Buffered cobalt oxide catalysts
Disclosed are electrolysis catalysts formed from cobalt, oxygen and buffering electrolytes (e.g. fluoride). They can be formed as a coating on an anode by conducting an electrolysis reaction using an electrolyte containing cobalt and an anionic buffering electrolyte. The catalysts will facilitate the conversion of water to oxygen and hydrogen gas at a range of mildly acidic conditions. Alternatively, these anodes can be used with cathodes that facilitate other desirable reactions such as converting carbon dioxide to methanol.
1. An anode suitable for generating oxygen in an electrolysis reaction, comprising:
a substrate; and
a catalytic coating positioned on the substrate which comprises cobalt, oxygen, and an anion selected from the group consisting of perfluoroalkyl sulfonamides, and anions of perfluorinated dialkyl ketone hydrates.
2. The anode of claim 1 , wherein the catalytic coating was positioned on the substrate by electrolytic film deposition of the catalytic coating on the substrate during an electrolysis reaction in which the substrate was positioned in an aqueous solution comprising cobalt cation and the selected anion.
3. An electrolysis cell comprising the anode of claim 1 and further comprising a cathode.
4. The electrolysis cell of claim 3 , wherein the cathode is suitable to generate hydrogen gas.
5. The electrolysis cell of claim 3 , wherein the cathode is suitable to convert carbon dioxide to another carbon containing material.
6. The electrolysis cell of claim 5 , wherein the cathode is suitable to convert carbon dioxide to methanol.
7. The anode of claim 1 , wherein the selected anion is a perfluoroalkyl sulfonamide.
8. The anode of claim 7 , wherein the selected perfluoroalkyl sulfonamide is trifluoromethyl sulfonamide.
9. The anode of claim 1 , wherein the selected anion is an anion of a perfluorinated dialkyl ketone hydrate.
10. The anode of claim 9 , wherein the selected anion of a perfluorinated dialkyl ketone hydrate is deprotonated hexafluoroacetone hydrate.