Electrochemically driven carbon dioxide separator
The EDCS addresses inefficiencies in DAC by using anion exchange polymers and nickel hydroxide to efficiently separate CO2 from air, achieving low-energy, high-purity CO2 production for distributed sources.
Patent Information
- Application Number
- JP2022567220
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-05-20
- Filing Date
- 2021-05-20
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2041-05-20
AI Technical Summary
Existing technologies for direct air capture (DAC) of carbon dioxide are inefficient and costly, particularly for distributed sources of emissions, due to high energy consumption and production of unwanted by-products, making them unsuitable for widespread use.
An electrochemically driven carbon dioxide separator (EDCS) using anion exchange polymers and charge storage compounds like nickel hydroxide, which generates hydroxide ions to react with CO2, forming bicarbonate and carbonate ions that are transported and decomposed at the anode to release pure CO2, with electrodes alternating as anodes and cathodes to enhance efficiency.
The EDCS achieves efficient CO2 separation with minimal energy costs and long cycle life, producing high-purity CO2 for utilization or sequestration, suitable for distributed sources and reducing atmospheric CO2 levels.
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Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Provisional Application No. 63 / 027,760, filed May 20, 2020, the entire disclosure of which is incorporated herein by reference.
[0002] STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT This invention was made with government support under grant DE-AR0001034 awarded by the Advanced Research Projects Agency-Energy (ARPA-E), USDopartment of Energy. The government has certain rights in this invention.
[0003] Electrochemical devices, particularly electrochemically driven carbon dioxide separators (EDCS), also known as external current electrochemical pumps (eECPs), are disclosed. The EDCS can be used in methods for separating carbon dioxide from air. [Background technology]
[0004] Carbon dioxide (CO2) emissions from the combustion of fossil fuels and other resources contribute to climate change by causing atmospheric CO2 accumulation, resulting in high costs for all societies. While carbon-neutral replacement is feasible for many uses of fossil fuels, some applications have few economically viable alternatives. For these applications, continued use of carbon-based fuels can be offset by either capturing the CO2 and sequestering it underground or using it in renewable energy sources to create fuels in a carbon-neutral manner. Large-scale point sources of CO2 emissions can be captured from relatively concentrated streams. However, for distributed uses of fossil fuels, such as transportation and space heating, CO2 emissions cannot be captured at the point of use.
[0005] Direct air capture (DAC) of CO2 from the atmosphere can be used to offset distributed sources of CO2 emissions. Furthermore, DAC has the potential to remove historical CO2 emissions from the atmosphere if society exceeds acceptable levels of atmospheric CO2 emissions. Existing technologies for DAC primarily focus on heat- and pressure-based separation using adsorbents or solvents.
[0006] EDCS separates CO2 from a gas mixture using an electrochemically generated flux of hydroxide anions, which react with strong bases such as hydroxide anions to form carbonate and bicarbonate anions. [ka] [ka] In EDCS, hydroxide anions are generated at the cathode and react with CO2 from the mixed gas stream. The resulting carbonate and bicarbonate anions are electrochemically driven to the anode, consuming hydroxide and lowering the pH. The decrease in pH shifts the equilibrium in equations 1 and 2 in favor of gaseous CO2, concentrating CO2 to a much higher partial pressure than in the mixed gas stream from which it was removed.
[0007] In principle, any pair of electrochemical reactions that produce and consume hydroxide anions may be used at the cathode and anode of an EDCS. Previous examples of EDCS are based on the reactions of hydrogen, oxygen, and water, i.e., the oxygen reduction reaction (ORR) or hydrogen evolution reaction (HER) at the cathode and the oxygen evolution reaction (OER) or hydrogen oxidation reaction (HOR) at the anode. Rigdon, WA et al. (2017). Journal of Electrochemical Energy Conversion and Storage, 14(2), p. 020701; Landon, J. & Kitchin, JR. JElectrochem. Soc. 157, B1149 (2010); Pennline, HW et al., Fuel 89, 1307-1314 (2010); Winnick, J. Chem. Eng. Prog. 86, 41-45 (1990); Winnick, J. Electrochem. Sci. Eng. 1, 205-248 (1990); Li, K. & Li, N. Sep. Sci. Technol. 28, 1085-1090 (1993). For DAC applications, the four reactions involving hydrogen, oxygen, and water are less suitable for several reasons. While ORR is a convenient cathodic reaction given the oxygen in air, the kinetic overpotential required to drive ORR significantly increases energy consumption. HER involves the production of hydrogen by-product at the cathode, which is typically lost to the air stream, representing a significant waste of energy. HOR as an anodic reaction requires a supply of hydrogen, which is energy-intensive and expensive to produce compared to the value of the recovered CO2. Finally, OER as an anodic reaction requires a large kinetic overpotential, resulting in CO2 being produced as a mixture with the oxygen by-product, subsequently requiring additional downstream separation.
[0008] Therefore, there is a need for more efficient and cost-effective devices and methods for removing carbon dioxide from the air. Summary of the Invention
[0009] The present disclosure is directed to an electrochemically driven carbon dioxide separator (ECDS) for separating carbon dioxide from a gas containing carbon dioxide. The ECDS includes a cell. The cell includes two electrodes that can operate as anodes or cathodes, the two electrodes including a charge storage compound and an anion exchange polymer, where the charge storage compound can react to form hydroxide when operating as a cathode or to consume hydroxide when operating as an anode; a membrane adjacent to and separating the two electrodes, the membrane including an anion exchange polymer; a channel within the membrane adapted for the inflow of a carbon dioxide-containing gas; a channel adapted for the outflow of carbon dioxide, the channel defining an opening that contacts the anode electrode; and a channel adapted for the outflow of carbon dioxide, the channel defining an opening that contacts the cathode electrode. During operation, the cell is adapted such that hydrogen produced at the cathode electrode is transported to the membrane, carbon dioxide-containing gas contacts the membrane, carbon dioxide reacts with hydroxide ions to form bicarbonate ions, carbonate ions, or bicarbonate and carbonate ions, the bicarbonate ions, carbonate ions, or bicarbonate and carbonate ions are transported through the membrane to the anode electrode, the bicarbonate ions, carbonate ions, or bicarbonate and carbonate ions react at the electrode operating as the anode to form carbon dioxide and water, and the carbon dioxide is released from the EDCS through a channel adapted for carbon dioxide outflow at the anode electrode.
[0010] Another aspect of the present disclosure is directed to an electrochemically driven carbon dioxide separator (EDCS) for separating carbon dioxide from a carbon dioxide-containing gas. The EDCS includes a cell. The cell includes two electrodes capable of operating as anodes or cathodes, the two electrodes optionally comprising nickel hydroxide in a partially oxidized state and an anion exchange polymer, where the nickel hydroxide can react to form hydroxide when operating as a cathode or to consume hydroxide when operating as an anode; a membrane adjacent to and separating the two electrodes, the membrane comprising the anion exchange polymer; a channel adapted for carbon dioxide outflow or carbon dioxide-containing gas inflow, the channel defining an opening in contact with the anode electrode; and a channel adapted for carbon dioxide outflow or carbon dioxide-containing gas inflow, the channel defining an opening in contact with the cathode electrode. The cell is adapted so that, during operation, hydroxide is produced at the cathode electrode, a carbon dioxide-containing gas contacts the cathode electrode, the carbon dioxide reacts with the hydroxide ions to form bicarbonate ions, carbonate ions, or bicarbonate and carbonate ions, the bicarbonate ions, carbonate ions, or bicarbonate and carbonate ions are transported through the membrane to the anode electrode, and the bicarbonate ions, carbonate ions, or bicarbonate and carbonate ions react at the electrode operating as the anode to form carbon dioxide and water.
[0011] The EDCS may further comprise a power supply for supplying current to the electrodes, the power supply adapted to alternately reverse the direction of the current so that each electrode can be operated in turn as an anode and a cathode. Alternatively, the EDCS may further comprise a power supply for supplying current to the electrodes and an electrical switch coupled to the power supply and the electrodes, the electrical switch adapted to alternately reverse the direction of the current so that each electrode can be operated in turn as an anode and a cathode.
[0012] The EDCS may further comprise a current collector adjacent each of the electrodes.
[0013] The charge storage compound can include a metal hydroxide, a metal oxyhydroxide, a metal oxide, or a hydrogen storage alloy. For example, the charge storage compound can include nickel hydroxide, manganese dioxide, partially charged nickel hydroxide, or lanthanum nickel hydride. Preferably, the charge storage compound includes nickel hydroxide or partially charged nickel hydroxide.
[0014] The EDCS may further comprise an ionomer layer between the membrane and each of the two electrodes, extending along the edges of each of the two electrodes to the current collector, the ionomer layer being adapted to seal carbon dioxide released from the anode electrode within the anode electrode and within the channels for carbon dioxide outflow from the anode electrode.
[0015] The ionomer layer may include an anion exchange polymer.
[0016] The anion exchange polymer of the two electrodes, the anion exchange polymer of the membrane, and / or the anion exchange membrane of the ionomer layer can independently comprise a polymer backbone that is free of quaternary ammonium or imidazolium groups and ether groups.
[0017] The anion exchange polymers of the two electrodes, the anion exchange polymer of the membrane, and / or the anion exchange membrane of the ionomer layer may be independently selected from poly(arylpiperidinium), alkylammonium-functionalized poly(arylalkylene), substituted-imidazolium-functionalized poly(arylalkylene), alkylammonium-functionalized poly(styrene), substituted-imidazolium-functionalized poly(styrene), alkylammonium-functionalized poly(styrene-co-divinylbenzene), substituted-imidazolium-functionalized poly(styrene-co-divinylbenzene), alkylammonium-functionalized poly(styrene-block-ethylene-co-butadiene-block-styrene), substituted imidazolium-functionalized poly(styrene-block-ethylene-co-butadiene-block-styrene), alkylammonium-functionalized poly(ethylene), substituted-imidazolium-functionalized poly(ethylene), alkylammonium-functionalized poly(tetrafluoroethylene), substituted-imidazolium-functionalized poly(tetrafluoroethylene), alkylammonium-functionalized poly(ethylene-co-tetrafluoroethylene), substituted-imidazolium-functionalized poly(ethylene-co-tetrafluoroethylene), polyethyleneimine, poly(diallylammonium), polydiallyldimethylammonium, or a combination thereof.
[0018] The anion exchange polymer of the two electrodes, the anion exchange polymer of the membrane, and / or the anion exchange membrane of the ionomer layer can independently comprise a poly(arylpiperidinium).
[0019] The anion exchange polymer of the ionomer layer can include polydiallyldimethylammonium.
[0020] The membrane may include a plurality of channels for the flow of carbon dioxide-containing gas into the membrane.
[0021] The membrane may include a void volume for diffusion of the carbon dioxide-containing gas through the membrane.
[0022] The cell may further include a check valve configured to release carbon dioxide generated in the anodic electrode from the EDCS through a channel for carbon dioxide outflow from the anodic electrode. Two such check valves may be present in the EDCS, since either of the two electrodes may be the anode during cycling of the EDCS.
[0023] The EDCS may further comprise a fan for blowing the carbon dioxide-containing gas through channels for the inflow of the carbon dioxide-containing gas within the membrane.
[0024] The carbon dioxide-containing gas may include air.
[0025] The EDCS may further comprise a stack of one or more additional cells electrically connected in series and a manifold adapted for the outflow of carbon dioxide from each of the anode electrodes.
[0026] An ionomer layer can surround each of the two electrodes and a channel for the outflow of carbon dioxide.
[0027] Instead of two current collector plates, the current collectors may comprise a bipolar plate between each cell and a current collector plate at each end of the stack.
[0028] The bipolar plates may be configured to provide channels for the outflow of carbon dioxide, which may be perpendicular to the bipolar plates and electrodes.
[0029] Another aspect of the present disclosure is directed to a battery system including a metal-air battery and the EDCS described above, wherein the carbon dioxide-containing gas is air, and the air is supplied to the EDCS to reduce the concentration of carbon dioxide, and then the air with the reduced concentration of carbon dioxide is directed to the cathode inlet of the metal-air battery.
[0030] Yet another aspect of the present disclosure is directed to a method for separating carbon dioxide from a carbon dioxide-containing gas, the method comprising supplying the carbon dioxide-containing gas to an EDCS, as described above, and driving an electric current through the EDCS.
[0031] An electric current can be driven through the EDCS in a first stage where one of the two electrodes becomes an anode and the other of the two electrodes becomes a cathode, and in a second stage where an electric current is driven so that one of the two electrodes becomes a cathode and the other of the two electrodes becomes an anode.
[0032] The voltage of the EDCS can be monitored at a constant current so that each of the first and second stages continues long enough to convert most or all of the nickel hydroxide in the anode to nickel oxyhydroxide and most or all of the nickel oxyhydroxide in the cathode to nickel hydroxide, and then reverse the polarity of one or more cells. For example, when the voltage of the EDCS is in the range of about 0.5 to about 1.0 V per cell, the polarity of one or more cells can be reversed.
[0033] The method may further include monitoring the ratio of nickel oxyhydroxide to the sum of nickel hydroxide and nickel oxyhydroxide for the two electrodes combined, which when multiplied by 100 indicates the cell average state of charge (SOC), and triggering an intervention when the ratio reaches a desired threshold set below 0.5 or when the battery average SOC reaches a desired threshold below 50%.
[0034] The method may further include monitoring a total charge passed through each of the first and second stages, and triggering an intervention when the total charge passed through one of the first and second stages is below a predetermined fraction of a nominal electrode capacity.
[0035] Intervention can include extending the phase of operation until a higher voltage threshold is reached, for example, the higher voltage threshold can be in the range of about 1.0 to about 2.0 V per cell.
[0036] Intervention can include extending the operation phase until a predetermined amount of charge has passed, for example, the predetermined amount of charge can be in the range of about 80% to about 120% of the nominal electrode capacity.
[0037] Intervention can include supplying oxygen or air to the cathode to promote the oxygen reduction reaction.
[0038] The intervention can include applying an electrical current to the EDCS to promote the hydrogen evolution reaction.
[0039] Other objects and features will be in part apparent and in part pointed out hereinafter. [Brief explanation of the drawings]
[0040] [Figure 1] FIG. 1 is a schematic diagram of an EDCS at one stage of operation, including chemical reactions and the major species involved. [Figure 2] FIG. 4 is a front cross-sectional view of the EDCS cell taken along the line shown in FIG. 3. [Figure 3] FIG. 3 is a top cross-sectional view of the EDCS cell taken along the line shown in FIG. 2. [Figure 4] FIG. 1 is a top cross-sectional view of an EDCS cell including an ionomer layer between each of the electrodes and a membrane extending to a current collector along the edge of each of the two electrodes. [Figure 5] FIG. 7 is a top cross-sectional view of an EDCS repeat unit taken along the line shown in FIG. 6. [Figure 6] FIG. 6 is a front cross-sectional view of an EDCS repeat unit taken along the line shown in FIG. 5. [Figure 7] FIG. 1 is a front cross-sectional view of an EDCS stack. [Figure 8] FIG. 1 is a top cross-sectional view of an EDCS stack. [Figure 9]1 is a plot of the calculated rate of electrons passed per CO molecule transported, the calculated flow rate of CO transport, the cell current, the cell voltage, the anode outlet CO concentration, and the cathode outlet CO concentration as a function of time, as reported in Example 1. [Figure 10] 1 is a bar graph showing the average CO2 flux calculated from the experiments of Example 1 and averaged over each cell voltage hold step. [Figure 11] 1 shows the average energy consumption of the electrochemical cell, ignoring ancillary equipment, over each cell voltage step for the experiment of Example 1. [Figure 12] 1 shows a schematic diagram of an EDCS with carbon dioxide-containing gas directed to the cathode during both stages of operation.
[0041] Corresponding reference characters indicate corresponding parts throughout the drawings. DETAILED DESCRIPTION OF THE INVENTION
[0042] The present disclosure is directed to electrochemically powered carbon dioxide separators (EDCS) and their use to separate carbon dioxide from carbon dioxide-containing gases, such as air, for utilization or sequestration. EDCS are carbon-negative technologies because they can remove CO from the atmosphere.
[0043] For example, the present disclosure is directed to an electrochemically powered CO separator comprising a cell or EDCS stack, which comprises one or more cells electrically connected in series.
[0044] Each cell comprises a first electrode, a membrane, and a second electrode. The first and second electrodes comprise nickel hydroxide, an anion exchange polymer, and optionally a nickel foam gas diffusion layer. The first and second electrodes are capable of anodic and cathodic reactions, respectively, and depending on the direction of current flow, one electrode is the anode of the cell and the other electrode is the cathode of the cell.
[0045] At the anode, nickel hydroxide (Ni(OH)2) is oxidized to nickel oxyhydroxide (NiO(OH)2), and in the process hydroxide anions (OH - ) is consumed. Ni(OH)2+OH - →NiO(OH)+H2O+e - [3] The cathodic reaction is the reverse of equation 3. NiO(OH)+H2O+e - →Ni(OH)2+OH - [4]
[0046] Hydroxide anions produced at the cathode are transported into the membrane by an ionomer layer containing an anion exchange polymer. The membrane contains an anion exchange polymer and integral carbon dioxide-containing gas flow channels. Within the membrane, carbon dioxide from the air reacts with the hydroxide anions to produce bicarbonate and carbonate anions according to Equations 1 and 2.
[0047] Bicarbonate, carbonate, and any remaining hydroxide anions are transported through the membrane to the anode, where hydroxide is consumed and the pH decreases, causing the bicarbonate and carbonate to decompose, releasing carbon dioxide and hydroxide anions, according to the reverse of equations 1 and 2. Pure carbon dioxide is collected from the anode.
[0048] The cell further comprises a first carbon dioxide flow channel in fluid communication with the first electrode and a second carbon dioxide flow channel in fluid communication with the second electrode, wherein, depending on the direction of current flow, the first carbon dioxide flow channel collects carbon dioxide when the first electrode is the anode, and the second carbon dioxide flow channel collects carbon dioxide when the second electrode is the anode.
[0049] The stack further comprises a first manifold in fluid communication with the first carbon dioxide flow channel of each cell, and a second manifold in fluid communication with the second carbon dioxide flow channel of each cell.
[0050] The EDCS further includes a check valve connected to the first manifold and a check valve connected to the second manifold. Product carbon dioxide is collected from the EDCS through the check valve, which is oriented to prevent backflow of carbon dioxide into the manifold, the flow channel, and the electrode when that electrode is the cathode.
[0051] The present disclosure is further directed to a method for separating carbon dioxide from a carbon dioxide-containing gas, the method comprising: supplying a carbon dioxide-containing gas to a carbon dioxide-containing gas flow channel of a membrane of an EDCS described herein; and cyclically driving an electric current through the EDCS. The cyclical supply of electric current includes a first phase in which the current is driven such that the first electrode is the anode and the second electrode is the cathode, and a second phase in which the current is driven such that the first electrode is the cathode and the second electrode is the anode. Each phase continues for a sufficient time to convert most or all of the nickel hydroxide in the anode to nickel oxyhydroxide and most or all of the nickel oxyhydroxide in the cathode to nickel hydroxide.
[0052] The EDCS voltage is monitored to determine when nearly complete conversion of the electrodes has occurred. When the voltage exceeds a predetermined threshold at constant current, the polarity of the cell is reversed. The voltage threshold may be in the range of 0.5 to 1.0 V per cell.
[0053] The average state of charge (SOC) of the electrode cell is defined as the ratio of nickel oxyhydroxide to the sum of nickel hydroxide and nickel oxyhydroxide in the combined electrodes, with complete conversion to nickel oxyhydroxide representing 100% SOC and complete conversion to nickel hydroxide representing 0% SOC. During normal operation, the average SOC of the first and second electrodes combined should be approximately 50%. If the average SOC deviates significantly from 50%, the extent of cycling of the electrodes will be limited. For example, if the average SOC is 30%, each electrode can only be cycled from 0 to 60% SOC. Over time, side reactions such as the oxygen evolution reaction (OER) can gradually decrease the average SOC of the cell.
[0054] If the cell average SOC falls significantly below 50%, additional interventions can be applied to raise the cell's average SOC to extend the device's lifetime. One intervention is to continue driving current through the cell even after the cathode reaches near 0% SOC and the cathode potential falls below the normal range. At a sufficiently low cathode potential, one of two cathode side reactions can occur to keep the current flowing: the oxygen reduction reaction or the hydrogen evolution reaction.
[0055] The present disclosure is further directed to a method for separating carbon dioxide from a carbon dioxide-containing gas, wherein the average SOC of a cell is monitored by tracking the total charge passed through each stage, and intervention is triggered if the passed charge falls below a predetermined fraction of the nominal electrode capacity. Intervention may include extending the current stage of operation until a higher voltage threshold is reached. The higher voltage threshold may be in the range of 1.0 to 2.0 V per cell. Alternatively, intervention may include extending the current stage of operation until a predetermined amount of charge has passed. The predetermined charge may be in the range of 80% to 120% of the nominal electrode capacity. Intervention may further include supplying oxygen or air to the cathode of the EDCS to promote the oxygen reduction reaction. However, supplying oxygen is not required, as the hydrogen evolution reaction may also generate current.
[0056] A schematic diagram of an EDCS is shown in Figure 1, where one electrode is labeled as the cathode and the other as the anode. Electrical current is supplied to the cell from a power source. Hydroxide anions are electrochemically generated at the cathode by the reduction of a charge storage compound, such as nickel oxyhydroxide, and transported to the membrane. Within the membrane, the hydroxide reacts with carbon dioxide from a carbon dioxide-containing gas (preferably air) supplied to the membrane flow channels. The resulting carbonate and bicarbonate salts are transported to the anode. At the anode, the hydroxide is consumed by oxidation of the nickel hydroxide, the pH decreases, and the carbonate and bicarbonate decompose to release carbon dioxide. The carbon dioxide product gas flows out the anode. During the first and second stages of the cycle, the electrodes that serve as the anode and cathode alternate. However, the cell configuration shown in Figure 1 applies to both stages, using the labeled anode and cathode.
[0057] A front cross-sectional view of an EDCS cell is shown in Figure 2. The cell comprises a first electrode 20, a membrane 3, and a second electrode 30. The cell may further comprise a current collector plate 10 adjacent each electrode. The membrane comprises an anion exchange polymer and carbon dioxide-containing gas flow channels 4 that allow carbon dioxide-containing gas to pass through the membrane. Optionally, the membrane may be porous, comprising pore volume in addition to the carbon dioxide-containing gas flow channels 4 to allow carbon dioxide to diffuse more rapidly through the bulk of the membrane. A power source 51 provides electrical current to the current collector plates.
[0058] A schematic top cross-sectional view of an EDCS cell is shown in Figure 3. The cell includes a first carbon dioxide collection channel 21 in fluid communication with a first electrode 20 and a second carbon dioxide collection channel 31 in fluid communication with a second electrode 30. These collection channels 21, 31 are for the outflow of carbon dioxide from the anode electrode.
[0059] A top cross-sectional schematic diagram of a preferred embodiment of an EDCS cell is shown in Figure 4. The cell optionally comprises an ionomer layer 11 interposed between the electrodes and the membrane. The ionomer layer can optionally surround the electrodes, carbon dioxide collection channels, and current collector plates to provide an airtight seal around the electrodes. The ionomer layer comprises an anion exchange polymer.
[0060] If the membrane is porous, the ionomer layer can be replaced by a dense anion exchange polymer layer that can prevent leakage of carbon dioxide from the anode.
[0061] A top cross-sectional schematic view of a repeat unit is shown in Figure 5, in which the EDCS comprises a stack of one or more repeat units 1. Each unit 1 comprises a bipolar electrode assembly 2 and a membrane 3. Although the EDCS comprises one or more cells as described above, it may be more convenient to fabricate the stack from repeat units 1 rather than from individual cells.
[0062] The bipolar electrode assembly 2 comprises a second electrode 20 and a second carbon dioxide collection channel 21 in one cell, and a first electrode 30 and a first carbon dioxide collection channel 31 in an adjacent cell. Two adjacent current collectors are replaced by a single bipolar plate 10. Optionally, the bipolar electrode assembly may further comprise an ionomer layer 11 surrounding the outside of the electrodes, bipolar plate, and carbon dioxide flow channels.
[0063] The first and second electrodes 20 and 30 may include a nickel hydroxide electrocatalyst and an anion exchange polymer having sufficient porosity to allow gas transport.
[0064] The first and second electrodes 20 and 30 may further include a conductive additive such as graphite, carbon black, or metallic nickel.
[0065] The first and second carbon dioxide flow channels 21, 31 may be formed from the bipolar plate 10 by rolling the plate to create channels with gaps 22, 32, respectively, allowing fluid communication with the first and second electrodes 20 and 30.
[0066] Optionally, the bipolar electrode 2 further comprises an ionomer envelope 11 in contact with the first electrode 20, the first carbon dioxide collection channel 21, the second electrode 30, and the second carbon dioxide collection channel 31. The ionomer envelope 11 provides an airtight seal to isolate the first electrode 20 and the second electrode 30 from the ambient environment.
[0067] A front cross-sectional view of the bipolar electrode 2 is shown in Figure 6. The bipolar electrode 2 includes a gasket 33 for sealing the end of the second electrode 30 and a gasket 23 for sealing the end of the first electrode 20. Optionally, the ionomer envelope 11 may be in contact with the bipolar plate 10. The unsealed ends 26, 36 of the first and second electrodes 20, 30 are in fluid communication with the first and second carbon dioxide flow channels 21, 31, respectively (Figure 5).
[0068] Planar modules comprise a stack of planar cells, with manifolds incorporated into the boundary region outside the active area to distribute gas to each cell. The cells can be separated by bipolar plates incorporating flow channels, or the cells can be separated by planar bipolar plates with conductive mesh feed spacers used to provide the flow channels. The former is shown in Figure 7. The cells are electrically connected in series by the conductive bipolar plates. While a planar configuration is shown, EDCSs can be fabricated in other configurations, such as spiral stacks, as is known in the art.
[0069] A cross-sectional front view of a stack 40 comprising multiple repeating units 1 electrically connected in series is shown in FIG. 7. The stack 40 comprises a first manifold 24 and a second manifold 34 for providing fluid communication within the stack 40. Alternatively, both the first and second manifolds 24, 34 can be located on the top or bottom of the bipolar electrode 2. Optionally, additional manifolds can be added to create both an inlet manifold and an outlet manifold for each carbon dioxide flow channel. The first carbon dioxide flow channel 21 of each unit 1 is in fluid communication with the first manifold 24. The second carbon dioxide flow channel 31 of each unit 1 is in fluid communication with the second manifold 34.
[0070] 8, a top cross-sectional view of stack 40 is shown, with first and second carbon dioxide flow channels 21, 31 oriented vertically (perpendicular to the plane of the paper) and carbon dioxide-containing gas flow channel 4 (not shown) oriented horizontally (parallel to the plane of the paper). Although this orientation is depicted, the device can be constructed or used in any orientation.
[0071] Each bipolar electrode 2 of the stack 40 includes a gasket 33 for sealing the ends of the second electrode 30 and the second carbon dioxide flow channel 31 (not shown) to prevent fluid communication with the first manifold 24, and a gasket 23 for sealing the ends of the first electrode 20 and the first carbon dioxide flow channel 21 (not shown) to prevent fluid communication with the second manifold 34.
[0072] In the stack 40, a repeat unit 1 comprises one bipolar electrode 2 and one membrane 3. However, the boundaries of the repeat units do not coincide with the boundaries of the single cells. A single cell comprises the second electrode 30 and membrane 3 of one repeat unit 1 and the first electrode 20 of the next adjacent repeat unit 1.
[0073] At the right end of the stack shown in Figure 7, an end electrode 43 is provided adjacent to current collector 46 to complete the final cell. The bipolar electrode 2 of the first repeat unit 1 at the left end of the stack 40 can also be considered an end electrode 41. The end electrodes 41, 43 may be of the same or similar structure as the bipolar electrode 2, in which case there is an extra electrode and an extra carbon dioxide flow channel, but which is not used in the operation of the stack 40.
[0074] Alternatively, the end electrodes 41, 43 may consist of only a single electrode, bipolar plate, and single carbon dioxide flow channel, with metal spacers 42, 44 between the bipolar plate 10 and the current collectors 45, 46 of the end electrodes 41, 43.
[0075] The end electrodes 41, 43 are electrically connected to current collectors 45, 46 to which external electrical connections are made to the stack.
[0076] The first and second manifolds 24, 34 have outlets with check valves 25, 35 to prevent the backflow of carbon dioxide into the stack 40. During operation, the cathode electrode will consume any available carbon dioxide within the pore volume of the electrode, carbon dioxide flow channels, and manifolds, but the amount of carbon dioxide is limited. The check valves prevent the inflow of additional carbon dioxide, ensuring that the carbon dioxide is consumed quickly. The check valves also control the inflow of air into the cathode side of the cell or stack, the outflow of air (with CO2 removed) from the cathode side of the cell or stack, and the outflow of carbon dioxide from the anode side of the cell or stack.
[0077] The EDCS may further comprise a fan 50, if present, to improve circulation of the carbon dioxide-containing gas through the channels 4 and through the cathode void volume.
[0078] Alternatively, the membrane does not have flow channels, and the electrode flow channels are adapted for the flow of both the carbon dioxide-containing gas and the carbon dioxide product gas. The carbon dioxide-containing gas is directed to the cathode electrode, as shown in Figure 12. The carbon dioxide product gas is collected from the anode electrode. The reaction of hydroxide with carbon dioxide occurs in the cathode, not in the membrane.
[0079] The EDCS can include a gas diffusion layer on the outside of the electrode. The gas diffusion layer can include any suitable material known in the art, such as carbon paper. For example, the gas diffusion layer can include Toray Paper 060, which has a waterproofing of 5% and 10%, and / or Sigracet 29BC.
[0080] The anion exchange polymers used in the two electrodes, membranes or ionomer layers are poly(arylpiperidinium), alkylammonium-functionalized poly(arylalkylene), substituted-imidazolium-functionalized poly(arylalkylene), alkylammonium-functionalized poly(styrene), substituted-imidazolium-functionalized poly(styrene), alkylammonium-functionalized poly(styrene-co-divinylbenzene), substituted-imidazolium-functionalized poly(styrene-co-divinylbenzene), alkylammonium-functionalized poly(styrene-block-ethylene-co-butadiene-block-styrene), substituted-imidazolium-functionalized poly(styrene-block-ethylene-co-butadiene-block-styrene), and alkylammonium-functionalized poly(arylpiperidinium). The polymerizable polymers may include alkylammonium-functionalized poly(styrene-block-ethylene-co-butadiene-block-styrene), alkylammonium-functionalized poly(ethylene), substituted imidazolium-functionalized poly(ethylene), alkylammonium-functionalized poly(tetrafluoroethylene), substituted imidazolium-functionalized poly(tetrafluoroethylene), alkylammonium-functionalized poly(ethylene-co-tetrafluoroethylene), substituted imidazolium-functionalized poly(ethylene-co-tetrafluoroethylene), polyethyleneimine, poly(diallylammonium), polydiallyldimethylammonium, or combinations thereof. Poly(arylpiperidinium) or polydiallyldimethylammonium is preferred.
[0081] The anion exchange polymer in the two electrodes is preferably the same.
[0082] The ionomer provides a hydroxide conducting network. All experiments used PAP membranes and ionomers. PAP membranes and ionomers are described in U.S. Patent No. 10,290,890, U.S. Application No. 16 / 651,622, and PCT Publication No. WO2019 / 068051, which are incorporated by reference in their entireties. A preferred ionomer is PAP-TP-85.
[0083] The anion exchange polymer in the membrane may be different from the anion exchange polymer in the electrodes or the anion exchange polymer in the ionomer layer. The anion exchange polymers in these components may be the same, some may be the same, or all may be different.
[0084] The cell electrode reactions in EDCS require cycling, with the current periodically reversed to alternate which electrode is the cathode, producing hydroxide, and which electrode is the anode, concentrating carbon dioxide.
[0085] Current is supplied to the EDCS by a power supply, which can reverse its output current directly or use a dual-pole, dual-throw switch / relay to reverse the connections between the terminals of the EDCS and the terminals of the power supply.
[0086] A typical bipolar plate is a thin sheet of stainless steel, electrically connected on one side to the anode and on the other side to the cathode of the adjacent cell.
[0087] Electrodes can be prepared by methods known in the art. Electrodes can be prepared from an ink containing the charge storage compound and anion exchange polymer described herein, which is then sprayed or cast onto adjacent components of the cell. Alternatively, the charge storage compound can be electrodeposited onto a substrate and then coated with an anion exchange polymer. For example, a Ni(OH)2 electrode can be prepared by electrodepositing it onto a substrate using a three-electrode cell from nickel chloride (NiCl2) solution, followed by precycling in a potassium hydroxide solution to produce NiO(OH). The NiO(OH)2 / Ni(OH)2 electrode is then dip-coated with the anion exchange polymer from the solution.
[0088] An EDCS cell or EDCS stack can be constructed using standard methodologies well known in the art.
[0089] The EDCS described herein provides a low-cost electrochemical cell that efficiently removes CO2 with minimal energy costs compared to traditional energy sources and long cycle life. The resulting CO2 can be used in chemical synthesis. The air from which carbon dioxide gas has been removed can be supplied to a metal-air battery or other device or process using an air intake.
[0090] The EDCS described herein can allow the carbon dioxide-containing gas supplied to a metal-air battery to contain less than about 20 ppm, 18 ppm, 16 ppm, 15 ppm, 12 ppm, 10 ppm, 8 ppm, 6 ppm, 5 ppm, 4 ppm, 3 ppm, or 2 ppm, these reduced levels being achieved by the reaction of CO with hydroxide ions at the cathode of the EDCS.
[0091] If the flue gas, such as that produced in a power plant, is a carbon dioxide-containing gas, the flue gas may be released into the atmosphere after removal of the CO2, or may be further treated to remove other pollutants before being released.
[0092] EDCS is a carbon-negative, direct air capture technology that can be used to offset the effects of carbon-emitting technologies such as fossil fuels, industrial processes and land use, with the goal of achieving net-zero CO2 emissions to minimize climate change.
[0093] EDCS does not involve the handling of liquids or solids or require high temperature calcination, as is required by some carbon negative technologies.
[0094] Although the invention disclosed herein is illustrated by its application in DACs, other applications are possible, including, for example, CO removal from air in or entering buildings, saving HVAC energy consumption by allowing higher recirculation rates, CO removal from manned spacecraft, and pumping CO from ambient air into greenhouses or other structures to aid plant growth.
[0095] definition A "bipolar plate" provides an electrical connection between the cathode of one cell and the anode of an adjacent cell.
[0096] "slpm" is a unit of gas flow rate equivalent to 1 liter per minute under standard conditions of 0°C and 1 atmosphere.
[0097] Having described the invention in detail, it will be apparent that modifications and variations are possible without departing from the scope of the invention as defined in the appended claims. [Example]
[0098] The following non-limiting examples are provided to further illustrate the present invention.
[0099] Example 1 Preparation of Electrodes Ni(OH)2 electrodes were fabricated by electrodeposition onto nickel foam substrates using a three-electrode cell from nickel chloride (NiCl2) solution. More specifically, the electrodes were deposited onto nickel foam measuring approximately 5 cm x 5 cm at 10 mA / cm2 in 0.1 M NiCl2 solution. 2 NiO(OH) was produced by electrodeposition at a current density of 1000 kJ / cm2 for 30 min, followed by precycling in a 0.1 M KOH solution. The NiO(OH) / Ni(OH)2 electrode was dip-coated with poly(arylpiperidinium) ionomer from a 5 wt % solution in ethanol solvent.
[0100] Example 2 Preparation of EDCS A complete EDCS cell was constructed using a poly(arylpiperidinium) film and two NiO(OH) / Ni(OH) electrodes. The cell was housed in a 25 cm2 chamber with a triple serpentine flow field. 2 A single-cell fuel cell fixture was assembled. A gasket with a 5 cm x 5 cm opening was placed on the anode flow field. Next, a 5 cm x 5 cm carbon paper gas diffusion layer was placed in the anode flow field opening. A first NiO(OH) / Ni(OH)2 electrode was placed on the gas diffusion layer. A 7.5 cm x 7.5 cm membrane was placed on top of the electrode and gasket. A second gasket with a 5 cm x 5 cm opening was placed on the membrane, and a second electrode was placed inside the opening, in contact with the membrane. A second 5 cm x 5 cm carbon paper gas diffusion layer was placed on the second electrode. Finally, the cathode flow field was placed, and the cell was closed.
[0101] Example 3: Operation and performance of EDCS The cell was operated at 60°C with both the anode and cathode supplied with 0.5 slpm of air containing 440 ppm CO2 and humidified to a dew point of 57.7°C. Both the anode and cathode outlets were passed through concentrators to remove water and sent to a CO2 analyzer to measure CO2 content. The cell was connected to a potentiostat to control the cell voltage and measure the current. The cell was run through the following series of voltage hold steps: -0.8 V for 1200 seconds, -0.3 V for 600 seconds, 0.3 V for 970 seconds, -0.3 V for 1800 seconds, and 0.3 V for 1350 seconds.
[0102] The results, including current, voltage, CO2 concentrations in the anode and cathode outlet streams, the calculated CO2 transport rate through the cell, and the calculated ratio of electrons passed per CO2 molecule transported, are shown in Figure 9. CO2 was shown to be transported in both directions, depending on the polarity of the applied voltage. The ratio of electrons passed per transported CO2 molecule was typically in the range of 1-2, indicating near-complete conversion of hydroxide to carbon and bicarbonate within the EDCS cathode.
[0103] In Figure 10, the CO2 flux is shown, averaged over each voltage hold step, normalized by cell area, and converted to an annual basis. Holds at -0.8V performed significantly less well than holds at + / -0.3V, despite higher energy consumption. For the average + / -0.3V hold, the CO2 flux was 19 kg / m 2 It was the year.
[0104] The energy consumption of a single cell was calculated per tonne of CO2 transported in Figure 11. Averaging with a + / - 0.3V hold, the energy consumption of the electrochemical cell alone (excluding ancillary equipment) was 0.6 MWh / tonne.
[0105] When introducing elements of the invention or preferred embodiments thereof, the articles "a," "an," "the," and "said" are intended to mean that there are one or more elements. The terms "comprising," "including," and "having" are intended to be inclusive and mean that there may be additional elements other than the listed elements.
[0106] In view of the above, it will be seen that the several objects of the invention are achieved and other advantageous results attained.
[0107] Because various changes may be made in the above devices and methods without departing from the scope of the invention, all subject matter contained in the above description and shown in the accompanying drawings is intended to be illustrative and not in a limiting sense.
Claims
1. 1. An electrochemically driven carbon dioxide separator (EDCS) for separating carbon dioxide from a carbon dioxide-containing gas, said EDCS comprising: a cell, the cell comprising: two electrodes capable of operating as anodes or cathodes, the two electrodes comprising a charge storage compound and an anion exchange polymer, the charge storage compound being capable of reacting to form hydroxide ions when operating as the cathode and reacting to consume hydroxide ions when operating as the anode; a membrane adjacent to and separating the two electrodes, the membrane comprising an anion exchange polymer; a channel within said membrane adapted for the inflow of a carbon dioxide-containing gas; a channel adapted for the outflow of carbon dioxide and defining an opening in contact with said electrode, which will be said anode; a channel adapted for the outflow of carbon dioxide and defining an opening in contact with the electrode, which is the cathode; The cell, during operation, Hydroxide ions produced at the cathode electrode are transported to the membrane; the carbon dioxide-containing gas contacts the membrane, and the carbon dioxide reacts with hydroxide ions to form bicarbonate ions, carbonate ions, or bicarbonate and carbonate ions; the bicarbonate ions, carbonate ions, or bicarbonate and carbonate ions are transported through the membrane to the anode electrode; the bicarbonate ions, carbonate ions, or bicarbonate and carbonate ions react at the anode electrode to form carbon dioxide and water; The EDCS is adapted to release the carbon dioxide from the EDCS through the channel adapted for carbon dioxide outflow from the electrode serving as the anode.
2. 1. An electrochemically driven carbon dioxide separator (EDCS) for separating carbon dioxide from a carbon dioxide-containing gas, said EDCS comprising: a cell, the cell comprising: two electrodes capable of operating as anodes or cathodes, said two electrodes comprising nickel hydroxide and an anion exchange polymer; two electrodes, the nickel hydroxide being capable of reacting to form hydroxide ions when operating as the cathode and reacting to consume hydroxide ions when operating as the anode; a membrane adjacent to and separating the two electrodes, the membrane comprising an anion exchange polymer; a channel adapted for the outflow of carbon dioxide or the inflow of a carbon dioxide-containing gas, the channel defining an opening in contact with the electrode, which will be the anode; a channel adapted for the outflow of carbon dioxide or the inflow of a carbon dioxide-containing gas, the channel defining an opening in contact with the cathode electrode; The cell, during operation, hydroxide ions are generated at the cathode electrode; the carbon dioxide-containing gas contacts the cathode electrode, and the carbon dioxide reacts with hydroxide ions to form bicarbonate ions, carbonate ions, or bicarbonate and carbonate ions; the bicarbonate ions, carbonate ions, or bicarbonate and carbonate ions are transported through the membrane to the anode electrode; The EDCS, wherein the bicarbonate ions, carbonate ions, or bicarbonate and carbonate ions are adapted to react at the anode electrode to form carbon dioxide and water.
3. The EDCS described in claim 2, wherein the nickel hydroxide is in a partially oxidized state.
4. The EDCS further comprises a power supply for supplying current to the electrodes, the power supply adapted to alternately reverse the direction of current so that each electrode can be operated in turn as the anode and as the cathode; or 4. The EDCS of claim 1, further comprising: a power source for supplying current to the electrodes; and an electrical switch coupled to the power source and the electrodes, the electrical switch adapted to alternately reverse the direction of current to enable each electrode to operate in turn as the anode and as the cathode.
5. The EDCS of any one of claims 1 to 4, further comprising a current collector adjacent each of the electrodes.
6. the charge storage compound comprises a metal hydroxide, a metal oxyhydroxide, a metal oxide, or a hydrogen storage alloy; or 6. The EDCS of any one of claims 1 and 3-5, wherein the charge storage compound comprises nickel hydroxide, manganese dioxide, partially charged nickel hydroxide, or lanthanum nickel hydride.
7. 7. The EDCS of claim 1, further comprising an ionomer layer between the membrane and each of the two electrodes, the ionomer layer extending along an edge of each of the two electrodes to a current collector, the ionomer layer being adapted to seal carbon dioxide released from the electrode serving as the anode within the electrode serving as the anode and the channel for carbon dioxide outflow from the electrode serving as the anode.
8. The EDCS of claim 7 , wherein the ionomer layer comprises an anion exchange polymer.
9. 9. The EDCS of any one of claims 1 to 8, wherein the anion exchange polymer of the two electrodes, the anion exchange polymer of the membrane, and / or the anion exchange polymer of the ionomer layer independently comprise a polymer backbone that is free of quaternary ammonium or imidazolium groups and ether groups.
10. The anion exchange polymers of the two electrodes, the anion exchange polymer of the membrane, and / or the anion exchange polymer of the ionomer layer may independently be poly(arylpiperidinium), alkylammonium-functionalized poly(arylalkylene), substituted-imidazolium-functionalized poly(arylalkylene), alkylammonium-functionalized poly(styrene), substituted-imidazolium-functionalized poly(styrene), alkylammonium-functionalized poly(styrene-co-divinylbenzene), substituted-imidazolium-functionalized poly(styrene-co-divinylbenzene), alkylammonium-functionalized poly(styrene-block-ethylene-co-butadiene-block -styrene), substituted imidazolium-functionalized poly(styrene-block-ethylene-co-butadiene-block-styrene), alkylammonium-functionalized poly(ethylene), substituted imidazolium-functionalized poly(ethylene), alkylammonium-functionalized poly(tetrafluoroethylene), substituted imidazolium-functionalized poly(tetrafluoroethylene), alkylammonium-functionalized poly(ethylene-co-tetrafluoroethylene), substituted imidazolium-functionalized poly(ethylene-co-tetrafluoroethylene), polyethyleneimine, poly(diallylammonium), polydiallyldimethylammonium, or combinations thereof; 10. The EDCS of any one of claims 1 to 9, wherein the anion exchange polymer of the two electrodes, the anion exchange polymer of the membrane, and / or the anion exchange polymer of the ionomer layer independently comprise poly(arylpiperidinium) or polydiallyldimethylammonium.
11. the membrane comprises a plurality of said channels for the carbon dioxide-containing gas to enter the membrane; or 11. The EDCS of any one of claims 1 to 10, wherein the membrane comprises a void volume for the carbon dioxide-containing gas to diffuse through the membrane.
12. An EDCS described in any one of claims 1 to 10, wherein the cell further comprises a check valve configured to release carbon dioxide generated in the electrode that serves as the anode from the EDCS through the channel for the outflow of carbon dioxide from the electrode that serves as the anode.
13. 13. The EDCS of claim 11 or 12, further comprising a fan for blowing the carbon dioxide-containing gas through the channel for entry of the carbon dioxide-containing gas within the membrane.
14. The EDCS according to any one of claims 1 to 13, wherein the carbon dioxide-containing gas is air.
15. 15. The EDCS of any one of claims 1 to 14, further comprising a stack of one or more additional cells electrically connected in series and a manifold adapted for the outflow of carbon dioxide from each of the electrodes that become the anodes.
16. 16. The EDCS of any one of claims 7 to 15, wherein the ionomer layer surrounds each of the two electrodes and the channel for carbon dioxide outflow.
17. The current collector has a bipolar plate between each cell instead of two current collector plates; a current collector plate at each end of the stack.
18. 20. The EDCS of claim 17, wherein the bipolar plate is configured to provide the channel for the outflow of carbon dioxide.
19. 20. The EDCS of claim 18, wherein the channels for carbon dioxide outflow are perpendicular to the channels in the membrane for the carbon dioxide-containing gas.
20. 20. A battery system comprising a metal-air battery and the EDCS according to any one of claims 1 to 19, wherein the carbon dioxide-containing gas is air, and the air is supplied to the EDCS to reduce the concentration of the carbon dioxide, and then the air with the reduced concentration of carbon dioxide is directed to a cathode inlet of the metal-air battery.
21. 21. A method for separating carbon dioxide from a carbon dioxide-containing gas, comprising: supplying the carbon dioxide-containing gas to an EDCS according to any one of claims 1 to 20; and driving an electric current through the EDCS.
22. 22. The method of claim 21 , wherein the current is driven through the EDCS in a first stage where one of the two electrodes becomes the anode and the other of the two electrodes becomes the cathode, and in a second stage where current is driven where one of the two electrodes becomes the cathode and the other of the two electrodes becomes the anode.
23. 23. The method of claim 22, wherein the voltage of the EDCS is monitored at a constant current such that each of the first and second stages continues for a time sufficient to convert most or all of the nickel hydroxide in the anode to nickel oxyhydroxide and most or all of the nickel oxyhydroxide in the cathode to nickel hydroxide before reversing the polarity of the cell.
24. 24. The method of claim 23, wherein the polarity of the one or more cells is reversed when the voltage of the EDCS is within a range of 0.5 to 1.0 V per cell.
25. monitoring the ratio of nickel oxyhydroxide to the sum of nickel hydroxide and nickel oxyhydroxide for the two electrodes combined, which when multiplied by 100 indicates the cell average state of charge (SOC), and triggering an intervention when the ratio reaches a desired threshold set below 0.5 or when the cell average SOC reaches a desired threshold below 50%; The intervention includes extending the stage of operation until a higher voltage threshold is reached, or The intervention comprises extending the stage of operation until a predetermined amount of charge has passed, or The intervention includes supplying oxygen or air to the cathode to promote an oxygen reduction reaction; or 25. The method of any one of claims 21 to 24, wherein the intervention comprises applying an electric current to the EDCS to promote a hydrogen evolution reaction.
26. monitoring a total charge passed through each of the first and second stages; and triggering an intervention when the total charge passed through one of the first and second stages is below a predetermined fraction of a nominal electrode capacity; The intervention includes extending the stage of operation until a higher voltage threshold is reached, or The intervention comprises extending the stage of operation until a predetermined amount of charge has passed, or The intervention includes supplying oxygen or air to the cathode to promote an oxygen reduction reaction; or 25. The method of claim 23 or 24, wherein the intervention comprises applying an electric current to the EDCS to promote a hydrogen evolution reaction.
27. the intervention comprises extending the stage of operation until a higher voltage threshold is reached, the higher voltage threshold being in the range of 1.0 to 2.0 V per cell; or 27. The method of claim 25 or 26, wherein the intervention comprises extending the stage of operation until a predetermined amount of charge has passed, the predetermined amount of charge being in the range of 80% to 120% of the nominal electrode capacity.
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