SELECTIVE PORPHYRIN-CATALYZED ELECTROCHEMICAL REDUCTION OF CO2 INTO CO, IN PARTICULAR IN WATER
The present invention relates to the use of complexes of water soluble porphyrins of formula (I). The present invention relates to water soluble porphyrins of formula (I), wherein R 1 to R 11 and R 1 ′ to R 8 ′ are as defined in claim 1 , their iron complexes, use thereof as catalysts for the selective electrochemical reduction of CO 2 into CO, electrochemical cells comprising them, and methods for reducing electrochemically CO 2 into CO using said complexes or said electrochemical cells, thereby producing CO or syngas.
1 .- 15 . (canceled)
16 . An iron complex of a porphyrin of formula (I):
wherein R 1 to R 8 and R 1 ′ to R 8 ′ are independently selected from the group consisting of H, OH, F, and C 1 -C 6 -alkyl,
provided that at least 2 of R 1 -R 4 are H, at least 2 of R 1′ -R 4′ are H, at least 2 of R 5 -R 8 are H, and at least 2 of R 5′ -R 8′ are H, and
R 9 , R 10 and R 11 are independently selected from a C 1 -C 4 -alkyl group,
or atropisomers thereof,
and salts thereof.
17 . The iron complex of claim 16 , wherein R 9 , R 10 , and R 11 are a methyl group.
18 . The iron complex of claim 16 , wherein R 1 to R 8 and R 1 ′ to R 8 ′ are selected from the group consisting of H and C 1 -C 6 -alkyl.
19 . The iron complex of claim 16 , wherein the porphyrin of the invention is of formula (Ia):
with R 1 to R 4 and R 9 , R 10 , and R 11 as defined in claim 16 ,
or atropisomers thereof, and salts thereof.
20 . The iron complex of claim 16 , wherein the porphyrin of the invention is of formula (Ib):
with R 9 , R 10 , and R 11 as defined in claim 16 , or atropisomers thereof, and salts thereof.
21 . The iron complex of claim 20 , wherein the porphyrin of the invention is:
or atropisomers thereof, and salts thereof.
22 . A two-compartment electrochemical cell comprising at least:
a cathodic compartment with a cathode and a cathodic electrolyte solution comprising a cathodic solvent and a cathodic supporting electrolyte, and the substrate CO 2 ,
an anodic compartment with an anode and an anodic electrolyte solution comprising a solvent and an anodic supporting electrolyte,
a power supply providing the energy necessary to trigger the electrochemical reactions involving the substrate,
and further comprising the iron complex of claim 16 .
23 . The electrochemical cell of claim 22 , wherein CO 2 gas is present only in the cathodic compartment and the CO 2 pressure in the cathodic compartment of the electrochemical cell is of between 1 bar and 30 bars.
24 . The electrochemical cell of claim 22 , wherein the solvent of the electrolyte solutions is selected from dimethylformamide, acetonitrile, water, or mixtures thereof.
25 . The electrochemical cell of claim 24 , wherein, when the solvent is water, the cathodic supporting electrolyte is devoid of buffer, and the anodic supporting electrolyte comprises a phosphate buffer.
26 . The electrochemical cell of claim 24 , wherein, when the solvent comprises dimethylformamide and/or acetonitrile, said solvent further comprises a proton donor with a pKa value in DMF of between 18 and 31.
27 . A method of reducing electrochemically CO 2 into CO using an iron complex of a porphyrin of formula (I):
wherein R 1 to R 8 and R 1 ′ to R 8 ′ are independently selected from the group consisting of H, OH, F, and C 1 -C 6 -alkyl,
provided that at least 2 of R 1 -R 4 are H, at least 2 of R 1′ -R 4′ are H, at least 2 of R 5 -R 8 are H, and at least 2 of R 5′ -R 8′ are H, and
R 9 , R 10 and R 11 are independently selected from a C 1 -C 4 -alkyl group,
or atropisomers thereof,
and salts thereof
with iron at the oxidation state of Fe(0), as catalyst or the electrochemical cell of claim 24 .
28 . The method of claim 27 , wherein, in the electrochemical cell, when a mixture of CO and H 2 (syngas) is produced, the pH of the aqueous solution and the potential applied to the cathode are adjusted so as to tune the CO/H 2 molar ratio of the produced gas.
29 . The method of claim 27 , wherein the iron complex of claim 1 is used as homogenous catalyst or is immobilized on at least one electrode using a binder, optionally containing conductive materials as additives.
30 . The electrochemical cell of claim 26 , wherein the proton donor is selected from the group consisting of water, trifluoroethanol, phenol, and acetic acid.