IP Library Granted Patent US 12,435,429
Granted Patent B2
US 12,435,429 · App. 17/596,260 · Granted Oct 7, 2025

Electrically conductive nanofibers for polymer membrane-based electrolysis

Inventors: Friedemann Hegge (Freiburg, DE); Matthias Breitwieser (Freiburg, DE); Florian Lombeck (Freiburg, DE); Severin Vierrath (Freiburg, DE)
Assignee: Hahn-Schickard-Gesellschaft für Angewandte Forschung e. V.
C25B1/04C25B9/19C25B9/23C25B11/032C25B11/053C25B11/091C25B13/07C25B13/08
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Quick Facts
Patent No.
US 12,435,429
App. No.
17/596,260
Granted
Oct 7, 2025
Kind
B2
Abstract

The invention preferably relates to an electrolytic cell for generating hydrogen and oxygen with a layer system comprising at least one pair of catalytically active layers between which a polymer membrane is arranged, wherein the layer system comprises electrically conductive ceramic or metallic nanofibers. In particular, the layer system comprises a pair of catalytically active layers, as well as transport layers close to the anode and/or close to the cathode, wherein the pair of catalytically active layers comprises catalytically active nanoparticles, and wherein, in order to increase in-plane conductivity or connectivity of the catalytically active nanoparticles, an intermediate layer comprising ceramic or metallic nanofibers is present between one of the catalytically active layers and one of the transport layers, or metallic or ceramic nanofibers are present within one of the catalytically active layers in addition to the catalytically active nanoparticles. The nanofibers can themselves be catalytically active or catalytically inactive.

Claims (24)

1. An electrolytic cell for generating hydrogen and oxygen with a layer system comprising at least one pair of catalytically active layers between which a polymer membrane is arranged, wherein the layer system comprises the following layers:

a pair of catalytically active layers to form an anode and a cathode, and

an anode-side transport layer and/or a cathode-side transport layer,

wherein the pair of catalytically active layers comprises catalytically active nanoparticles and wherein to improve connectivity of the catalytically active nanoparticles an intermediate layer comprising conductive nanofibers is present between one of the catalytically active layers and a transport layer, wherein the conductive nanofibers are based on compounds containing iridium oxide,

wherein the nanoparticles exhibit a maximum dimension of 1 nm-1000 nm and a sphericity of more than 0.5, and the conductive nanofibers exhibit a diameter of 10 nm-1000 nm and an aspect ratio of 5-1000, and

wherein the conductive nanofibers are produced as a coherent network of nanofibers by means of a spinning process, thermally post-treated, comminuted as a dispersion for further processing and subsequently incorporated as a dispersion into the layer system by means of a coating process.

2. Electrolytic cell according to claim 1 , wherein the conductive nanofibers exhibit a diameter of 50 nm-400 nm and/or the conductive nanofibers exhibit an aspect ratio of 5-250.

3. Electrolytic cell according to claim 1 , wherein the nanoparticles exhibit a sphericity of more 0.7.

4. Electrolytic cell according to claim 1 , wherein the conductive nanofibers exhibit a diameter of less than 1000 nm and a length of less than 20 μm and have been applied in a coating process.

5. Electrolytic cell according to claim 1 , wherein the conductive nanofibers are formed from a catalytically active material or are formed from a non-catalytically active material and are coated with a catalytically active material.

6. Electrolytic cell according to claim 1 , wherein the polymer membrane consists of a proton-conductive polymer, and the electrolytic cell is configured for acid electrolysis, or the polymer membrane consists of an anion-conductive polymer, and the electrolytic cell is configured for alkaline electrolysis.

7. Electrolytic cell according to claim 1 , wherein the electrolytic cell is an acidic electrolytic cell with a proton-conductive polymer membrane and the conductive nanofibers consist of a catalytically active material and/or are coated with a catalytically active material.

8. Electrolytic cell according to claim 1 , wherein the electrolytic cell is an alkaline electrolytic cell having a polymer membrane permeable to hydroxide ions (OH−) and the conductive nanofibers consist of a catalytically active material.

9. Electrolytic cell according to claim 1 , wherein the layer system comprises the following layers:

a cathode-side transport layer,

a first catalytically active layer,

a polymer membrane,

a second catalytically active layer, and

an anode-side transport layer,

wherein an intermediate layer comprising the conductive nanofibers is present between the first catalytically active layer and the cathode-side transport layer and/or between the second catalytically active layer and the anode-side transport layer.

10. An electrolytic cell stack comprising a plurality of electrolytic cells according to claim 1 , which are stacked on top of each other and/or side by side.

11. A method of producing hydrogen and oxygen from water while providing electrical energy comprising using an electrolytic cell according to claim 1 .

12. Electrolytic cell for generating hydrogen according to claim 1 , wherein the proportion by weight of the conductive nanofibers to the catalytically active nanoparticles range from 0.25:1 to 2:1.

13. Electrolytic cell according to claim 1 , wherein the conductive nanofibers are ceramic nanofibers.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 3, 2022
From: HEGGE, FRIEDEMANN; BREITWIESER, MATTHIAS; LOMBECK, FLORIAN; VIERRATH, SEVERIN
To: HAHN-SCHICKARD-GESELLSCHAFT FÜR ANGEWANDTE FORSCHUNG E. V.
Reel/Frame 058527/0364 →
Priority Claims (2)
DE 10 2019 115 469.3 · Jun 7, 2019 · national
EP 19194885 · Sep 2, 2019 · regional
Continuity (1)
Related Publication 20220307141A1 · Sep 29, 2022
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