) ratio of 20%. The TM1 to catalyst mass ratio in the catalyst layer was 0.32, with a 1.4-1.6 mg / cm mass ratio. 2 mass loading, estimated porosity of 0.54. CO generation: 45 nm diameter Au nanoparticles supported on Vulcan XC72R carbon and mixed with Orion's TM1 anion exchange polymer electrolyte. The layer was approximately 11 microns thick, with a Au / (Au+C) ratio of 60%. The TM1 to catalyst mass ratio in the catalyst layer was 0.16, with a 1.1-1.5 mg / cm mass ratio. 2 mass loading, estimated porosity of 0.41. CO generation: 4 nm diameter Au nanoparticles supported on Vulcan XC72R carbon and mixed with Orion's TM1 anion exchange polymer electrolyte. The layer was approximately 25 microns thick, with a Au / (Au+C) ratio of 20%. The TM1 to catalyst mass ratio in the catalyst layer was 0.32, with a 1.4-1.6 mg / cm mass ratio. 2 mass loading, estimated porosity of 0.54. Examples include:
[0090] The above-mentioned example MEAs may be configured to increase the concentration of desired products in the product stream, as described below. x This system may be implemented in a reduction electrolyzer. First, in FIG. 1, a system with an electrochemical cell and a recirculation loop is shown. In the example of FIG. 1, the cell is configured to produce ethylene. The cell's input includes a combination of the output from the previous pass and fresh CO2. This system uses a lower CO2 input flow than a single-pass system because a small portion of the reactants are gases that have been recycled through the system. The output is a mixture of ethylene, CO, and H2, as well as unreacted CO2. The CO2 concentration is lower compared to a single-pass system, and the product:CO2 ratio depends on the amount of recycled gas.
[0091] A recycle blower or other compressor may be used to regulate the flow of gas to the system and help compensate for pressure losses across the reactor. In the example of Figure 1, unreacted CO2 is not separated from the output stream for recycle. As noted above, a relatively small amount of input CO2 is used to form ethylene. In particular, recycle of ethylene and other products, along with unreacted CO2, can help increase flow rates while limiting the amount of CO2 input to the cell. Ethylene pressure in the recycle stream can help maintain a minimum flow rate and regulate water, pH, and other environmental conditions.
[0092] 100cm 2 For a cell, a flow rate of at least 300 sccm, at least 450 sccm, or at least 700 sccm may be used through the cell to maintain selectivity to ethylene, with a maximum flow rate of 6000 sccm. The ratio of fresh CO2 to recycled gas depends on the blower speed.
[0093] In the example of FIG. 1 (and FIGS. 2 and 3a discussed below), CO is shown as the starting reactant. In other embodiments, CO or a mixture of CO and CO may be used as the starting reactant. Also, in other embodiments, the electrolyzer may be configured to produce another gas-phase multi-electron product, such as methane, ethane, propane, or propylene. Furthermore, in some embodiments, the recirculation loop described with respect to FIG. 1 may be implemented for CO production. In embodiments where CO is the starting reactant, the MEA may have a bipolar membrane or a cation exchange membrane to allow for recirculation of CO in the product stream. As discussed further below, CO in an electrolyzer with an AEM-only MEA is transported to the anode side of the electrolyzer.
[0094] In some embodiments, the system may include a purification unit downstream of the recirculation loop to remove any remaining CO and H in the product stream. Purification units are described in U.S. Provisional Patent Application No. 63 / 060,583, which is incorporated herein by reference.
[0095] In some embodiments, unreacted CO2 may be first separated from the product stream prior to recycling.
[0096] In some embodiments, a direct air capture unit is provided upstream of the cell in FIG. 1 to supply CO2 to the cell. Systems including a direct air capture unit are further described below with reference to FIG. 8. FIG. 2 shows another configuration in which multiple electrochemical cells are used in series to increase product concentration. In the example of FIG. 2, two cells are shown, but three, four, or more cells may be used in series. By supplying the output of the first electrochemical cell as input to the second, third, ... nth cells, the CO2 concentration will decrease and the product concentration will increase with each successive cell. The product concentration of the second cell in the series and beyond may be roughly estimated by removing CO2 from the output of the first cell and determining the conversion rate using the current efficiency. The output of two cells in series will have a product concentration that is twice that of the first cell in the series, and so on for additional cells.
[0097] Comparative Example 1 shows the total CO2 utilization and output gas stream composition for two cells in series as in Example 1. Table 4 compares the CO2 utilization and output gas stream composition of Example 1 with Comparative Example 1. Table 4: Single CO2 cell compared to two CO2 cells in series for CH4 production [Table 4]
[0098] When the cells from Example 1 above are placed in series, 600 mA / cm 2 100cm 2 The first cell has a CO utilization of 21% and an output gas stream composition of 19.2% methane, 8.5% H, and 72.3% CO, for a total flow rate of 492 sccm. The output of this first cell is then the same 100 cm with a current efficiency of 90% for methane and 10% for H. 2This feeds a second cell with an area of 1000 sq. m, resulting in a product stream from the second cell with a total flow rate of 534 sccm consisting of 35.4% methane, 15.7% H2, and 48.9% CO2. The CO2 utilization for both cells together is 42%. Additional cells in series further increase the concentrations of methane and H2, and decrease the concentration of CO2, within the limit that the CO2 concentration does not fall below zero. At this point, the current efficiency for methane also falls to zero, and the current efficiency for H2 rises to 100%.
[0099] Placing the cells from Example 3 above in series produces a similar effect, as shown in Table 5. Table 5: Single CO2 cell compared to CO2 cells in series for CH2CH2 generation [Table 5]
[0100] With multiple cells in series, the initial CO x High flow rates help with water management and multiple cells allow for CO x is used to convert much of the gases. An example shows how the total gas flow rate can vary (increase or decrease) between cells. If the total gas flow rate decreases below the critical level required to prevent flooding, additional gas can be added to the stream between the cells to increase the total amount above the desired level. This additional gas can come from recirculating the output of the system (as described with respect to FIG. 1) or can be introduced from another source and can consist of CO2, ethylene, H2, etc. For implementations where the gas flow between cells is increased, in some embodiments, a portion of the gas stream may bypass downstream cells to maintain flow in the desired range.
[0101] According to various embodiments, 100 cm 2Flows between 300 sccm and 6000 sccm through the cell can be useful to maintain selectivity to ethylene and other multi-electron CO reduction products (e.g., methane). In some embodiments, this can be 450 sccm to 6000 sccm or 700 sccm to 6000 sccm. For other size cells, 3 to 60 sccm / cm can be used. 2 , or 4.5 to 60 sccm / cm 2 , or 7 to 60 sccm / cm 2 may be used.
[0102] In addition to adjusting the flow rate, the pressure and water content of the gas stream may be varied between cells. Water can be added to the stream using a humidifier, or the gas stream can be cooled and removed by a phase separator and / or an adsorbent. Pressure can be increased by a compressor between the cells. In some embodiments, multiple cells in series are arranged in a compact stack of cells, as described below with respect to Figure 3b.
[0103] In other embodiments, CO may be used as a starting reactant and / or the electrolyzer may be configured to produce another gas-phase multi-electron product, such as methane, ethane, propane, or propylene. Additionally, in some embodiments, multiple cells in series may be used to concentrate CO as a desired product.
[0104] Any of the cells described herein may be one of the cells in a stack. Figure 3a shows multiple electrochemical cells stacked in parallel with a single CO2 flow stream shared between the cells. This allows for a more efficient increase in the amount of product produced. The final ethylene concentration is the same as in the single-pass cell, but the total volume of ethylene produced increases with each additional cell. The recirculation loop described with respect to Figure 1 can be implemented in individual cells in the stack and / or between stacks of cells.
[0105] Figure 3b shows multiple electrochemical cells arranged in a stack and connected in series, as described above with respect to Figure 2. The MEAs may be arranged in the stack with the anode on top and the cathode on bottom (as in Figure 3b), or with the anode on bottom and the cathode on top, or in a vertical arrangement.
[0106] Using an arrangement such as that in Figure 3b, high gas flow rates can be maintained through the cells to efficiently remove water while achieving high CO or CO utilization. The design is more compact than non-stacked cells connected in series, and by having only one cell stack instead of multiple separate cells, each with its own controller, balancing of the plant is simplified, e.g., power electronic flow controllers, temperature controllers, pressure controllers, etc. In the example of Figure 3b, a three-cell stack is shown. According to various embodiments, the stack may have single digits, tens, or hundreds of cells. In some embodiments, the entire stack is in series. In other embodiments, a subset of the cells is in series and connected in parallel to other subsets. For example, in a 100-cell stack, the input cathode gas flow passes through 10, 5, 3, or 2 cells in series, with each block of series-connected cells in parallel.
[0107] In some embodiments, the carbon oxide reduction electrolyzer includes an MEA with only an anion exchange membrane (AEM). An AEM-only MEA can be used to remove CO from the product gas stream to achieve a higher concentration of the desired product in the electrolyzer output. x By reacting with the hydroxide produced in the reduction reaction, bicarbonate is produced. The bicarbonate is then transported from the cathode through the anion exchange membrane to the anode side. This results in less CO2 in the cathode output and less CO2, such as methane and ethylene. xThe reduction products will be more concentrated. In some embodiments, the cathode output may be substantially free of CO. The amount of CO may depend on the initial starting CO. According to various embodiments, the cathode output may be less than 5 mol%, less than 1 mol%, or less than 0.1 mol%. Figure 4 shows an example of a single-stage CO reduction electrolyzer with an AEM-only MEA. As can be seen, CO is mixed with O on the anode side. The product stream includes ethylene, H, and CO.
[0108] In the example of Figure 4, water is fed to the anode of the electrolyzer and oxidized to oxygen. H2 may be the anode-side feed in some embodiments. In some embodiments, a carbon-containing anode feed is used. These may be particularly advantageous when performing CO2 reduction in an AEM-type electrolyzer. A liquid or gas feed containing a carbon compound is fed to the anode. The carbon compound is oxidized to CO2, resulting in a pure CO2 stream emerging from the anode of the AEM electrolyzer. According to various embodiments, the CO2 is then converted into CO2. x It may be returned to the cathode of the electrolyzer and used in other applications or sequestered. Examples of anode feedstocks are biogas, natural gas, CO separated from biogas containing traces of methane and / or other hydrocarbons, municipal wastewater, alcohol or aqueous alcohol solutions, steam methane reforming waste streams, carbon monoxide, etc.
[0109] In embodiments where water is used and fed to the electrolyzer anode and oxidized to oxygen gas, the anode-side vapor output stream of the electrolyzer contains oxygen and CO. In some embodiments, a gas separator can be used to separate the CO and O, and the CO stream is recycled back to the electrolyzer inlet for reduction.
[0110] In a specific example, 100 cm 2 600mA / cm in an electrochemical cell 2At a current efficiency of 90% for ethylene and 10% for H2, with an input flow rate of 450 sccm, the cathode output stream has a flow rate of 104 sccm and contains approximately 60% ethylene and 40% hydrogen, with only traces of CO2, with most of the unreacted CO2 migrating to the anode side of the device.
[0111] In some embodiments, the cathode gas product stream may be heated to a temperature of 100 cm without significant enrichment of CO in the cathode gas product stream. 2 An input flow rate of up to 900 sccm can be used for the electrolyzer. With an input flow rate of 910 sccm, the output stream contains 56% ethylene, 37.3% H2, and 6.7% CO2, with a total flow rate of 113 sccm.
[0112] In other embodiments, the electrolyzer may be configured to produce another gas-phase multi-electron product, such as methane, ethane, propane, or propylene. Additionally, in some embodiments, an AEM-only MEA may be implemented for CO production.
[0113] In some embodiments, two electrolyzers in series are configured differently to achieve a higher concentration of products in the exhaust stream. This can also result in improved performance of the combined system relative to a single device. Figure 5 shows another embodiment in which an AEM-only membrane is implemented in such a two-stage system. In the example of Figure 5, the first CO electrolyzer contains a bipolar or cation-conducting membrane and may be configured for CO production. CO input to the cathode is reduced to CO. The reactor output then contains CO, a small amount of by-product H, and unreacted CO. This output of the first electrolyzer is then fed to a second electrolyzer containing an AEM membrane configured to produce ethylene and / or other multi-electron products (e.g., methane, ethylene, etc.). In the second electrolyzer, CO and / or CO are reduced to multi-electron products, and CO in the form of carbonate or bicarbonate migrates through the AEM membrane to the anode. The anode output contains oxidation products and the CO originally from the cathode. The cathode output contains ethylene and / or other multi-electron products, hydrogen, and unreacted CO and CO. Because all or most of the CO has been transported to the anode, the CO concentration may be very low or no CO may remain in the stream.
[0114] In a specific example, the first electrolyzer is a 75 cm electrolytic cell configured for the reduction of CO to CO using a bipolar membrane MEA. 2 The input flow rate is 1500 sccm, with a CO current efficiency of greater than 95% and a H current efficiency of less than 5%. The total output flow is approximately 1515 sccm, with a composition of approximately 15% CO, 1% H, and 84% CO. The output from the first electrolyzer is fed to a second electrolyzer configured for ethylene production, containing an AEM-type MEA. The second electrolyzer contains a 100 cm 2 and 600mA / cm 2The current efficiency is 90% ethylene and 10% H. The cathode exhaust stream from the second electrolyzer contains 15.6% ethylene, 6.3% CO, 6.9% H, and 71.2% CO, with a total flow rate of 606 sccm.
[0115] In many cases, the reduction of CO is due to the x Because reduction of CO and CO2 species is kinetically easier, the second electrolyzer utilizing a combined CO and CO2 feedstock can operate at a lower voltage compared to when it is fed with CO2, carbonate, and / or bicarbonate.
[0116] Between the first and second electrolytic cells, additional gas may be added or removed from the stream and may be part of a recirculation loop to and from other parts of the electrolytic cells. Water may be removed or added to the gas stream by humidification, phase separation, or dehumidification. The pressure of the gas stream may be adjusted up or down using a compressor or backflow regulator.
[0117] The two-stage system illustrated in Figure 5 may also be used for CO production, with an AEM-only MEA configured for CO production rather than ethylene or other multi-electron products. In such an embodiment, the first (bipolar) electrolyzer outputs product CO, unreacted CO, and by-product H, all of which may be fed to a second (AEM) electrolyzer, which creates CO and H. According to various embodiments, the output of the second electrolyzer may have more H than CO, or more CO than H. Because CO will be removed from the stream in the AEM electrolyzer, the product output will be CO + H, with most of the CO having been removed.
[0118] According to various embodiments, the output of the second electrolyzer may be less than 30%, less than 5%, less than 1%, or less than 0.1% CO2 by molar.
[0119] Figure 6 shows an example of an electrolytic cell that includes a buffer layer of an aqueous alkaline solution placed between the membrane and the cathode. Examples of solutions include KOH, NaOH, NaHCO3, and KHCO3 solutions. Cesium-containing solutions may also be used. The buffer layer removes CO2 from the product gas stream and provides an alkaline environment to mitigate H2 production and reduce proton activity. CO2 is converted to OH in the buffer layer. - The bicarbonate reacts with the cathode to produce bicarbonate. The bicarbonate is then transported from the cathode through an anion exchange membrane to the anode side, or from the cathode side by passing a liquid through a buffer layer. This results in less CO2 in the cathode output. The buffer layer also helps maintain a high pH at the cathode and suppress H2 production. Because H2 is a product of a two-electron process, suppressing H2 production will lead to an increase in COx reduction products (e.g., methane, ethylene). In some embodiments, an AEM-only MEA or a bipolar membrane MEA is used.
[0120] As described above, cells containing liquid buffers can be configured as single or multiple cells with single or multiple passes, as described above with respect to Figures 1-3b. The gaseous input to the electrochemical cell includes pure CO2 for a single pass, or a combination of output from a previous pass and fresh CO2 for multiple passes. As described above, multiple pass systems use lower CO2 input flows than single pass systems because a small portion of the reactants are gases that have been recycled through the system. The cathode liquid input includes an alkaline solution, which is either in a single pass or contains OH that is available to capture CO2. - If there is sufficient CO, it can be recycled through the outlet of the buffer layer. x The liquid output contains a mixture of reduction products, as well as lower concentrations of CO2 and H2 compared to systems without an alkaline buffer layer, with the product:CO2 ratio depending on the concentration of alkaline species in the buffer layer and the gas flow rate in the gas stream. - CO3 formed by reaction with2- , HCO3 - , and unreacted excess OH - Includes. system
[0121] FIG. 7 shows a system 701 for controlling the operation of a carbon oxide reduction reactor 703, which may include cells including MEAs such as any one or more of those described herein with respect to FIGS. 1-6. The reactor may include multiple cells or MEAs arranged in a stack. System 701 includes an anode subsystem that interfaces with the anode of reduction reactor 703 and a cathode subsystem that interfaces with the cathode of reduction reactor 703.
[0122] As shown, the cathode subsystem includes a carbon oxide source 709 configured to provide a feed stream of carbon oxide to the cathode of the reduction reactor 703, which, during operation, may produce an output stream including products of the reduction reaction at the cathode. The product stream may include unreacted carbon oxide and / or hydrogen. See 708.
[0123] The carbon oxide source 709 is coupled to a carbon oxide flow controller 713 configured to control the volumetric or mass flow rate of carbon oxide to the reduction reactor 703. One or more other components may be disposed in the flow path from the inlet carbon oxide source 709 to the cathode of the reduction reactor 703. For example, an optional humidifier 704 may be provided in the path and configured to humidify the carbon oxide feed stream. The humidified carbon oxide may wet one or more polymer layers of the MEA, thereby preventing such layers from drying out. Another component that may be disposed in the flow path is a purge gas inlet coupled to a purge gas source 717. In certain embodiments, the purge gas source 717 is configured to provide purge gas during periods when electrical current is suspended to the cells of the reduction reactor 703. In some implementations, flowing purge gas over the MEA cathode facilitates recovery of catalytic activity and / or selectivity. This may be due, at least in part, to the flushing of certain reaction intermediates from catalytically active sites and / or the removal of water from the cathode. Examples of purge gases include carbon dioxide, carbon monoxide, hydrogen, nitrogen, argon, helium, oxygen, and mixtures of any two or more of these.
[0124] During operation, the output stream from the cathode flows through a conduit 707 that connects to a backpressure controller 715 configured to maintain the pressure at the cathode side of the cell within a specified range (e.g., about 10-800 psig or 50-800 psig, depending on the system configuration). The output stream may provide reaction product 108 to one or more components (not shown) for separation and / or concentration.
[0125] In certain embodiments, the cathode subsystem is configured to controllably recycle unreacted carbon oxide from the output stream back to the cathode of the reduction reactor 703. In some implementations, the output stream is treated to remove reduction products and / or hydrogen before recycling the carbon oxide. Depending on the configuration and operating parameters of the MEA, the reduction products may be carbon monoxide, hydrogen, hydrocarbons such as methane and / or ethylene, oxygen-containing organic compounds such as formic acid, acetic acid, and any combination thereof. In certain embodiments, one or more components (not shown) for removing water from the product stream are disposed downstream of the cathode outlet. Examples of such components include a phase separator configured to remove liquid water from the product gas stream and / or a condenser configured to cool the product stream gas and thereby provide dry gas, for example, for downstream processes, if needed. In some implementations, the recycled carbon oxide may be mixed with fresh carbon oxide from a source 709 upstream of the cathode.
[0126] As shown in FIG. 7 , the anode subsystem is configured to provide an anode feed stream to the anode side of the carbon oxide reduction reactor 703. In certain embodiments, the anode subsystem includes an anode water source (not shown) configured to provide fresh anode water to a recirculation loop that includes an anode water reservoir 719 and an anode water flow controller 711. The anode water flow controller 711 is configured to control the flow rate of the anode water to or from the anode of the reduction reactor 703. In the illustrated embodiment, the anode water recirculation loop is coupled to components for adjusting the composition of the anode water. These may include a water reservoir 721 and / or an anode water additive source 723. The water reservoir 721 is configured to supply (and circulate in the anode water recirculation loop) water having a different composition than that in the anode water reservoir 719. In one example, the water in the water reservoir 721 is pure water that can dilute solutes or other components in the circulating anode water. The pure water may be conventional deionized water or even ultrapure water, for example, having a resistivity of at least about 15 MOhm-cm or greater than 18.0 MOhm-cm. The anode water additive source 723 is configured to supply solutes, such as salts and / or other components, to the circulating anode water.
[0127] During operation, the anode subsystem may provide water or other reactants to the anode of reactor 703, which at least partially react to produce oxidation products, such as oxygen. The products, along with any unreacted anode feed material, are provided in the reduction reactor exhaust stream. Although not shown in FIG. 7, an optional separation component may be provided in the path of the anode exhaust stream and configured to concentrate or separate the oxidation products from the anode product stream.
[0128] Other control functions may be included in system 701. For example, a temperature controller may be configured to heat and / or cool carbon oxide reduction reactor 703 at appropriate points during its operation. In the illustrated embodiment, temperature controller 705 is configured to heat and / or cool the anode water provided to the anode water recirculation loop. For example, temperature controller 705 may include or be coupled to heaters and / or coolers that may heat or cool the water in anode water reservoir 719 and / or the water in reservoir 721. In some embodiments, system 701 includes temperature controllers configured to directly heat and / or cool components other than the anode water components. Examples of such other components within a cell or stack are carbon oxides flowing to the cathode.
[0129] Depending on the phase of electrochemical operation, including whether or not current to carbon oxide reduction reactor 703 is suspended, certain components of system 701 may operate to control non-electrical operation. For example, system 701 may be configured to regulate the flow rate of carbon oxide to the cathode and / or the flow rate of anode feed to the anode of reactor 703. Components that may be controlled for this purpose may include carbon oxide flow controller 713 and anode water controller 711.
[0130] Additionally, depending on the phase of electrochemical operation, including whether or not the current is paused, certain components of system 701 may operate to control the composition of the carbon oxide feed stream and / or the anode feed stream. For example, water reservoir 721 and / or anode water additive source 723 may be controlled to adjust the composition of the anode feed stream. In some cases, additive source 723 may be configured to adjust the concentration of one or more solutes, such as one or more salts, in the aqueous anode feed stream.
[0131] In some cases, a temperature controller, such as controller 705, is configured to adjust the temperature of one or more components of system 701 based on the phase of operation. For example, the temperature of cell 703 may be increased or decreased during break-in, current suspension during normal operation, and / or storage.
[0132] In some embodiments, the carbon oxide electrolytic reduction system is configured to facilitate removal of the reduction cell from other system components. This can be useful when the cell needs to be removed for storage, maintenance, refurbishment, etc. In the illustrated embodiment, isolation valves 725a and 725b are configured to block fluid communication of cell 703 to the carbon oxide source to the cathode and to backpressure controller 715, respectively. Additionally, isolation valves 725c and 725d are configured to block fluid communication of cell 703 to the anode water inlet and outlet, respectively.
[0133] The carbon dioxide reduction reactor 703 may also operate under the control of one or more power supplies and associated controllers. See block 733. The power supplies and controllers 733 may be programmed or otherwise configured to control the current supplied to and / or control the voltage applied to electrodes in the reduction reactor 703. The current and / or voltage may be controlled so that the current is applied at a desired current density. A system operator or other responsible party may act in conjunction with the power supplies and controllers 733 to fully define the profile of the current applied to the reduction reactor 703.
[0134] In certain embodiments, the power supply and controller operate in coordination with one or more other controllers or control mechanisms that interface with other components of system 701. For example, power supply and controller 733 may operate in coordination with controllers for controlling the delivery of carbon oxide to the cathode, the delivery of anode water to the anode, the addition of pure water or additives to the anode water, and any combination of these functions. In some implementations, one or more controllers are configured to control or operate in a coordinated manner to control any combination of the following functions: application of current and / or voltage to the reduction cell 703, control of backpressure (e.g., via the backpressure controller 115), supply of purge gas (e.g., using the purge gas component 717), delivery of carbon oxide (e.g., via the carbon oxide flow controller 713), humidification of the carbon oxide in the cathode feed stream (e.g., via the humidifier 704), flow of anode water to and / or from the anode (e.g., via the anode water flow controller 711), and anode water composition (e.g., via the anode water source 105, the pure water reservoir 721, and / or the anode water additive component 723).
[0135] In the illustrated embodiment, the voltage monitoring system 734 is used to determine the voltage across the anode and cathode of an MEA cell or across any two electrodes of a cell stack, for example, to determine the voltage across all cells in a multi-cell stack.
[0136] 9 may employ a control system including one or more controllers and one or more controllable components, such as pumps, sensors, dispensers, valves, and power supplies. Examples of sensors include pressure sensors, temperature sensors, flow sensors, conductivity sensors, voltmeters, ammeters, electrolyte composition sensors including electrochemical instruments, chromatography systems, optical sensors such as absorbance measurement tools, and the like. Such sensors may be coupled to the inlets and / or outlets of the MEA cells (e.g., in the flow field), in reservoirs for holding anode water, pure water, salt solutions, and the like, and / or other components of the electrolytic carbon reduction system.
[0137] Various functions that may be controlled by one or more controllers include applying current and / or voltage to carbon oxide reduction cells, controlling backpressure on the cathode outlets on such cells, supplying purge gas to the cathode inlet, delivering carbon oxide to the cathode inlet, humidifying carbon oxide in the cathode feed stream, flowing anode water to and / or from the anode, and controlling the anode feed composition. Any one or more of these functions may have a dedicated controller for solely controlling that function. Any two or more of these functions may share a controller. In some embodiments, a hierarchy of controllers is used, with at least one master controller providing instructions to two or more component controllers. For example, a system may include a master controller configured to provide high-level control instructions to (i) the power supply to the carbon oxide reduction cells, (ii) the cathode feed stream flow controller, and (iii) the anode feed stream flow controller. For example, a programmable logic controller (PLC) may be used to control the individual components of the system.
[0138] In certain embodiments, the control system is configured to apply current to a carbon oxide reduction cell comprising an MEA according to a set current schedule described herein. In certain embodiments, the control system is configured to control the flow rate of one or more feed streams (e.g., a cathode feed stream, such as a carbon oxide stream, and an anode feed stream) in coordination with the current schedule. In some embodiments, the current and / or voltage may be adjusted to provide regular pauses as described in U.S. Patent Application No. 16 / 719,359, filed December 18, 2019, which is incorporated herein by reference for all purposes.
[0139] In certain embodiments, the control system may maintain the salt concentration at a specified level and / or recover and recirculate the anode water. In certain embodiments, the salt concentration is adjusted in coordination with a schedule for suspending the application of current to the MEA cell. Under the control of the control system, the system may, for example, (a) recirculate the anode water flowing out from the anode, (b) adjust the composition and / or flow rate of the anode water to the anode, (c) return water from the cathode outflow to the anode water, and / or (d) adjust the composition and / or flow rate of the water recovered from the cathode stream before returning it to the anode. Note that (d) may be a source of oxidized carbon reduction products in the water recovered from the cathode. However, in some implementations, this need not be considered, as some reduction products may later be oxidized to harmless products at the anode.
[0140] The controller may include any number of processors and / or memory devices. The controller may include control logic, such as software or firmware, and / or may execute instructions provided from another source. The controller may be integrated with electronics to control the operation of the electrolytic cell before, during, and after carbon dioxide reduction. The controller may control various components or subparts of one or more electrolytic carbon dioxide reduction systems. Depending on the process requirements and / or system type, the controller may be programmed to control any of the processes disclosed herein, such as gas delivery, temperature settings (e.g., heating and / or cooling), pressure settings, power settings (e.g., voltage and / or current delivered to the electrodes of the MEA cell), liquid flow rate settings, fluid delivery settings, and dosing of purified water and / or salt solution. These controlled processes may be connected or interfaced with one or more systems that function in coordination with the electrolytic carbon dioxide reduction system.
[0141] In various embodiments, the controller includes electronics comprising various integrated circuits, logic, memory, and / or software that receive instructions, issue instructions, and control the operations described herein. The integrated circuits may include chips in the form of firmware that store program instructions, digital signal processors (DSPs), chips defined as application-specific integrated circuits (ASICs), and / or one or more microprocessors or microcontrollers that execute the program instructions (e.g., software). The program instructions may be instructions communicated to the controller in the form of various individual settings (or program files) that define operating parameters for carrying out processes in one or more components of the electrolytic oxidative carbon reduction system. In some embodiments, the operating parameters may be part of a recipe defined by a process engineer to accomplish one or more process steps during the production of specific reduction products, such as carbon monoxide, hydrocarbons, and / or other organic compounds.
[0142] In some implementations, the controller may be part of or coupled to a computer that is integrated with, coupled to, or otherwise networked to the system, or a combination thereof. For example, the controller may utilize and / or execute instructions stored remotely (e.g., in the “cloud”). The computer may provide remote access to the system to monitor the current progress of an electrolysis operation, examine the history of past electrolysis operations, and examine trends or performance metrics from multiple electrolysis operations to modify parameters of a current process, configure process steps to follow a current process, or initiate a new process. In some examples, a remote computer (e.g., a server) may provide a process recipe to the system over a network, which may include a local network or the Internet. The remote computer may include a user interface that allows entry or programming of parameters and / or settings, which are then communicated from the remote computer to the system. In some examples, the controller receives instructions in the form of data specifying parameters for each of the process steps to be performed during one or more operations.
[0143] The controller may be distributed, such as by including one or more separate controllers networked together and functioning toward a common purpose, such as application of current to the MEA cells and other process control described herein. An example of a distributed control system for such purposes includes one or more processors on the system for electrolytic reduction of carbon oxides and one or more remotely located processors (e.g., at the platform level or as part of a remote computer) that are combined to control the process.
[0144] In certain embodiments, the electrolytic carbon dioxide reduction system is configured and controlled to avoid salt precipitation within the MEA. Precipitated salts can block channels and / or have other effects that degrade MEA cell performance. In some cases, for example, on the cathode side, the cell can become excessively dry because the dry gaseous reactants remove excess water from the MEA, particularly on the cathode side. This problem, which can lead to salt precipitation, can be addressed by controlling the water pressure in the gas inlet stream (e.g., by humidifying the gaseous carbon dioxide source gas). In some cases, the salt concentration in the anode water is sufficiently high to promote salt precipitation in the MEA. This problem can be addressed by flushing the MEA with pure water during current pauses.
[0145] In certain embodiments, the electrolytic carbon dioxide reduction systems described herein use carbon dioxide received directly from the air. The systems include a direct air CO capture subsystem and a carbon dioxide reduction electrolyzer subsystem. The systems are configured so that CO from the capture subsystem directly or indirectly supplies CO to the cathode side of the electrolyzer subsystem. The carbon dioxide reduction electrolyzer subsystem can include any of the carbon dioxide reduction reactors and systems described above.
[0146] The system may be designed so that air or other gas is provided to the CO2 capture subsystem under specified conditions. In certain embodiments, a fan, vacuum pump, or simply wind is used to deliver air to the CO2 capture subsystem.
[0147] In certain embodiments, the CO2 capture subsystem has two stages: a first stage (Phase 1) in which air is contacted with an absorption liquid that removes CO2 from the air; and a second stage (Phase 2) in which heat, electricity, pressure, and / or humidity are applied to the absorption liquid to release CO2 and / or water. In some implementations, the CO2 capture subsystem uses a solid or liquid absorbent or adsorbent in Phase 1 to capture CO2. In various implementations, Phase 1 is performed at or near ambient conditions. In Phase 2, a temperature, electricity, pressure, and / or moisture swing is applied to release the absorbed or adsorbed CO2, and optionally water. Further description and examples of CO2 capture subsystems are provided in U.S. Provisional Patent Application No. 63 / 060,583, which is incorporated herein by reference.
[0148] Depending on the configuration of the CO2 capture subsystem and its operating conditions, CO2 can be produced from air at high concentrations, for example, about 90 mole % or higher. In some cases, the CO2 capture subsystem is configured to produce CO2 at relatively lower concentrations that are still sufficient for the CO2 reduction electrolyzer to operate.
[0149] As shown, the captured and then released CO2 is the feedstock that is delivered directly or indirectly to the cathode side of the CO2 reduction electrolyzer. In certain embodiments, water captured from the air is also used in the feedstock of the CO2 electrolyzer.
[0150] In certain embodiments, the air capture CO electrolysis system is configured to operate by delivering CO from the direct air capture subsystem in a substantially pure stream, e.g., about 99 mol% or higher CO. In certain embodiments, the system is configured to operate using lower concentrations of CO to the electrolyzer, e.g., about 98 mol% or higher CO, or about 90 mol% or higher CO, or even about 50 mol% or higher CO. In some cases, very low CO concentrations are used as the feedstock. Such concentrations are still substantially higher than the atmospheric concentration of carbon dioxide, which is about 0.035 mol%. In certain embodiments, the system is configured to operate using a CO concentration of about 5-15 mol% mixed with another gas, such as air or nitrogen.
[0151] In certain embodiments, the output of the CO2 capture subsystem contains only CO2 and other components in air, such as nitrogen, oxygen, water, argon, or any combination. In all cases, CO2 is present in a concentration higher than its concentration in air. In certain embodiments, the output of the CO2 capture subsystem does not contain sulfur.
[0152] The direct air capture unit and CO2 electrolyzer can be integrated in several ways depending on the type of air capture technology. Heat and mass transfer components may be integrated into the overall air capture CO2 electrolysis system.
[0153] For example, in some designs, the CO2 reduction electrolyzer is configured to receive CO2 from the direct air capture subsystem and provide heat and / or humidity to the direct air capture subsystem. The provided heat may cause the captured CO2 to be released using a temperature swing desorption mechanism during phase 2 of the direct air capture subsystem. The humidified electrolyzer product gas may be used to release the captured CO2 using a moisture swing desorption mechanism during phase 2 of the direct air capture subsystem.
[0154] In certain embodiments, the CO2 electrolyzer is designed or configured to receive dilute CO2 (e.g., about 50 mol% CO2 or less) as an input.
[0155] The direct air capture unit can be designed with multiple absorber tanks. To receive a continuous stream of CO (and optionally water) from the air capture subsystem, at least two different tanks are operated at different stages of absorption / desorption during operation of the entire air capture CO electrolysis system. For example, one absorber tank may take in air and capture CO while another is heated to release CO, with each tank continuing through the absorption / desorption cycle, with the absorber tank taking in CO expelling CO, and vice versa. By adding multiple tanks at different points in the cycle, a continuous stream of input can be delivered to the CO electrolyzer and receive a continuous stream of CO and moisture-containing air, heat, and / or vacuum.
[0156] The direct air capture unit can be sized to deliver the desired volume of CO2 stream for the CO2 electrolyzer. This may include using multiple absorbent-containing vessels. For example, a direct air capture subsystem may be configured to deliver 750 slpm of CO2. Such a subsystem may be coupled to a 200-cell electrochemical stack consisting of a 1000 cm2 membrane electrode assembly operated at 300 mA / cm2 and 3 V / cell to produce 378 slpm of CO2 and 42 slpm of hydrogen, assuming a 90% CO2 to CO2 current efficiency for the process. As mentioned above, unreacted CO2 at the electrolyzer outlet may be recycled to the inlet to increase carbon efficiency. When operated continuously, a combined air capture and electrolyzer unit can produce approximately 675 kg / day of CO2. Generally, in some designs, an air capture CO2 electrolyzer system is configured to output at least about 100 kg / day of CO2 and / or other CO2 reduction products. In some designs, the air capture CO2 electrolyzer system is configured to output at least about 500 kg / day of CO and / or other CO2 reduction products.
[0157] In certain embodiments, systems using a carbon dioxide electrolyzer and, optionally, a carbon dioxide direct air capture unit also include a module configured to capture water from the air or atmosphere. In some embodiments, the module configured to capture water from the air utilizes solar energy from photovoltaics and / or solar thermal in conjunction with a hygroscopic material. In certain embodiments, the module configured to capture water is an environmental dehumidifier, such as a hydropanel (e.g., available from Zero Mass Water, Inc., Scottsdale, Arizona).
[0158] 8 illustrates an air capture CO2 electrolyzer system 801 that includes a direct air CO2 capture subsystem 803 and a CO2 reduction electrolyzer subsystem 805. The illustrated direct air CO2 capture subsystem 803 is configured to receive CO2-containing air, optionally with humidity, for example, under atmospheric conditions (about 0.035 mol% CO2), during absorption-sorption phase 1, and to release air from which most of the CO2 has been removed and, optionally, from which much of the humidity has been removed.
[0159] The direct air CO2 capture subsystem 803 is configured to release CO2 and optionally water during phase 2. At least CO2 and optionally water are provided as inputs to the CO2 electrolyzer 805. The CO2 released from the direct air capture subsystem 803 during phase 2 is provided to the cathode side of the electrolyzer 805. As shown, an optional CO2 purification unit 807 is interposed between the direct air CO2 capture subsystem 803 and the electrolyzer 805. The water optionally provided by the direct air CO2 capture subsystem 803 may be directed to the cathode side of the electrolyzer 805 (as moisture in the CO2 feed) or the anode side (as a reactant).
[0160] In the illustrated embodiment, the electrolyzer 805 is configured to receive electricity (to drive the CO reduction reaction and the anode oxidation reaction). The electrolyzer 805 is also configured to provide excess heat from the electrolysis reaction to the direct-air CO capture subsystem 803 to drive Phase 2 (CO release from the absorption solution). The CO electrolyzer 805 is configured to output oxygen (the anode reaction product when water is a reactant) and one or more CO reduction products, which may include CO and / or other carbon-based products as described above with respect to FIGS. 1-7. As shown, the system 801 is configured to provide the electrolyzer output to a separation unit 809 configured to separate the CO and / or other carbon-based electrolysis products from hydrogen, CO, water, and / or other components. In the illustrated embodiment, the system 801 is configured to deliver humidified CO from the separation unit 809 to the direct-air CO capture subsystem 803. Any of the carbon dioxide electrolyzers described herein with respect to FIGS. 1-7 may be positioned downstream of the direct-air CO capture subsystem, as shown in FIG. 8. Overview of MEA
[0161] The above description refers to MEAs, including bipolar and AEM-only MEAs. Further description of MEAs that may be used with various embodiments of the systems and methods described herein, including cation exchange membrane-only MEAs, is provided below.
[0162] In various embodiments, the MEA includes an anode layer, a cathode layer, an electrolyte, and optionally one or more other layers. The layers may be solid and / or gel. The layers may include a polymer, such as an ion-conducting polymer.
[0163] During use, the cathode of the MEA is heated by CO x , CO x CO by combining three inputs: ions (e.g., protons) that chemically react with CO, and electrons. xThe anode of the MEA promotes the electrochemical reduction of CO, hydrocarbons, and / or oxygen- and hydrogen-containing organic compounds, such as methanol, ethanol, and acetic acid. In use, the anode of the MEA promotes an electrochemical oxidation reaction, such as the electrolysis of water, to produce elemental oxygen and protons. The cathode and anode may each include a catalyst to facilitate their respective reactions.
[0164] The composition and arrangement of the layers within the MEA are x To this end, the MEA can promote a high yield of reduction products. To this end, the MEA can be configured to: (a) prevent a parasitic reduction reaction (non-CO) at the cathode; x (b)) CO reduction reactions at the anode or elsewhere within the MEA; x (c) maintaining the physical integrity of the MEA during the reaction (e.g., preventing delamination of the MEA layers); and (d) reducing CO x (e) preventing crossover of reduction products, (f) maintaining a favorable environment at the cathode for oxidation, (g) providing a path for desired ions to travel between the cathode and anode while blocking undesired ions, and (h) minimizing voltage losses. As described herein, the presence of salt or salt ions in the MEA can facilitate some of all of these conditions. COx Reduction Considerations
[0165] Polymer-based membrane assemblies such as MEAs have been used in a variety of electrolysis systems, such as water electrolyzers, and in a variety of galvanic systems, such as fuel cells. x Reduction presents a problem that does not occur, or occurs to a lesser extent, in water electrolysers and fuel cells.
[0166] For example, in many applications, CO xThe MEA for CO reduction requires a lifespan of about 50,000 hours or longer (about 5 years of continuous operation), which is significantly longer than the expected lifespan of a fuel cell for automotive use (for example, about 5,000 hours). x The MEA for reduction uses electrodes with a relatively large surface area compared to the MEAs used in fuel cells for automotive applications. For example, CO x The MEA for reduction should be at least approximately 500 cm 2 Electrodes having a surface area (not considering voids and other non-planar features) of 0.1 mm to 1.0 mm may be used.
[0167] CO x The reduction reaction may be implemented in an operating environment that facilitates mass transport of certain reactant and product species and suppresses parasitic reactions. Fuel cell and water electrolyzer MEAs often cannot create such an operating environment. For example, such MEAs may promote undesirable parasitic reactions, such as the generation of gaseous hydrogen at the cathode and / or the production of gaseous CO at the anode.
[0168] In some systems, CO x The rate of reduction is determined by the amount of gaseous CO at the cathode. x Limited by the availability of reactants. In contrast, the rate of water electrolysis is not significantly limited by the availability of reactants. Liquid water tends to be readily accessible to the cathode and anode, allowing the electrolyzer to operate near the highest possible current density. MEA Configuration
[0169] In certain embodiments, the MEA has a cathode layer, an anode layer, and a polymer electrolyte membrane (PEM) between the anode and cathode layers. The polymer electrolyte membrane provides ionic transfer between the anode and cathode layers while preventing electronic transfer that would cause a short circuit. The cathode layer includes a reduction catalyst and a first ion-conducting polymer. The cathode layer may also include an ionic and / or electronic conductor. The anode layer includes an oxidation catalyst and a second ion-conducting polymer. The anode layer may also include an ionic and / or electronic conductor. The PEM includes a third ion-conducting polymer.
[0170] In certain embodiments, the MEA includes a cathode buffer layer between the cathode layer and the polymer electrolyte membrane, the cathode buffer comprising a fourth ion-conducting polymer.
[0171] In certain embodiments, the MEA includes an anode buffer layer between the anode layer and the polymer electrolyte membrane, the anode buffer comprising a fifth ion-conducting polymer.
[0172] With respect to a particular MEA design, there are three available classes of ion-conducting polymers: anion conductors, cation conductors, and mixed cation-anion conductors. In certain embodiments, at least two of the first, second, third, fourth, and fifth ion-conducting polymers are from different classes of ion-conducting polymers. Ion-conductive polymer in the MEA layer
[0173] The term "ion-conducting polymer" is used herein to describe a polymer electrolyte having a specific conductivity for anions and / or cations greater than about 1 mS / cm. The term "anion conductor" refers to an ion-conducting polymer that conducts primarily anions (although there may still be some small amount of cation conduction) and has an anion transference number greater than about 0.85 at a thickness of about 100 microns. The terms "cation conductor" and / or "cation-conducting polymer" refer to an ion-conducting polymer that conducts primarily cations (e.g., there may still be an incidental amount of anion conduction) and has a cation transference number greater than about 0.85 at a thickness of about 100 microns. In the case of ion-conducting polymers described as conducting both anions and cations ("cation-anion conductors"), neither the anions nor the cations have transference numbers greater than about 0.85 or less than about 0.15 at a thickness of about 100 microns. To say that a material conducts ions (anions and / or cations) is to say that the material is an ion-conducting material or an ionomer. Examples of each class of ion-conducting polymers are provided in Table 1 below. [Table 1] [Table 6]
[0174] Further examples of polymer structures that include ionizable or ionic moieties and can be used as ion-conducting polymers in the MEAs of the electrolytic cells described herein are provided in U.S. Patent Application No. 17 / 247,036, filed November 24, 2020, which is incorporated herein by reference. Charge conduction through the material can be controlled by the type and amount of charge provided by the ionizable / ionic moieties (e.g., anionic and / or cationic charge on the polymer structure). In addition, the composition can include polymers, homopolymers, copolymers, block copolymers, polymer blends, other polymer system forms, or other useful combinations of repeating monomer units. As further described in U.S. Patent Application No. 17 / 247,036, the ion-conducting polymer layer may include one or more of crosslinks, linking moieties, and arylene groups, according to various embodiments. In some embodiments, two or more ion-conducting polymers (e.g., two or more ion-conducting polymer layers of an MEA) may be crosslinked. Bipolar MEA for COx reduction
[0175] In certain embodiments, the MEA includes a bipolar interface between an anion-conducting polymer on the cathode side of the MEA and an interfacing cation-conducting polymer on the anode side of the MEA. In some implementations, the cathode contains a first catalyst and an anion-conducting polymer. In certain embodiments, the anode contains a second catalyst and a cation-conducting polymer. In some implementations, a cathode buffer layer is disposed between the cathode and the polymer electrolyte membrane (PEM) and contains the anion-conducting polymer. In some embodiments, an anode buffer layer is disposed between the anode and the PEM and contains the cation-conducting polymer.
[0176] In operation, MEAs with bipolar interfaces transport ions through the polymer electrolyte, electrons through the metal and / or carbon in the cathode and anode layers, and liquids and gases through the pores in the layers.
[0177] In embodiments using an anion-conducting polymer in the cathode and / or cathode buffer layer, the MEA can reduce or block undesired reactions that produce undesired products and reduce the overall efficiency of the cell. In embodiments using a cation-conducting polymer in the anode and / or anode buffer layer, the MEA can reduce or block undesired reactions that reduce the production of desired products and reduce the overall efficiency of the cell.
[0178] For example, at the potential levels used for the cathodic reduction of CO2, hydrogen ions can be reduced to hydrogen gas. This is a parasitic reaction; the current that would otherwise be used to reduce CO2 is instead used to reduce hydrogen ions. Hydrogen ions may be generated by various oxidation reactions performed at the anode of the CO2 reduction reactor, migrate across the MEA, and reach the cathode, where they can be reduced to produce hydrogen gas. The extent to which this parasitic reaction can proceed is a function of the concentration of hydrogen ions present at the cathode. Therefore, the MEA may use anion-conducting materials in the cathode layer and / or cathode buffer layer. The anion-conducting materials at least partially block hydrogen ions from reaching catalytic sites on the cathode. As a result, the parasitic generation of hydrogen gas is reduced, improving the rate of CO2 or other product production and the overall efficiency of the process.
[0179] Another reaction that can be avoided is the reaction of carbonate or bicarbonate ions at the anode to produce CO. Aqueous carbonate or bicarbonate ions can be generated from CO at the cathode. When such ions reach the anode, they can react with hydrogen ions to produce and release gaseous CO. As a result, CO is net transported from the cathode to the anode, where it does not react and is lost along with oxidation products. To prevent carbonate and bicarbonate ions generated at the cathode from reaching the anode, the anode and / or anode buffer layer may include a cation-conducting polymer, which at least partially blocks the transport of negative ions, such as bicarbonate ions, to the anode.
[0180] Thus, in some designs, a bipolar membrane structure increases the pH at the cathode to promote CO2 reduction, and a cation-conducting polymer, such as a proton exchange layer, prevents significant amounts of CO2 and CO2 reduction products (e.g., bicarbonate) from passing to the anode side of the cell.
[0181] CO x An example of an MEA 200 for use in reduction is shown in FIG. 9. The MEA 900 has a cathode layer 920 and an anode layer 940 separated by an ion-conducting polymer layer 960, which provides a pathway for ions to travel between the cathode layer 920 and the anode layer 940. In certain embodiments, the cathode layer 920 comprises an anion-conducting polymer, and / or the anode layer 940 comprises a cation-conducting polymer. In certain embodiments, the cathode layer and / or the anode layer of the MEA are porous. The pores may facilitate gas and / or fluid transport and may increase the amount of catalytic surface area available for reaction.
[0182] The ion-conducting layer 960 may include two or three sublayers: a polymer electrolyte membrane (PEM) 965, an optional cathode buffer layer 925, and / or an optional anode buffer layer 945. One or more layers of the ion-conducting layer may be porous. In certain embodiments, at least one layer is non-porous, so that reactants and products of the cathode cannot pass to the anode via gas and / or liquid transport, and vice versa. In certain embodiments, the PEM layer 965 is non-porous. Examples of properties of anode and cathode buffer layers are provided elsewhere herein. In some embodiments, the ion-conducting layer 960 includes only a PEM, which may be an anion exchange membrane or a cation exchange membrane.
[0183] 10 shows a CO electrolyzer 1003 configured to receive reactants water and CO (e.g., humidified or dry gaseous CO) at the cathode 1005 and output CO as a product. The electrolyzer 1003 is also configured to receive water as a reactant at the anode 1007 and output gaseous oxygen. The electrolyzer 1003 comprises a bipolar layer having an anion conducting polymer 1009 adjacent to the cathode 1005 and a cation conducting polymer 1011 (shown as a proton exchange membrane) adjacent to the anode 1007.
[0184] As shown in the close-up inset of the bipolar interface 1013 of the electrolytic cell 1003, the cathode 1005 includes an anion exchange polymer (in this example, the same anion conducting polymer 1009 as in the bipolar layer) that electronically conducts carbon support particles 1017 and metal nanoparticles 1019 supported on the support particles. CO and water are transported through pores, such as pore 1021, to reach the metal nanoparticles 1019, where they react, in this case with hydroxide ions, to produce bicarbonate ions and reduction reaction products (not shown). CO may reach the metal nanoparticles 1019 by transport within the anion exchange polymer 1009.
[0185] Hydrogen ions are transported from the anode 1007 through the cation-conducting polymer 1011 until they reach the bipolar interface 1013, where further transport of the hydrogen ions to the cathode is prevented by the anion-exchange polymer 1009. At the interface 1013, the hydrogen ions may react with bicarbonate or carbonate ions to produce carbonic acid (HCO), which may decompose to produce CO and water. As described herein, the resulting CO may be provided in the gas phase and must be routed within the MEA back to the cathode 1005 where it can be reduced. The cation-conducting polymer 1011 prevents anions, such as bicarbonate ions, from being transported to the anode. At the anode, anions, such as bicarbonate ions, can react with protons to release CO, which is not available to participate in the reduction reaction at the cathode.
[0186] As shown, the cathode buffer layer with an anion-conducting polymer may work in concert with the cathode and its anion-conducting polymer to block the transport of protons to the cathode. An MEA that uses ion-conducting polymers of the appropriate conductivity type in the cathode, anode, cathode buffer layer, and anode buffer layer (if present) may prevent the transport of cations to the cathode and anions to the anode, although the cations and anions may still come into contact in internal regions of the MEA, such as within the membrane layer.
[0187] As shown in Figure 10, bicarbonate and / or carbonate ions combine with hydrogen ions between the cathode and anode layers to form carbonic acid, which may decompose to form gaseous CO. It has been observed that the MEA sometimes delaminates, possibly due to the production of this gaseous CO, which does not have an easy escape route.
[0188] The delamination problem can be addressed by using a cathode buffer layer with pores. One possible explanation for this effect is that the pores create a path for gaseous carbon dioxide to return to the cathode where it can be reduced. In some embodiments, the cathode buffer layer is porous, but at least one layer between the cathode and anode layers is non-porous. This can prevent delamination while also preventing the passage of gas and / or bulk liquid between the cathode and anode layers. For example, a non-porous layer can prevent the direct passage of water from the anode to the cathode. CO x Anion exchange membrane only MEA for reduction
[0189] In some embodiments, the MEA does not contain a cation-conducting polymer layer. In such embodiments, the electrolyte is not a cation-conducting polymer, and the anode, if it includes an ion-conducting polymer, does not contain a cation-conducting polymer. Examples are provided herein.
[0190] Anion exchange membrane (AEM)-only (AEM-only) MEAs allow anions to conduct across the MEA. In embodiments where neither MEA layer is significantly conductive to cations, hydrogen ions have limited mobility within the MEA. In some implementations, the AEM-only membrane can provide a high pH environment (e.g., at least about pH 7) to promote CO2 and / or CO2 reduction by suppressing the parasitic hydrogen evolution reaction at the cathode. As with other MEA designs, AEM-only MEAs allow ions, particularly anions such as hydroxide ions, to migrate through the polymer electrolyte. In some embodiments, the pH may be lower; a pH of 4 or higher may be high enough to suppress hydrogen evolution. AEM-only MEAs also allow electrons to migrate to and pass through the metal and carbon in the catalyst layer. In embodiments, AEM-only MEAs have pores in the anode and / or cathode layers, allowing liquid and gas to migrate through the pores.
[0191] In certain embodiments, the AEM-only MEA includes an anion exchange polymer electrolyte membrane with electrocatalytic layers on either side (cathode and anode), and in some embodiments, one or both of the electrocatalytic layers includes an anion exchange polymer electrolyte.
[0192] In certain embodiments, an AEM-only MEA is formed by depositing cathode and anode electrocatalyst layers on a porous conductive support, such as a gas diffusion layer, to form gas diffusion electrodes (GDEs), and sandwiching an anion exchange membrane between the gas diffusion electrodes.
[0193] In certain embodiments, AEM-only MEAs are used for CO reduction. The use of an anion-exchange polymer electrolyte avoids the low pH environment that would be unfavorable for CO reduction. Furthermore, when an AEM is used, water is transported away from the cathode catalyst layer, thereby preventing water accumulation (flooding) that could block reactant gas transport at the cell's cathode.
[0194] Water transport in MEAs occurs through a variety of mechanisms, including diffusion and electroosmotic drag. In some embodiments, at the current densities of the CO2 electrolyzers described herein, electroosmotic drag is the dominant mechanism. Water is dragged along with ions as they move through the polymer electrolyte. For cation-exchange membranes such as Nafion membranes, the amount of water transport is well-characterized and understood to depend on membrane pretreatment / hydration. Protons move from positive to negative potential (anode to cathode), each carrying two to four water molecules, depending on pretreatment. In anion-exchange polymers, the same type of effect occurs. Hydroxide, bicarbonate, or carbonate ions moving through the polymer electrolyte "dragging" water molecules. In anion-exchange MEAs, ions move from negative to positive potential, i.e., from cathode to anode, carrying water molecules with them and, in the process, moving water from cathode to anode.
[0195] In certain embodiments, AEM-only MEAs are used in CO reduction reactions. Unlike CO reduction reactions, CO reduction does not produce carbonate or bicarbonate anions that can be transported to the anode and released as beneficial reactants.
[0196] FIG. 11 shows a CO 2 -conducting cathode catalyst layer 1103, an anode catalyst layer 1105, and an anion-conducting PEM 1107. x 1 illustrates an example configuration of a reduction MEA 1101. In certain embodiments, the cathode catalyst layer 1103 includes metal catalyst particles (e.g., nanoparticles) that are unsupported or supported on a conductive substrate, such as carbon particles. In some implementations, the cathode catalyst layer 1103 further includes an anion-conducting polymer. The metal catalyst particles may catalyze COx reduction, particularly at a pH higher than a threshold pH (which may be, for example, pH 4 to 7, depending on the catalyst). In certain embodiments, the anode catalyst layer 1105 includes metal oxide catalyst particles (e.g., nanoparticles) that are unsupported or supported on a conductive substrate, such as carbon particles. In some implementations, the anode catalyst layer 1103 further includes an anion-conducting polymer. Examples of metal oxide catalyst particles for the anode catalyst layer 1105 include iridium oxide, nickel oxide, nickel iron oxide, iridium ruthenium oxide, and platinum oxide. The anion-conducting PEM1107 may include any of a variety of anion-conducting polymers, such as HNN5 / HNN8 from Ionomr, FumaSep from Fumatech, TM1 from Orion, PAP-TP from W7energy, and Sustainion from Dioxide Materials. These and other anion-conducting polymers may be used, including those with an ion exchange capacity (IEC) in the range of 1.1 to 2.6 mmol / g, an operating pH range of 0 to 14, resistance to solubility in several organic solvents, adequate thermal and mechanical stability, good ionic conductivity / ASR, and acceptable water absorption / swelling ratios. The polymer may be chemically exchanged with a specific anion in place of a halogen anion prior to use. In some embodiments, the anion-conducting polymer may have an IEC of 1 to 3.5 mmol / g.
[0197] As shown in Figure 11, CO gas such as CO x may be provided to the cathode catalyst layer 1103. In certain embodiments, CO may be provided via a gas diffusion electrode. In the cathode catalyst layer 1103, CO reacts to form CO, collectively referred to as C x O y H z The anions produced at the cathode catalyst layer 1103 may include hydroxides, carbonates, and / or bicarbonates. These may diffuse, migrate, or otherwise migrate to the anode catalyst layer 1105. In the anode catalyst layer 1105, oxidation reactions, such as the oxidation of water, may occur to produce diatomic oxygen ions and hydrogen ions. In some applications, the hydrogen ions may react with the hydroxides, carbonates, and / or bicarbonates to produce water, carbonic acid, and / or CO2. The fewer interfaces, the lower the resistance. In some embodiments, a highly basic environment is maintained for C2 and C3 hydrocarbon synthesis.
[0198] 12 illustrates an example configuration of a CO2 reduction MEA 1201 having a cathode catalyst layer 1203, an anode catalyst layer 1205, and an anion-conducting PEM 1207. Overall, the structure of the MEA 1201 may be similar to that of the MEA 1101 of FIG. 11. However, the cathode catalyst may be selected to promote the CO2 reduction reaction, i.e., different reduction catalysts are used in the CO and CO2 reduction embodiments.
[0199] In some embodiments, AEM-only MEAs may be advantageous for CO reduction. The water absorption number of the AEM material can be selected to help regulate moisture at the catalyst interface, thereby improving CO availability to the catalyst. For this reason, AEM-only membranes may be advantageous for CO reduction. Bipolar membranes may be more advantageous for CO reduction due to their better resistance to CO dissolution and crossover in the basic anolyte medium.
[0200] In various embodiments, the cathode catalyst layer 1203 includes metal catalyst particles (e.g., nanoparticles) that are unsupported or supported on a conductive substrate, such as carbon particles. In some implementations, the cathode catalyst layer 1203 further includes an anion-conducting polymer. In certain embodiments, the anode catalyst layer 1205 includes metal oxide catalyst particles (e.g., nanoparticles) that are unsupported or supported on a conductive substrate, such as carbon particles. In some implementations, the anode catalyst layer 1203 further includes an anion-conducting polymer. Examples of metal oxide catalyst particles in the anode catalyst layer 1205 may include those identified for the anode catalyst layer 1105 in FIG. 11 . The anion-conducting PEM 1207 may include any of a variety of anion-conducting polymers, such as those identified for the PEM 1107 in FIG. 11 .
[0201] As shown in Figure 12, CO gas may be provided to the cathode catalyst layer 12. In certain embodiments, CO may be provided via a gas diffusion electrode. In the cathode catalyst layer 1203, CO reacts to form CO, collectively referred to as C. x O y H z The reduction product is shown as
[0202] The anions produced in the cathode catalyst layer 1203 may include hydroxide ions. These may diffuse, migrate, or otherwise migrate to the anode catalyst layer 1205. In the anode catalyst layer 1205, oxidation reactions, such as the oxidation of water, may occur to produce diatomic oxygen ions and hydrogen ions. In some applications, the hydrogen ions may react with the hydroxide ions to produce water.
[0203] While the general configuration of MEA 1201 is similar to that of MEA 1201, there are certain differences between these MEAs. First, the MEA may be wetter for CO reduction, helping to keep the polymer electrolyte hydrated. Also, for CO reduction, a significant amount of CO may be transported to the anode of an AEM-only MEA, such as the one shown in FIG. 12. For CO reduction, significant CO gas crossover is less likely to occur. In this case, the reaction environment may be very basic. MEA materials, including catalysts, may be selected to have good stability in high-pH environments. In some embodiments, thinner membranes may be used for CO reduction than for CO reduction.
[0204] Those skilled in the art will recognize from the foregoing detailed description, and from the figures and claims, that modifications and variations can be made to the disclosed embodiments of the present disclosure without departing from the scope of the disclosure, which is defined in the following claims. Furthermore, this specification also discloses the configurations described in the following items. (Item 1) 1. A system for producing gas-phase multi-electron products, comprising: a carbon dioxide (CO2) reduction reactor having a membrane electrode assembly including one or more ion-conducting polymer layers and a cathode catalyst for promoting the chemical reduction of carbon dioxide to carbon monoxide; A carbon dioxide (CO) catalyst having an anion exchange membrane (AEM)-only membrane electrode assembly (MEA) comprising one or more ion-conducting polymer layers and a cathode catalyst for promoting the chemical reduction of carbon oxide to said gas-phase multi-electron products. x ) a CO reduction reactor, xa reduction reactor configured to receive an intermediate product stream comprising carbon monoxide (CO) and unreacted CO from the CO reduction reactor, reduce CO to the gas-phase multi-electron products, convert at least some of the unreacted CO to bicarbonate, transport the bicarbonate to the anode side of the AEM-only MEA, and output a cathode-side gas-phase product stream comprising the gas-phase multi-electron products, wherein the amount of CO in the cathode-side gas-phase product stream is less than the amount in the intermediate product stream; system. (Item 2) 10. The system of claim 1, wherein the CO2 reduction reactor comprises a bipolar MEA. (Item 3) 10. The system of claim 1, wherein the CO2 reduction reactor has a cation exchange membrane-only MEA. (Item 4) the CO reduction reactor and the CO x 4. The system of claim 1, wherein each reduction reactor comprises a stack of electrochemical cells, each containing an MEA. (Item 5) The CO x 5. The system of claim 1, wherein the reduction reactor is configured to output an anode-side stream comprising O and CO, the system further comprising: a separator configured to separate the CO and the O in the anode-side stream; and a mixing unit configured to mix the separated CO with fresh CO for entry into the CO reduction reactor. (Item 6) The CO x 6. The system of claim 1, wherein the reduction reactor is configured to output an anode-side stream comprising CO, and the system further comprises a recirculation loop configured to recirculate the CO from the anode-side stream to the CO reduction reactor. (Item 7) The CO x7. The system of claim 1, wherein the reduction reactor is configured to output an anode-side stream comprising CO and O, the system further comprising: a separator configured to separate the CO and the O in the anode-side stream; and a mixing unit configured to mix the separated CO with fresh CO for entry into the CO reduction reactor. (Item 8) 8. The system of claim 1, wherein the cathode catalyst for promoting the chemical reduction of carbon dioxide to carbon monoxide comprises gold. (Item 9) 8. The system of claim 1, wherein the cathode catalyst for promoting the chemical reduction of carbon oxides to the gas-phase multi-electron products comprises copper. (Item 10) 10. The system of claim 1, wherein the gas-phase multi-electron product is methane (CH4). (Item 11) 10. The system of claim 1, wherein the gas-phase multi-electron product is ethylene (CH2CH2). (Item 12) 1. A system for producing CO, comprising: a carbon dioxide (CO2) reduction reactor having a membrane electrode assembly including one or more ion-conducting polymer layers and a cathode catalyst for promoting the chemical reduction of carbon dioxide to carbon monoxide; Carbon dioxide (CO) reduction catalysts are used to generate carbon dioxide (CO) from anion exchange membranes (AEMs) with only membrane electrode assemblies (MEAs) containing one or more ion-conducting polymer layers and a cathode catalyst for promoting the chemical reduction of carbon dioxide. x ) a CO reduction reactor, xa reduction reactor configured to receive an intermediate product stream comprising carbon monoxide (CO) and unreacted CO from the CO reduction reactor, convert at least some of the unreacted CO to bicarbonate, transport the bicarbonate to the anode side of the AEM-only MEA, and output a cathode-side gas-phase product stream comprising CO, wherein the amount of CO in the cathode-side gas-phase product stream is less than the amount in the intermediate product stream; system. (Item 13) 13. The system of claim 12, wherein the CO2 reduction reactor comprises a bipolar MEA. (Item 14) 13. The system of claim 12, wherein the CO2 reduction reactor has a cation exchange membrane-only MEA. (Item 15) The CO2 reduction reactor has a stack of electrochemical cells, each containing an MEA, and the CO2 x 15. The system of claim 12, wherein the reduction reactor comprises a stack of electrochemical cells, each containing an MEA. (Item 16) The CO x 16. The system of claim 12, wherein the reduction reactor is configured to receive a carbon-containing anode-side feed stream. (Item 17) 1. A system for producing a gas phase product, comprising: a carbon dioxide (CO2) reduction reactor having an anion exchange membrane (AEM)-only membrane electrode assembly (MEA) including a cathode catalyst for facilitating the chemical reduction of CO2 to said gas phase product, the CO2 reduction reactor configured to reduce CO2 to said gas phase product, convert at least some of the unreacted CO2 to bicarbonate, transport the bicarbonate to an anode side of the AEM-only MEA for reaction to CO2, output a cathode-side gas phase product stream including said gas phase product, and output an anode-side stream including O2 and CO2; a separator configured to separate the CO and O in the anode-side stream; a mixing unit configured to mix the separated CO with fresh CO for entry into the CO reduction reactor; A system comprising: (Item 18) 18. The system of claim 17, wherein the gas phase product is carbon monoxide (CO). (Item 19) 20. The system of claim 17, wherein the gas-phase product is a gas-phase multi-electron product. (Item 20) 20. The system of claim 19, wherein the gas-phase multi-electron product is methane (CH4). (Item 21) 20. The system of claim 19, wherein the gas-phase multi-electron product is ethylene (CH2CH2). (Item 22) 22. The system of claim 17, wherein the CO2 reduction reactor comprises a stack of electrochemical cells, each containing an MEA. (Item 23) 1. A system for producing a gas phase product, comprising: 1. A carbon dioxide (CO) reduction reactor having an anion exchange membrane (AEM)-only membrane electrode assembly (MEA) including a cathode catalyst for facilitating the chemical reduction of CO to the gas phase product, the CO reduction reactor being configured to: reduce CO to the gas phase product; convert at least some of the unreacted CO to bicarbonate; transport the bicarbonate to an anode side of the AEM-only MEA for reaction to CO; output a cathode-side gas phase product stream including the gas phase product; and receive a carbon-containing anode feedstock; oxidize the carbon-containing anode feedstock to CO; and output an anode-side product stream including CO. A system comprising: (Item 24) 24. The system of claim 23, further comprising a recycle loop for recycling the CO2 in the anode-side product stream to the cathode for reduction. (Item 25) 25. The system of claim 23 or 24, wherein the gas phase product is carbon monoxide (CO). (Item 26) 25. The system of claim 23 or 24, wherein the gas-phase product is a gas-phase multi-electron product. (Item 27) 27. The system of claim 26, wherein the gas-phase multi-electron product is methane (CH4). (Item 28) 27. The system of claim 26, wherein the gas-phase multi-electron product is ethylene (CH2CH2). (Item 29) 29. The system of any one of claims 24 to 28, wherein the CO2 reduction reactor comprises a stack of electrochemical cells, each containing an MEA. (Item 30) 30. The system of any one of claims 23 to 29, wherein the anode feedstock is one of biogas, natural gas, CO separated from biogas containing trace amounts of methane and / or other hydrocarbons, municipal wastewater, alcohol or aqueous alcohol solution, steam methane reforming waste stream, and carbon monoxide. (Item 31) 1. A system for producing a gas phase product, comprising: One or more ion-conducting polymer layers and CO x and a cathode catalyst for promoting the chemical reduction of carbon dioxide (CO ) to said gas phase product. x ) a reduction reactor, x a CO reduction reactor configured to receive a feed stream comprising the gas phase product and to discharge a gas phase product stream comprising the gas phase product; x a recycle loop configured to recycle the portion of the vapor-phase product stream without separation so as to include a mixture of A system comprising: (Item 32) 32. The system of claim 31, wherein the recirculation loop includes a compressor. (Item 33) The CO x32. The system of claim 31, wherein is carbon dioxide (CO2). (Item 34) 34. The system of claim 33, wherein the gas phase product is CO. (Item 35) The CO x 32. The system of claim 31, wherein is carbon monoxide (CO). (Item 36) 32. The system of claim 31, wherein the gas phase product is a multi-electron product. (Item 37) 37. The system of claim 36, wherein the multi-electron product is methane (CH4). (Item 38) 37. The system of claim 36, wherein the multi-electron product is ethylene (CH2CH2). (Item 39) 39. The system of any one of claims 31 to 38, wherein the MEA is a bipolar MEA. (Item 40) 40. The system of any one of claims 31 to 39, wherein the MEA is an anion exchange membrane (AEM)-only MEA. (Item 41) 40. The system of any one of claims 31 to 39, wherein the MEA is a cation exchange membrane-only MEA. (Item 42) 42. The system of claim 31, wherein the MEA comprises a liquid buffer layer disposed between the cathode catalyst and one or more ion-conducting polymer layers. (Item 43) The CO x 43. The system of any one of claims 31 to 42, wherein the reduction reactor comprises a stack of electrochemical cells, each containing an MEA. (Item 44) 1. A system for producing a gas phase product, comprising: One or more ion-conducting polymer layers and CO x and a cathode catalyst for promoting the chemical reduction of carbon dioxide (CO ) to said gas phase product.x ) reduction electrolyzers, each of which contains CO x and configured to receive a feed stream comprising the gas phase product, and to discharge a gas phase product stream comprising the gas phase product. x a reduction electrolytic cell, n being an integer greater than 1, x The reduction electrolysis cell is the n+1th CO x The feed stream of the electrolyzer is x connected in series to include at least a portion of the output of the electrolyzer; system. (Item 45) The CO x 45. The system of claim 44, wherein is carbon dioxide (CO2). (Item 46) 46. The system of claim 45, wherein the gas phase product is carbon monoxide (CO). (Item 47) 47. The system of claim 46, wherein the gas-phase product is a gas-phase multi-electron product. (Item 48) The CO x 45. The system of claim 44, wherein is carbon monoxide (CO). (Item 49) 49. The system of claim 48, wherein the gas-phase product is a gas-phase multi-electron product. (Item 50) 45. The system of claim 44, wherein the gas phase product is methane (CH4). (Item 51) 45. The system of claim 44, wherein the vapor phase product is ethylene (CH2CH2). (Item 52) The n CO x The MEA of the reduction electrolysis cell same 52. The system of any one of claims 44 to 51, wherein (Item 53) The n CO x 53. The system of any one of claims 44 to 52, wherein at least two MEAs of the reduction electrolyzer differ in one or more of catalyst type, catalyst loading, or membrane type. (Item 54) The n CO x 54. The system of any one of claims 44 to 53, wherein the reduction electrolyzers are arranged in a stack. (Item 55) The n CO x The stack of reduction electrolyzers is connected in parallel with the CO x Contains multiple stacks of CO reduction electrolyzers x 55. The system of any one of claims 44 to 54, arranged in a superstack of reduction electrolyzers. (Item 56) 56. The system of any one of claims 44 to 55, wherein the MEA is a bipolar MEA. (Item 57) 56. The system of any one of claims 44 to 55, wherein the MEA is an anion exchange membrane (AEM)-only MEA. (Item 58) 58. The system of any one of claims 44 to 57, wherein the MEA comprises a liquid buffer layer disposed between the cathode catalyst and one or more ion-conducting polymer layers. (Item 59) 1. A system for producing a gas phase product, comprising: one or more ion-conducting polymer layers, CO x a cathode catalyst for promoting the chemical reduction of CO to said gas phase product, and a membrane electrode assembly (MEA) including a liquid buffer layer disposed between said cathode catalyst and said one or more ion-conducting polymer layers. x ) a reduction reactor, x and a COx reduction reactor configured to receive a feed stream comprising the gas phase product and to discharge a gas phase product stream comprising the gas phase product. system.
Claims
1. 1. A system for producing gas-phase multi-electron products, comprising: A carbon dioxide (CO 2 ) catalyst having a membrane electrode assembly including one or more ion-conducting polymer layers and a cathode catalyst for promoting the chemical reduction of carbon dioxide to carbon monoxide. 2 ) a reduction reactor; a carbon dioxide (CO )-containing anion exchange membrane (AEM)-only membrane electrode assembly (MEA) comprising one or more ion-conducting polymer layers and a cathode catalyst for promoting the chemical reduction of carbon oxide to said gas-phase multi-electron products; x ) a CO reduction reactor; x The reduction reactor 2 Carbon monoxide (CO) and unreacted CO from the reduction reactor 2 and reducing CO to said gas-phase multi-electron product, and 2 to convert at least some of the CO in the cathode-side gas-phase product stream to bicarbonate, transport the bicarbonate to the anode side of the AEM-only MEA, and output a cathode-side gas-phase product stream containing the gas-phase multi-electron product; 2 is less than the amount in the intermediate product stream; system.
2. The CO 2 The system of claim 1 , wherein the reduction reactor comprises a bipolar MEA.
3. The CO 2 The system of claim 1 , wherein the reduction reactor has a cation exchange membrane-only MEA.
4. The CO 2 Reduction reactor and the CO x 4. The system of claim 1, wherein each reduction reactor comprises a stack of electrochemical cells, each containing an MEA.
5. The CO x The reduction reactor is 2 and CO 2 and the system is configured to output an anode-side stream containing 2 and the O 2 a separator configured to separate the CO 2 Separated CO for entry into the reduction reactor 2 and fresh CO 2 and a mixing unit configured to mix the
6. The CO x The reduction reactor is 2 and the system is configured to output an anode-side stream containing 2 The CO 2 6. The system of claim 1, further comprising a recycle loop configured to recycle to the reduction reactor.
7. The CO x The reduction reactor is 2 and O 2 and the system is configured to output an anode-side stream containing 2 and the O 2 a separator configured to separate the CO 2 Separated CO for entry into the reduction reactor 2 and fresh CO 2 and a mixing unit configured to mix the
8. 8. The system of claim 1, wherein the cathode catalyst for promoting the chemical reduction of carbon dioxide to carbon monoxide comprises gold.
9. 8. The system of claim 1, wherein the cathode catalyst for promoting the chemical reduction of carbon oxides to the gas-phase multi-electron products comprises copper.
10. The gas-phase multi-electron product is methane (CH 4 10. The system according to claim 1, wherein
11. The gas-phase multi-electron product is ethylene (CH 2 CH 2 10. The system according to claim 1, wherein
12. 1. A system for producing CO, comprising: A carbon dioxide (CO 2 ) catalyst having a membrane electrode assembly including one or more ion-conducting polymer layers and a cathode catalyst for promoting the chemical reduction of carbon dioxide to carbon monoxide. 2 ) a reduction reactor; A carbon dioxide (CO 2 )-containing anion exchange membrane (AEM)-only membrane electrode assembly (MEA) comprising one or more ion-conducting polymer layers and a cathode catalyst for promoting the chemical reduction of carbon dioxide. x ) a CO reduction reactor; x The reduction reactor 2 Carbon monoxide (CO) and unreacted CO from the reduction reactor 2 and receiving an intermediate product stream comprising unreacted CO 2 to convert at least some of the CO in the cathode gas phase product stream to bicarbonate, transport the bicarbonate to the anode side of the AEM-only MEA, and output a cathode gas phase product stream containing CO; 2 is less than the amount in the intermediate product stream; system.
13. The CO 2 The system of claim 12 , wherein the reduction reactor comprises a bipolar MEA.
14. The CO 2 The system of claim 12 , wherein the reduction reactor has a cation exchange membrane-only MEA.
15. The CO 2 The reduction reactor has a stack of electrochemical cells each containing an MEA, and the CO x 15. The system of claim 12, wherein the reduction reactor comprises a stack of electrochemical cells, each containing an MEA.
16. The CO x 16. The system of claim 12, wherein the reduction reactor is configured to receive a carbon-containing anode-side feed stream.
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