GAS DIFFUSION ELECTRODE, AN ELECTROLYSIS SYSTEM, AND A METHOD FOR OPERATING AN ELECTROLYSIS SYSTEM
A gas diffusion electrode having at least two layers, of which a first layer has an electrically conductive fabric, which is embedded at least in part in a hydrophobically acting polymer matrix, and a second layer has an open porosity which has catalytically acting particles and has a thickness between 1 μm and 50 μm.
1 . A gas diffusion electrode comprising:
at least two layers of which a first layer comprises an electrically conductive woven fabric which is at least partially embedded in a hydrophobic polymer matrix and a second layer comprises an open porosity in which catalytically active particles are present and has a thickness in the range from 1 μm to 50 μm.
2 . The gas diffusion electrode as claimed in claim 1 ,
wherein the electrically conductive woven fabric comprises a silver-, titanium-, nickel- and/or carbon-containing fiber.
3 . The gas diffusion electrode as claimed in claim 1 ,
wherein the polymer matrix comprises polytetrafluoroethylene.
4 . The gas diffusion electrode as claimed in claim 1 ,
wherein the polymer matrix is hydrophobic and has a contact angle with water of more than 90°.
5 . The gas diffusion electrode as claimed in claim 1 ,
wherein the first layer has a thickness in the range from 50 μm to 1000 μm.
6 . The gas diffusion electrode as claimed in claim 1 ,
wherein the polymer matrix has a porosity and wherein 95% of the pores have a diameter which is in the range from 0.1 μm to 2 μm.
7 . The gas diffusion electrode as claimed in claim 1 ,
wherein the catalytically active particles of the second layer have a diameter which is in the range from 0.05 μm to 1 μm.
8 . The gas diffusion electrode as claimed in claim 1 ,
wherein the second layer comprises silver particles as catalytically active particles.
9 . The gas diffusion electrode as claimed in claim 1 ,
wherein the particles of the second layer have a hydrophilic binder which has a contact angle with water of less than 90°.
10 . The gas diffusion electrode as claimed in claim 1 ,
wherein at least 95% of the pores of the second layer have a diameter which is in the range from 0.1 μm to 5 μm.
11 . An electrolysis plant for electrolytic conversion of carbon dioxide, comprising:
a gas diffusion electrode as claimed in claim 1 .
12 . The electrolysis plant as claimed in claim 11 ,
wherein the electrolysis plant has a gas space and an electrolyte chamber, where the second layer of the gas diffusion electrode is arranged so as to face the electrolyte chamber.
13 . The electrolysis plant as claimed in claim 11 ,
wherein a contact web electrically contacts the gas diffusion electrode.
14 . A method for operating an electrolysis plant, comprising:
introducing a carbon dioxide-containing starting material into a gas space,
conveying the starting material to a gas diffusion electrode wherein the starting material diffuses through a first layer of the gas diffusion electrode, after which the starting material arrives at an interface of the first layer with a second layer of the gas diffusion electrode and is reduced there, where the second layer is a porous layer which is impregnated with a liquid electrolyte.
15 . The gas diffusion electrode as claimed in claim 5 ,
wherein the first layer has a thickness in the range from 100 μm to 400 μm.
16 . The gas diffusion electrode as claimed in claim 6 ,
wherein 95% of the pores have a diameter which is in the range from 0.6 μm to 0.9 μm.
17 . The gas diffusion electrode as claimed in claim 7 ,
wherein the catalytically active particles of the second layer have a diameter which is in the range from 0.1 μm to 0.5 μm.
18 . The gas diffusion electrode as claimed in claim 10 ,
wherein at least 95% of the pores of the second layer have a diameter which is in the range from 0.1 μm to 1 μm.