Nickel-based electrocatalytic photoelectrodes
A photoelectrode, methods of making and using, including systems for water-splitting are provided. The photoelectrode can be a semiconductive material having a photocatalyst such as nickel or nickel-molybdenum coated on the material.
1. A photoelectrode comprising: a semiconducting substrate of nano- and/or micro-wires coated with a nickel-molybdenum metal catalyst.
2. The photoelectrode according to claim 1 , wherein the semiconductive substrate comprises silicon.
3. The photoelectrode according to claim 2 , wherein the photoelectrode is a photocathode.
4. The photoelectrode according to claim 1 , wherein the semiconducting substrate comprises an array of nano- and/or micro-wires.
5. A photocell for conversion of water to hydrogen comprising: a photoanode comprising one or more ordered wire arrays comprising a plurality of elongate photoanode semiconductor wires, wherein the photoanode semiconductor wires are oriented to receive incident light; a photocathode comprising one or more ordered wire arrays comprising a plurality of elongate photocathode semiconductor wires, wherein the photocathode semiconductor wires are oriented to receive incident light; and a film electrically and ionically interconnecting the plurality of the photoanode semiconductor wires to a plurality of the photocathode wires and wherein the photocathode and/or photoanode are coated with nickel-molybdenum.
6. The photocell according to claim 5 , wherein the film comprises a flexible composite polymer film.
7. The photocell according to claim 5 , wherein the film prevents mixing of gaseous products.
8. The photocell according to claim 5 , further comprising interspersed patches of an ion-conducting polymer.
9. A photoelectrode made by a process comprising: providing a electrocatalyst plating bath comprising a Nickel(II) sulfamate salt and sodium molybdate;
placing a semiconducting substrate comprising a plurality of nano- and/or micro-wires serving as an electrode and a suitable auxiliary electrode in the electrocatalyst bath;
applying a constant voltage or constant current to the semiconducting substrate; and
exposing the semiconducting substrate to electromagnetic illumination, wherein the photoelectrode is coated with a photocatalyst comprising nickel-molybdenum.