EP4405519A1 - Electrochemical carbon dioxide reduction catalyst for formate production - Google Patents
Electrochemical carbon dioxide reduction catalyst for formate productionInfo
- Publication number
- EP4405519A1 EP4405519A1 EP22793137.5A EP22793137A EP4405519A1 EP 4405519 A1 EP4405519 A1 EP 4405519A1 EP 22793137 A EP22793137 A EP 22793137A EP 4405519 A1 EP4405519 A1 EP 4405519A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- gas
- pyridine
- copper nanoparticles
- gas diffusion
- containing ligands
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B11/00—Electrodes; Manufacture thereof not otherwise provided for
- C25B11/02—Electrodes; Manufacture thereof not otherwise provided for characterised by shape or form
- C25B11/03—Electrodes; Manufacture thereof not otherwise provided for characterised by shape or form perforated or foraminous
- C25B11/031—Porous electrodes
- C25B11/032—Gas diffusion electrodes
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- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B11/00—Electrodes; Manufacture thereof not otherwise provided for
- C25B11/04—Electrodes; Manufacture thereof not otherwise provided for characterised by the material
- C25B11/051—Electrodes formed of electrocatalysts on a substrate or carrier
- C25B11/073—Electrodes formed of electrocatalysts on a substrate or carrier characterised by the electrocatalyst material
- C25B11/075—Electrodes formed of electrocatalysts on a substrate or carrier characterised by the electrocatalyst material consisting of a single catalytic element or catalytic compound
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- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B11/00—Electrodes; Manufacture thereof not otherwise provided for
- C25B11/04—Electrodes; Manufacture thereof not otherwise provided for characterised by the material
- C25B11/051—Electrodes formed of electrocatalysts on a substrate or carrier
- C25B11/073—Electrodes formed of electrocatalysts on a substrate or carrier characterised by the electrocatalyst material
- C25B11/091—Electrodes formed of electrocatalysts on a substrate or carrier characterised by the electrocatalyst material consisting of at least one catalytic element and at least one catalytic compound; consisting of two or more catalytic elements or catalytic compounds
- C25B11/095—Electrodes formed of electrocatalysts on a substrate or carrier characterised by the electrocatalyst material consisting of at least one catalytic element and at least one catalytic compound; consisting of two or more catalytic elements or catalytic compounds at least one of the compounds being organic
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- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B3/00—Electrolytic production of organic compounds
- C25B3/01—Products
- C25B3/07—Oxygen containing compounds
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- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B3/00—Electrolytic production of organic compounds
- C25B3/20—Processes
- C25B3/25—Reduction
- C25B3/26—Reduction of carbon dioxide
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- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B9/00—Cells or assemblies of cells; Constructional parts of cells; Assemblies of constructional parts, e.g. electrode-diaphragm assemblies; Process-related cell features
- C25B9/13—Single electrolytic cells with circulation of an electrolyte
- C25B9/15—Flow-through cells
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- C—CHEMISTRY; METALLURGY
- C25—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
- C25B—ELECTROLYTIC OR ELECTROPHORETIC PROCESSES FOR THE PRODUCTION OF COMPOUNDS OR NON-METALS; APPARATUS THEREFOR
- C25B9/00—Cells or assemblies of cells; Constructional parts of cells; Assemblies of constructional parts, e.g. electrode-diaphragm assemblies; Process-related cell features
- C25B9/17—Cells comprising dimensionally-stable non-movable electrodes; Assemblies of constructional parts thereof
- C25B9/19—Cells comprising dimensionally-stable non-movable electrodes; Assemblies of constructional parts thereof with diaphragms
Definitions
- the present disclosure relates to catalysts and catalytic methods for electrochemical carbon dioxide reduction, for example to upgrade greenhouse gases such as carbon dioxide to valuable fuels and feedstocks.
- the present disclosure is about a gas diffusion electrode (GDE) suitable for carbon dioxide electrolysis, a gas-fed flow cell comprising such GDE as well as a method for producing such GDE and to a process using such GDE.
- GDE gas diffusion electrode
- Electrochemical carbon dioxide reduction offers an attractive route to upgrade greenhouse gases such as CO2 to valuable fuels and feedstocks.
- CO2R Electrochemical carbon dioxide reduction
- HCOO formate
- formate is a high energy density and cost-beneficial product and can be used as a hydrogen storage material and as an energy source in direct formate fuel cells. Formate also has wide applications in the textile, leather and pharmaceutical industries.
- the partial current density for formate which is an indication of the formate production rate, has been determined to be as high as -4.1 mA/cm 2 when the pyridylethylmercaptan-modified Au CO2R catalyst has been used, while on the untreated gold surface, the partial current density was only -1.37 mA/cm 2 .
- the good selectivity for formate is explained by the protonation of the pyridine moiety of the ligand which is anchored on the gold surface to effectively promote the activation and conversion of CO2 to HCOOH - see for example the study of Li.
- the gas diffusion electrode according to the present disclosure comprising copper nanoparticles functionalized with one or more pyridine-containing ligands being pyridine-containing ligands.
- the disclosure provides a gas diffusion electrode suitable for carbon dioxide electrolysis, said gas diffusion electrode having a gas diffusion membrane, the gas diffusion electrode further comprising an ink deposited on the gas diffusion membrane; wherein the ink comprises an ion-conducting polymer, said gas diffusion electrode is remarkable in that the ink further comprises a catalyst comprising copper nanoparticles functionalized with one or more pyridine-containing ligands, wherein the one or more pyridine- containing ligands have an anchoring group comprising a sulphur atom tethered to the copper nanoparticles.
- copper nanoparticles functionalized with one or more pyridine- containing ligands show good results in the electrolysis of carbon dioxide when implemented into a gas-diffusion electrode of a gas-fed flow cell, notably in the selectivity and/or production rate in formate. Indeed, surprisingly, a selectivity into formate equivalent to a faradaic efficiency of at least 75% at -100 mA/cm -2 can be reached.
- the pyridine-containing ligands are selected from 4-pyridylethylmercaptan, 4-mercaptopyridine, 2,6-dimethyl-4-mercaptopyridine, 2-mercaptopyridine and any mixture thereof; more preferably, the one or more pyridine-containing ligands are or comprise 4- mercaptopyridine.
- the one or more pyridine-containing ligands have a thiol group.
- the one or more pyridine-containing ligands are grafted onto the copper nanoparticles.
- the one or more pyridine-containing ligands are present in a surface concentration ranging from 5 nmol cm -2 to 40 nmol cm -2 as determined by reductive desorption and UV-visible spectroscopy as set out in the description; preferably, ranging from 8 nmol cm -2 to 20 nmol cm -2 .
- the one or more pyridine-containing ligands are grafted onto the copper nanoparticles and form a monolayer.
- the copper nanoparticles have an average diameter ranging from 5 nm to 200 nm as measured by transmission-electron microscopy, preferably from 10 nm to 150 nm, more preferably from 20 nm to 100 nm.
- the copper nanoparticles comprise facets selected from Cu(200) facets, Cu(111) facets and any mixture thereof.
- the catalyst is suitable for electrochemical carbon dioxide reduction (CO2R) reactions to produce formate.
- CO2R electrochemical carbon dioxide reduction
- the gas diffusion membrane is a hydrophobic porous support.
- said hydrophobic porous support shows a pore size ranging from 400 nm to 500 nm as determined by scanning electron microscopy preferably, from 420 nm to 580 nm or from 440 nm to 560 nm.
- the gas diffusion membrane is a hydrophobic, porous and chemically inert support; with preference, the gas diffusion membrane is not soluble in KOH.
- the gas diffusion membrane is or comprises polytetrafluoroethylene.
- the gas diffusion membrane has a thickness ranging from 50 pm to 150 pm as measured by scanning electron microscopy, preferably from 60 pm to 120 pm more preferably from 70 pm to 100 pm.
- One or more of the following features advantageously define the ion-conducting polymer of the gas diffusion electrode of the disclosure:
- the ion-conducting polymer comprises an ionomer.
- the ion-conducting polymer is or comprises an ionomer with a tetrafluoroethylene backbone group (-CF2-CF2-).
- the ion-conducting polymer is or comprises a perfluorinated sulfonic acid, such as National®.
- the ion-conducting polymer is or comprises tetrafluoroethylene-perfluoro(3- hydrophobioxa-4-pentenesulfonic acid) copolymer, such as Aquivion®.
- the ink layer has a thickness ranging from 2 pm to 20 pm as measured by scanning electron microscopy, preferably from 5 pm to 15 pm, more preferably from 8 pm to 12 pm.
- the ink has a weight ratio of the copper nanoparticles functionalized with one or more pyridine-containing ligands over the ion-conducting polymer ranging from 10 to 40, preferably from 15 to 35, or from 20 to 30.
- the ink has a weight ratio of the copper nanoparticles functionalized with thiol-tethered ligands over the ion-conducting polymer ranging from 10 to 35, preferably from 15 to 30, or from 25 to 35.
- the gas diffusion electrode has a mass loading of the ink onto said gas diffusion membrane ranging from 1.50 mg/cm 2 to 2.00 mg/cm 2 , preferably from 1.60 mg/cm 2 to 1.90 mg/cm 2 .
- the copper nanoparticles have an average diameter ranging from 5 nm to 200 nm as measured by transmission electron microscopy, preferably from 10 nm to 150 nm, more preferably from 20 nm to 100 nm.
- the disclosure provides a method for producing the gas diffusion electrode suitable for carbon dioxide electrolysis as defined according to the first aspect, said method is remarkable in that it comprises the following steps: a) providing copper nanoparticles; b) obtaining a first dispersion by dispersing the copper nanoparticles into a solvent selected from water and/or a first organic solvent; c) adding one or more pyridine-containing ligands to the first dispersion to obtain a suspension with copper nanoparticles functionalized with one or more pyridine- containing ligands, wherein the one or more pyridine-containing ligands have an anchoring group comprising at least one sulphur atom; d) obtaining a second dispersion by dispersing the copper nanoparticles functionalized with one or more pyridine-containing ligands into a second organic solvent; e) adding an ion-conducting polymer to the second dispersion to obtain an ink; f) providing a gas-diffusion membrane
- the solvent is water and step (b) of dispersing the copper nanoparticles to obtain a first dispersion in an aqueous solution.
- the first organic solvent used in step (b) is a polar solvent selected from dichloromethane, ethyl acetate, acetone, dimethylformamide, acetonitrile, n-butanol, n- propanol, methanol, ethanol and any mixture thereof; with preference, the first organic solvent is or comprises dimethylformamide and/or methanol.
- the second organic solvent used in step (d) is selected from dichloromethane, ethyl acetate, acetone, dimethylformamide, acetonitrile, n-butanol, n-propanol, methanol, ethanol and any mixture thereof; with preference, the second organic solvent is or comprises dimethylformamide and/or methanol; more preferably, the second organic solvent is or comprises methanol.
- the first organic solvent can be the same or different from the second organic solvent.
- step (b) further comprises a sub-step of sonicating the first dispersion.
- the sub-step sonicating the first dispersion is performed at room temperature; for example, at a temperature ranging from 20°C to 30°C.
- the sub-step of sonicating the first dispersion is performed for at least 10 minutes, preferably for at least 15 minutes and/or for at most 60 minutes, preferably at most 45 minutes.
- step (b) and step (c) are performed simultaneously and step (c) of adding one or more pyridine-containing compounds comprises adding a solution of one or more pyridine- containing compounds into the organic solvent used in step (b).
- concentration of the solution of one or more pyridine-containing ligands ranges from 30 nmol per mg of Cu to 200 nmol per mg of Cu; preferably from 50 to 180 nmol per mg of Cu; more preferably from 70 to 160 nmol per mg of Cu; even more preferably from 90 to 150 nmol per mg of Cu and most preferably from 110 to 140 nmol per mg of Cu.
- steps of washing and drying are performed after step (c) and/or before step (d).
- the step of washing is performed with an organic solvent and the step of drying lasts at least 12 hours, preferably at least 24 hours and/or lasts no more than 48 hours, preferably no more than 36 hours.
- the organic solvent used in the step of washing is selected from dichloromethane, ethyl acetate, acetone, dimethylformamide, acetonitrile, n-butanol, n- propanol, methanol, ethanol and any mixture thereof; with preference, the organic solvent used in the step of washing is or comprises dimethylformamide and/or methanol.
- the step of depositing the ink onto the gas-diffusion membrane is performed by spray-deposition.
- said method further comprises the step (g) of drying the gas diffusion electrode under reduced pressure, for example at a pressure ranging from 0.09 MPa to 10' 4 MPa.
- the disclosure provides a gas diffusion electrode obtained by the method according to the second aspect.
- the disclosure provides a gas-fed flow cell suitable for carbon dioxide electrolysis, said gas-fed flow cell comprising a gas chamber, a catholyte chamber and an anolyte chamber, wherein said gas chamber is separated from the catholyte chamber by a gas diffusion electrode which is attached to the catholyte chamber by an electrically conductive connection, said gas diffusion electrode having a gas diffusion membrane being comprised within said gas chamber, wherein said catholyte chamber and said anolyte chamber are separated by an anion exchange membrane, and wherein said catholyte chamber and said anolyte chamber comprise respectively a cathode and an anode, said gas- fed flow cell is remarkable in that the gas diffusion electrode is as defined according to the first aspect and/or with the third aspect.
- the cathode and the anode are different from the gas diffusion electrode.
- the gas-fed flow cell of the present disclosure namely comprising the gas diffusion electrode of the first aspect and/or with the third aspect, allows for obtaining good results in the electrolysis of carbon dioxide, notably in the selectivity and/or in the production rate of formate.
- selectivity into formate equivalent to a faradaic efficiency of at least 75% at -100 mA/cm -2 can be reached, preferably at least 80%, and of at least 65% at -300 mA/cm 2 , preferably at least 70%.
- the formate production rate is reflected by the partial current density, is of at least 200 mA/cm 2 , preferably of at least 210 mA/cm 2 .
- said reference electrode is an Ag/AgCI electrode filled with 3.4 M of KCI.
- said anode is a Ni foam anode.
- the electrically conductive connection from the gas diffusion electrode and the catholyte chamber is achieved by applying copper tape on said gas diffusion electrode, the copper tape being electrically connected to a metallic rod in contact with the catholyte chamber.
- the metallic rod is a steel rod, preferably a stainless-steel rod.
- the disclosure provides a process for electrolysing carbon dioxide, said process comprising the following steps: i. providing a gas-fed flow cell; ii. providing at least one electrolyte flow into said gas-fed flow cell wherein the at least one electrolyte flow is a catholyte flow and an optional anolyte flow; iii. activating said gas-fed flow cell; iv. providing an input flow of carbon dioxide to produce an output flow of liquid component comprising at least formate; v.
- step (i) is as defined in the fourth aspect and in that in that said step (iii) is performed by injecting carbon dioxide at a potential gradient starting at -0.3 V versus a reference electrode and ending at -2.0 V versus said reference electrode at a sweep rate ranging from 15 mV s -1 to 35 mV s’ 1 , the reference electrode being preferably an Ag/AgCI electrode filled with 3.4 M of KCI.
- the electrolyte flow provided in step (ii) has a flow rate that is comprised between 2.5 mL min -1 to 8.5 mL min -1 , preferably from 3.0 mL min -1 to 8.0 mL min -1 , more preferably from 3.5 mL min -1 to 7.5 mL min -1 .
- the electrolyte flow provided in step (ii) is a flow of an aqueous solution of one or more inorganic bases.
- the aqueous solution of one or more inorganic bases has a concentration ranging from 1 M to 10 M; preferably from 3 to 7 M or from 5 M to 10 M.
- the aqueous solution of one or more inorganic bases has a concentration that is at least 5 M.
- the aqueous solution of one or more inorganic bases has a pH ranging from 7 to 15.
- the one or more inorganic bases are alkali selected from NaOH, KOH, Ca(OH)2, LiOH, Mg(OH)2, RbOH, CsOH and any mixture thereof.
- the one or more inorganic bases are or comprise KOH and/or NaOH.
- said step (iii) is performed by injecting carbon dioxide at a potential gradient starting at -0.3 V versus a reference electrode and ending at -2.0 V versus said reference electrode at a sweep rate ranging from 20 mV s -1 to 30 mV s’ 1 , the reference electrode being preferably an Ag/AgCI electrode filled with 3.4 M of KCI.
- the potential gradient starts at -0.5 V versus a reference electrode and ends at -1.8 V versus said reference electrode.
- said step (iv) lasts at least 1 hour, more preferably at least 2 hours, even more preferably at least 3 hours, most preferably at least 4 hours, even most preferably at least 5 hours or at least 6 hours.
- the input flow of carbon dioxide provided in step (iv) has a flow rate that is ranging from lO mL min' 1 to 150 mL min -1 , preferably from 15 mL min -1 to 100 mL min -1 , more preferably from 20 mL min -1 to 80 mL min -1 , even more preferably from 25 mL min -1 to 50 mL min -1 .
- the input flow of carbon dioxide provided in step (iv) comprises at least 95 mol% of carbon dioxide based on the total molar content of the input flow; preferably at least 98 mol%.
- said step (iv) is performed at room temperature, for example at a temperature ranging from 20°C to 30°C.
- said step (iv) is performed at atmospheric pressure, for example at a pressure ranging from 0.09 MPa to 0.11 MPa.
- the process is operated with a cathodic voltage no lower than -0.5V vs. reversible hydrogen electrode (RHE).
- RHE reversible hydrogen electrode
- the disclosure provides for the use of a catalyst for electrochemical carbon dioxide reduction (CO2R) reactions to produce formate, the use being remarkable in that the catalyst is according to the first aspect.
- the disclosure provides for the use of a catalyst for electrochemical carbon dioxide reduction (CO2R) reactions to produce formate, the use being remarkable in that the catalyst comprises copper nanoparticles functionalized with one or more pyridine-containing ligands, wherein the one or more pyridine- containing ligands have an anchoring group comprising a sulphur atom tethered to the copper nanoparticles.
- the pyridine-containing ligands are selected from 4-pyridylethylmercaptan, 4-mercaptopyridine, 2,6-dimethyl-4-mercaptopyridine, 2-mercaptopyridine and any mixture thereof; more preferably, the one or more pyridine-containing ligands are or comprise 4- mercaptopyridine.
- the one or more pyridine-containing ligands have a thiol group.
- the one or more pyridine-containing ligands are grafted onto the copper nanoparticles.
- the one or more pyridine-containing ligands are present in a surface concentration ranging from 5 nmol cm -2 to 40 nmol cm -2 as determined by reductive desorption and UV-visible spectroscopy; preferably, ranging from 8 nmol cm -2 to 20 nmol cm -2 .
- the one or more pyridine-containing ligands are grafted onto the copper nanoparticles and form a monolayer.
- the copper nanoparticles have an average diameter ranging from 5 nm to 200 nm as measured by transmission-electron microscopy, preferably from 10 nm to 150 nm, more preferably from 20 nm to 100 nm.
- the copper nanoparticles comprise facets selected from Cu(200) facets, Cu(111) facets and any mixture thereof.
- Figure 1 illustrates the gas fed flow cell of the present disclosure.
- An insert in figure 1 represents a zoom of the gas chamber and the catholyte chamber, highlighting the gas diffusion electrode of the present disclosure.
- Figure 2 shows Fourier-Transform Infrared spectra showing the successful anchoring of thiol ligands on copper nanoparticles.
- Figure 3 is a transmission electron microscopy image showing an image of initial copper nanoparticles.
- Figure 4 is a transmission electron microscopy image showing an image of copper nanoparticles with SPy.
- Figure 5 is a transmission electron microscopy image showing an image of copper nanoparticles with SPy after 1 hour of electrolysis at -300 mA cm -2 .
- Figure 6 is a scanning electron microscopy image showing images of the gas diffusion electrode of the invention.
- Figure 7 illustrates the UV Visible spectrum of the desorbed ligand from the electrode.
- Figure 8 is the zoom of the peak shown on figure 7 obtained after reductive desorption of the electrode under argon.
- Figure 9 is a current-voltage response (iR-corrected) of a Cu-SPy GDE obtained from chronopotentiometric steps with a 3 min hold time.
- Figure 10 is an iR-corrected current-voltage response obtained from chronopotentiometric steps comparing Cu and Cu-SPy electrodes.
- Figure 11 shows the FEHCOO- values obtained from controlled current electrolysis over 1 hour with varying current densities for Cu and Cu-SPy electrodes.
- Figure 12 displays the faradaic efficiency for all the products obtained following the present disclosure.
- Figure 13 displays the partial current densities for all the products obtained following the present disclosure
- Figure 14 is a study of the selectivity as a function of the desorption of the nitrogencontaining ligands from the copper nanoparticles.
- Figure 15 is a scanning electron microscopy image of the Cu-SPy electrode before electrolysis.
- Figure 16 is a scanning electron microscopy image of the Cu-SPy electrode after electrolysis carried out at 300 mA cm -2 .
- Figure 17 is a scanning electron microscopy image of the Cu-SPy electrode after electrolysis carried out at 500 mA cm -2 .
- Figure 18 shows the single-pass conversion efficiency in function of the carbon dioxide flow rate. Conditions: 5 M KOH, 5.5 mL min -1 electrolyte solution flow, anolyte and catholyte volume of 20 mL each, geometric electrode area of 1 cm 2 .
- Figure 19 represents a stability study of the gas-fed flow cell of the present disclosure.
- Figure 20 is the 1 H-NMR spectrum of the catholyte for a Cu-SPy electrode following electrolysis.
- FIG. 1 illustrates the gas-fed flow cell 1 of the present disclosure.
- Said gas-fed flow cell 1 comprises a gas diffusion electrode 7 suitable for carbon dioxide electrolysis. The following description first describes the gas diffusion electrode 7.
- the gas diffusion electrode 7 has a gas diffusion membrane 17, the gas diffusion electrode 7 further comprising an ink 19 deposited on the gas diffusion membrane 17; wherein the ink 19 comprises an ion-conducting polymer, said gas diffusion electrode 7 is remarkable in that the ink 19 further comprises a catalyst comprising copper nanoparticles functionalized with one or more pyridine-containing ligands, wherein the one or more pyridine-containing ligands have an anchoring group comprising one sulphur atom tethered to the copper nanoparticles.
- the one or more pyridine-containing ligands are grafted onto the copper nanoparticles and form a monolayer.
- the catalyst comprises copper nanoparticles wherein at least a part of the copper nanoparticles is functionalized with one or more pyridine-containing ligands, the one or more pyridine-containing ligands having an anchoring group comprising one sulphur atom tethered to the copper nanoparticles.
- the one or more pyridine-containing ligands have a thiol group before being grafted onto the copper nanoparticles, and thereby become thiol-tethered pyridine-containing ligands
- the one or more pyridine-containing ligands are selected from 4- pyridylethylmercaptan, 4-mercaptopyridine 2,6-dimethyl-4-mercaptopyridine, 2- mercaptopyridine and any mixture thereof.
- the one or more pyridine-containing ligands are or comprise 4-mercaptopyridine.
- the one or more pyridine-containing ligands are functionalized onto the copper nanoparticles and are present in a surface concentration ranging from 5 nmol cm -2 to 40 nmol cm -2 as determined by reductive desorption and UV-visible spectroscopy, preferably ranging from 6 nmol cm -2 to 30 nmol cm -2 or ranging from 8 nmol cm -2 to 20 nmol cm -2 ; or ranging from 10 nmol cm -2 to 18 nmol cm -2 .
- the gas diffusion membrane 17 allows for the diffusion of carbon dioxide as the main reactant of the electrolysis reaction into the electrochemical cell and is preferably a hydrophobic porous support.
- the gas diffusion membrane 17 is comprised within the gas chamber 3 of said gas-fed flow cell 1 .
- said support shows a pore size ranging from 400 nm to 500 nm as determined by scanning electron microscopy, preferably from 420 nm to 580 nm or from 440 nm to 560 nm.
- the gas diffusion membrane is preferably selected from an ion-conducting polymer-based membrane, an ion-conducting inorganic material, a combination polymer/inorganic based membrane and the like.
- the gas diffusion membrane is a hydrophobic, porous and chemically inert support; with preference, the gas diffusion membrane is not soluble in KOH.
- the gas diffusion membrane 17 is or comprises polytetrafluoroethylene (PTFE). Examples of suitable membranes are commercially available from Fisher Scientific SAS under the commercial denomination Sartorius.
- the gas diffusion membrane 17 has a circular shape and/or has a surface area of at least 1 cm 2 , or of at least 2 cm 2 .
- the gas diffusion membrane 17 has a thickness ranging from 2 pm to 50 pm measured by scanning electron microscopy, preferably from 5 pm to 40 pm, more preferably from 8 pm to 30 pm.
- An ink 19 is deposited on the gas diffusion membrane 17 and comprises an ion-conducting polymer.
- the ion-conducting polymer is or comprises an ionomer.
- the ion-conducting polymer is or comprises an ionomer with a tetrafluoroethylene backbone group (-CF2-CF2-).
- -CF2-CF2- tetrafluoroethylene backbone group
- said ion-conducting polymer is or comprises a perfluorinated sulfonic acid, such as National® (tetrafluoroethylene-perfluoro-3,6-dioxa-4- methyl-7-octenesulfonic acid copolymer); and/or the ion-conducting polymer is or comprises tetrafluoroethylene-perfluoro(3-hydrophobioxa-4-pentenesulfonic acid) copolymer, such as Aquivion®.
- a perfluorinated sulfonic acid such as National® (tetrafluoroethylene-perfluoro-3,6-dioxa-4- methyl-7-octenesulfonic acid copolymer)
- tetrafluoroethylene-perfluoro(3-hydrophobioxa-4-pentenesulfonic acid) copolymer such as Aquivion®.
- ink 19 has a ratio of the copper nanoparticles functionalized with thiol-tethered ligands over the ion-conducting polymer.
- the ink has a weight ratio of the copper nanoparticles functionalized with thiol-tethered ligands over the ion-conducting polymer ranging from 10 to 35, preferably from 15 to 30, or from 25 to 35.
- the gas diffusion electrode 7 has a mass loading of the ink 19 onto said gas diffusion membrane 17 ranging from 1.50 mg/cm 2 to 2.00 mg/cm 2 , preferably from 1.60 mg/cm 2 to 1.90 mg/cm 2 .
- the mass loading can be determined by weighing before and after deposition and drying.
- the copper nanoparticles have an average diameter ranging from 5 nm to 200 nm as measured by transmission electron microscopy, preferably from 10 nm to 150 nm, more preferably from 20 nm to 100 nm.
- the gas-fed flow cell 1 The gas-fed flow cell 1
- the gas-fed flow cell 1 suitable for carbon dioxide electrolysis of the present disclosure will then be described.
- the gas-fed flow cell 1 comprises a gas chamber 3, a catholyte chamber 9 and an anolyte chamber 13.
- the gas chamber 3 has a gas channel 5, through which a flow of CO2 is circulating.
- the gas chamber 3 is separated from the catholyte chamber 9 by a gas diffusion electrode 7 which is attached to the catholyte chamber 9 by an electrically conductive connection.
- the catholyte chamber 9 and the anolyte chamber 13 are separated by an anion exchange membrane (AEM) 11.
- AEM anion exchange membrane
- the catholyte chamber 9 and the anolyte chamber 13 comprise respectively a cathode (not represented) and an anode 15, for example a Ni foam anode.
- the gas-fed flow cell 1 of the present disclosure is remarkable in that the gas diffusion electrode 7 is as defined above and in that the gas diffusion membrane 17 of said gas diffusion electrode 7 is comprised within the gas chamber 3.
- the ink 19 comprising the ion-conducting polymer and the copper nanoparticles functionalized with one or more pyridine-containing ligands as described above is comprised within the catholyte chamber 9.
- the cathode is a reference electrode. It is preferred that said reference electrode is an Ag/AgCI electrode filled with KCI at a concentration ranging from 3.0 to 3.8 M; preferably from 3.2 to 3.6 M; even more preferably with 3.4 M of KCI. In other implementation of the invention, the reference electrode could also be a reversible hydrogen electrode (RHE).
- RHE reversible hydrogen electrode
- the electrically conductive connection from the gas diffusion electrode 7 and the catholyte chamber 9 is achieved by applying copper tape on said gas diffusion electrode 7, the copper tape being electrically connected to a metallic rod in contact with the catholyte chamber.
- the metallic rod is a steel rod, preferably a stainless-steel rod.
- At least a part of the copper nanoparticles is functionalized with one or more pyridine-containing ligands.
- at least 50 wt.% of the copper nanoparticles are functionalized, based on the total weight of the copper nanoparticles; preferably, at least 70 wt.%; more preferably at least 80 wt.%, and even more preferably at least 90 wt.%.
- 100 wt.% of the copper nanoparticles are functionalized with one or more pyridine-containing ligands.
- the copper nanoparticles are firstly functionalized (i.e., grafted) with one or more pyridine- containing ligands presenting an anchoring group.
- the copper nanoparticles, provided in step (a) are in a step (b) dispersed in an organic solvent is selected from dichloromethane, ethyl acetate, acetone, dimethylformamide, acetonitrile, n-butanol, n- propanol, methanol, ethanol and any mixture thereof; with preference, the organic solvent is or comprises dimethylformamide and/or methanol.
- the first dispersion that is obtained can be then sonicated in a sub-step.
- the sonicating sub-step is performed at room temperature, for example at a temperature ranging from 20°C to 30°C.
- the sonicating sub-step is performed for at least 10 minutes, preferably for at least 15 minutes and/or for no more than 60 minutes, preferably no more than 45 minutes.
- the sub-step of sonicating the first dispersion is preferably performed before step (c).
- the one or more pyridine-containing ligands preferably in a solution of the organic solvent, is added to the first dispersion to obtain a suspension.
- the solution of the one or more pyridine-containing ligands in the organic solvent has a concentration ranging from 30 nmol per mg of Cu to 200 nmol per mg of Cu; preferably from 50 to180 nmol per mg of Cu; more preferably from 70 to 160 nmol per mg of Cu; even more preferably from 90 to 150 nmol per mg of Cu and most preferably from 110 to 140 nmol per mg of Cu.
- Said suspension can be sonicated to form copper nanoparticles functionalized with one or more pyridine-containing ligands.
- the sonication is performed for at least 30 minutes, preferably at least 45 minutes and/or for no more than 90 minutes, preferably no more than 75 minutes.
- the sonication is achieved at room temperature, i.e., at a temperature ranging from 20°C to 30°C.
- the copper nanoparticles functionalized with the one or more pyridine-containing ligands described above are washed and dried after step (c) and/or before the steps required to prepare the gas diffusion electrode 7.
- the step of washing is performed with an organic solvent and the step of drying lasts at least 12 hours, preferably at least 24 hours and/or last no more than 48 hours, preferably no more than 36 hours.
- the organic solvent is selected from dichloromethane, ethyl acetate, acetone, dimethylformamide, acetonitrile, n-butanol, n-propanol, methanol, ethanol and any mixture thereof; with preference, the organic solvent is or comprises dimethylformamide and/or methanol.
- the copper nanoparticles are, in step (d), dispersed into methanol to obtain a second dispersion. It is preferred that the second dispersion is sonicated. With preference, said sonicating is achieved at room temperature, for example at a temperature ranging from 20°C and 30°C. With preference yet, said sonicating is achieved for at least 10 minutes, preferably for at least 15 minutes and/or for no more than 60 minutes, preferably no more than 45 minutes.
- step (e) an ion-conducting polymer, such as National®, is added to obtain the ink.
- the ink is then deposited in step (f) on a gas-diffusion membrane, for example, a gas-diffusion membrane that is or comprises polytetrafluoroethylene.
- a gas-diffusion membrane for example, a gas-diffusion membrane that is or comprises polytetrafluoroethylene.
- the ink is spray-deposited on the gas-diffusion membrane.
- the gas diffusion electrode can be dried under reduced pressure, for example at a pressure ranging from 0.09 MPa and 10' 4 MPa.
- the present disclosure is about a process for electrolysing carbon dioxide, said process comprising the following steps: i. providing a gas-fed flow cell 1 ; ii. providing at least one electrolyte flow 21 into said gas-fed flow cell 1 wherein the at least one electrolyte flow is a catholyte flow and an optional anolyte flow; iii. activating said gas-fed flow cell 1 ; iv. providing an input flow 23 of carbon dioxide to produce an output flow 25 of a liquid component comprising at least formate; v. recovering said output flow 25 comprising at least formate; said process is remarkable in that the gas-fed flow cell 1 provided at step (i) is as defined above.
- the process needs to have flowing catholyte but the anolyte can be flowing or static; with preference the anolyte is flowing as well.
- the current density is at least 100 mA, with preference, at least 200 mA.
- the electrolyte flow hereafter refers to the catholyte flow but also apply to the anolyte flow in case of flowing anolyte.
- the electrolyte flow provided in step (ii) has a flow rate that is ranging from 2.5 mL min -1 to 8.5 mL min -1 , preferably from 3.0 mL min -1 to 8.0 mL min -1 , more preferably from 3.5 mL min -1 to 7.5 mL min -1 .
- the electrolyte flow provided in step (ii) is a flow of an aqueous solution of one or more inorganic bases.
- the one or more inorganic bases are alkali selected from NaOH, KOH, Ca(OH)2, LiOH, Mg(OH)2, RbOH, CsOH and any mixture thereof.
- the one or more inorganic bases are or comprise KOH and/or NaOH
- the aqueous solution of one or more inorganic bases has a pH ranging from 7 to 15.
- the aqueous solution of one or more inorganic bases has a concentration of at least 1 M, of at least 3 M, or at least 4 M, or at least 5 M.
- the aqueous solution of one or more inorganic bases has a concentration of at most 10 M, of at most 8M, or at most 7 M, or most 6 M.
- the concentration the aqueous solution of one or more inorganic bases is ranging from 1 M to 10 M; preferably from 3 M to 7 M, more preferably from 4 M to 6 M.
- the aqueous solution of one or more inorganic bases is an aqueous solution of KOH at a concentration of at least 1 M, of at least 3 M, or at least 4 M, or at least 5 M.
- said at least one alkaline compound is an aqueous solution of KOH at a concentration of at most 10 M, of at most 8 M, or at most 7 M, or most 6 M.
- the concentration of KOH in a solution of water is ranging from 1 to 10 M; preferably from 3 M to 7 M, more preferably from 4 M to 6 M.
- said step (iii) is performed by injecting carbon dioxide at a potential gradient starting at -0.3 V versus a reference electrode and ending at -2.0 V versus said reference electrode at a sweep rate ranging from 15 mV s' 1 to 35 mV s' 1 or from 20 mV s -1 to 30 mV s’ 1 .
- the potential gradient starts at -0.5 V versus a reference electrode and ends at -1.8 V versus said reference electrode.
- the reference electrode is an Ag/AgCI electrode filled with 3.4 M of KCI.
- the output flow 25 of the liquid component in addition to comprising formate, can also comprise one or more selected from acetate, ethanol and propanol.
- step (iv) it is possible to produce an additional output flow 27 of gaseous components which exits through the gas chamber 3 via the gas channel 5.
- the additional output flow 27 can comprise, for example, one or more ligands selected from hydrogen, carbon monoxide and ethylene.
- the additional output flow 27 is devoid of ethylene and but comprises hydrogen and/or carbon monoxide.
- said step (iv) lasts at least 1 hour, more preferably at least 2 hours, even more preferably at least 3 hours, most preferably at least 4 hours, even most preferably at least 5 hours or at least 6 hours.
- the input flow of carbon dioxide provided in step (iv) has a flow rate that is ranging from lO mL min' 1 to 150 mL min -1 , preferably from 15 mL min -1 to 100 mL min -1 , more preferably from 20 mL min -1 to 80 mL min -1 , even more preferably from 25 mL min -1 to 50 mL min -1 .
- the flow rate of carbon dioxide is too low, for example, in case the flow rate is belowlO mL min -1 , the selectivity to formate can be lost.
- said step (iv) is performed at room temperature, for example at a temperature ranging from 20°C to 30°C.
- said step (iv) is performed at atmospheric pressure, for example at a pressure ranging from 0.09 MPa to 0.11 MPa.
- Mass loading of the ink onto the gas diffusion membrane The membrane was weighed using an analytical balance before deposition and after drying overnight in a vacuum desiccator.
- FT-IR Fourier-Transform Infrared
- TEM analysis was conducted using a Jeol 21 OOF microscope equipped with Schottky Field Emission electron gun and an ultra-high resolution polar piece.
- UV-vis absorption spectra were recorded on liquid samples using an Agilent Cary 100 spectrometer.
- Gas products were detected online using SRI instruments 8610 GC with Ar as the carrier gas.
- the GC was fitted with a thermal conductivity detector for H2 quantification, where the gas was separated using a HaySepD precolumn with a 3 m molecular sieve column.
- Carbon products were separated using either a 3 m molecular sieve column (CH4) or a 5 m HaySepD column (CO, C2H4, C2H6) and detected using a flame-ionization detector fitted with a methanizer.
- Calibration was performed using a custom standard gas mixture in CO2.
- n prO duct is the amount of product (mol)
- n e iectrons is the number of electrons used to make the product
- F is the Faraday constant (C mol" 1 )
- E product is the thermodynamic potential for formate (-0.02 V)
- E ce(( is the measured cell potential
- FE product is the faradaic efficiency (%).
- E ce(( E 1/2 + EH 2 O/O 2 ’ where E 1/2 is the iR-corrected potential measured in the cell (V vs. RHE) and E H2O/O2 is 1.23 V.
- Liquid products were analysed using 1 H NMR with a Pre-SAT180 water suppression method. Formate values were confirmed with a standard calibration using sodium formate solutions (in 5 M KOH) to ensure the accuracy of the internal standard method. The crossover of formate through the anion exchange membrane was accounted for by also liquid sampling from the anode compartment.
- a product conversion percentage can also be calculated - as in equation (10) - which represents the amount of consumed CO2 that goes into product generation instead of consumption through reaction with OH":
- Copper nanopowder (Sigma-Aldrich, 25 nm), 4-mercaptopyridine (ACROS organics, 96%), thiophenol (Sigma-Aldrich, >99%), /V,/V-dimethylformamide (Carlo Erba, 99.9%), and methanol (Carlo Erba, 99.9%) were used to form thiol-modified Cu nanoparticles.
- Polytetrafluoroethylene (PTFE) membranes (SartoriusTM, 0.45 pm pore size) and NafionTM (Sigma-Aldrich, 5 wt.% in lower aliphatic alcohols and water) were used for electrode preparation.
- Milli-Q H2O and KOH were used for electrochemical experiments.
- Terephthalic acid (Sigma-Aldrich, 98%), D2O (99.9% D), and sodium formate (Sigma-Aldrich, >99%) were used for NMR experiments and calibration.
- Cu nanopowder (particle size of 25 nm as measured by transmission electron microscopy) (commercially available from Sigma-Aldrich, CAS number 7440-50-8) featuring a native oxide layer formed from ambient exposure were dispersed in /V,/V-dimethylformamide (DMF) (1 mL) and sonicated for 15 min at 25°C.
- the suspension was sonicated for 1 h at 25°C then the particles were washed three times with DMF, twice with MeOH, and dried in vacuo for 24 h to form SPy-modified nanoparticles.
- Thiophenol (SPh) modification was conducted using the same method with the same molar ratio of ligand to Cu nanoparticles.
- Cu-SPy nanoparticles 25 nm (i.e. , Cu25-SPy nanoparticles) were formed in the same way but all treatments were carried out in a glovebox to avoid exposure of the particles to oxygen.
- X-ray photoelectron spectroscopy has demonstrated that a mixture of thiol and thiolate environments were present.
- GDEs Gas diffusion electrodes
- An ink containing a weight ratio of 4:3, Cu-SPy: National (5%) was prepared in methanol and sonicated for 1 h at 25 °C.
- the ink was spray deposited onto a PTFE membrane (Sartorius, 0.45 pm pore size) confined to a circular diameter of 2 cm 2 to obtain a total mass loading of approximately 1.75 mg cm -2 after drying under vacuum.
- the same mass loading was used for Cu, Cu-SPy, Cu-SPh, electrodes.
- the GDEs of example 2 were electrically connected in a gas-fed flow cell for electrochemical testing.
- Electrocatalysis was conducted in a custom-made gas-fed flow cell (Sphere Ltd).
- An anion exchange membrane (Sustanion, pre-treated in KOH), a Ni-foam anode, and a leak-free Ag/AgCI electrode filled with 3.4 M of KOI (reference electrode from Innovative Instruments Ltd.) were used.
- the PTFE-based GDEs were electrically contacted using Cu tape and confined to a geometric area of 1 cm 2 .
- Pre-activation was required, which involves consecutive linear sweep voltammograms (LSVs) under CO2 flow with a sweep rate of 25 mV s -1 from -0.8 to -1.5 V vs.
- LSVs linear sweep voltammograms
- the reference electrode (Ag/AgCI electrode filled with 3.4 M of KCI) until stabilisation of the current response.
- a CO2 inlet flow rate was maintained at 30 mL min -1 using a mass flow controller (Bronkhurst) for initial studies and the electrolyte solution (5 M KOH) was circulated at a rate of 5.5 mL min -1 using a peristaltic pump.
- the catholyte was constantly purged with Ar at a fixed flow rate of 35 mL min -1 and the outlet was connected to the CO2 outlet gas trap to carry any liquid saturated gas products to the GC.
- calibrated flow meters (MesaLabs Defender 530+ and Ellutia 7000) were used to verify flow rates before and after the GC inlet to ensure the correct flow value was recorded and to establish the portion of CO2 utilised to account for mass balance.
- the catholyte and anolyte volumes were 20 mL and the electrolysis time was 1 h for all experiments apart from the 6 h electrolysis, where the volumes were increased to 140 mL.
- ERHE EAg/Agci + 0.206 + 0.0591 x pH and were /R-corrected to account for the solution resistance, which was obtained from electrochemical impedance spectroscopy scans. Note that this does not account for any local pH changes at the electrode/solution interface, however, only small changes are expected for such highly alkaline systems.
- a geometrical molecular loading of 15 nmol cm -2 was determined by UV-Vis spectroscopy after reductive desorption of the thiol at highly cathodic potentials.
- the electrodes were exposed to potentials more negative than -2.2 V vs. Ag/AgCI/KCl3.4M under Ar flow for 1 h to ensure that all of the molecule was removed.
- Ar flow see figures 7 and 8
- the desorption of SPy forms 4,4’-dithiodi pyridine with an absorption peak at 283 nm in KOH.
- the absorption peak for the desorbed molecule was correlated with a calibration curve for the complex to obtain a molar loading of SPy based on the geometrical area (1 cm 2 ).
- the SPy loading value obtained was 14.6 ⁇ 2.4 nmol cm -2 .
- the desorbed thiolate reacts to form a new species with an altered UV-Vis spectrum with a much higher absorption coefficient (peak at 258 nm used for analysis) - this likely corresponds to a thiocarbonate derivative.
- the low concentrations excluded conventional molecular characterisation, however through ligand stripping under CO2 flow for a blank electrode, and comparison with the absorption peak at 258 nm for the experiments conducted under CO2 flow, an approximate percentage of desorbed species could be obtained.
- Figure 11 shows the FEHCOO- values obtained from controlled current electrolysis (CCE) over 1 hour with varying current densities for Cu and Cu-SPy electrodes. It was revealed that Cu- SPy GDEs displayed a high selectivity for HCOO" whereas unmodified Cu showed a wide product distribution. Tables 1 and 2 display the faradaic efficiencies for the unmodified copper nanoparticles and the copper nanoparticles as prepared in the present disclosure respectively.
- Table 3 displays Cu-SPh, Cu25-SPy, and Cu-DMSPy faradaic efficiencies of main products from CO2 reduction (1 h) at different current densities. The results highlight the advantage of pyridine-containing ligands over thiophenol ligands.
- Figure 12 displays the faradaic efficiency for all the products obtained following the present disclosure.
- Figure 13 displays the partial current densities for all the products obtained following the present disclosure
- the cathodic energy efficiency for HCOO" (EE% HCOO-) was 55 ⁇ 3.2% at -300 mA cm -2 with an optimal single-pass efficiency of 4.4% attained through alteration of the CO2 flow rate as illustrated in figure 18.
- the optimum flow rate that does not affect FEHCOO- is 15 mL min -1 . Each point was determined from 30-minute electrolysis at -300 mA cm -2 with a fresh electrolyte solution.
- Figure 20 is the 1 H NMR spectrum of the catholyte solution taken after carbon dioxide electrolysis and that shows the presence of formate (main product obtained from the electrolysis), terephthalic acid (as reference) and water (coming notably from the aqueous electrolyte solution).
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| PCT/EP2022/076158 WO2023046714A1 (en) | 2021-09-24 | 2022-09-21 | Electrochemical carbon dioxide reduction catalyst for formate production |
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| KR101973002B1 (en) * | 2017-05-26 | 2019-04-29 | 한국과학기술연구원 | A method for preparing copper electrocatalyst for carbon dioxide reduction |
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