Composite ion-exchange membranes for flow batteries
US-2024387848-A1 · Nov 21, 2024 · US
US9893373B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9893373-B2 |
| Application number | US-201113699210-A |
| Country | US |
| Kind code | B2 |
| Filing date | May 18, 2011 |
| Priority date | May 25, 2010 |
| Publication date | Feb 13, 2018 |
| Grant date | Feb 13, 2018 |
A practical reading order for non-experts. Skip the full description unless you need deep technical detail.
What the patent document calls the invention.
A short plain-language summary of the technical disclosure.
Who owns or filed the patent and who is credited as inventor.
Filing, priority, publication, and grant dates set the timeline.
The legal scope of protection — read this for what is actually claimed.
Technology tags used to group this patent with similar filings.
Prior art links and similar publications in this corpus.
Official abstract text for this publication.
An electrolyte membrane having a proton conducting polymer reinforced with a nanofiber mat made from a nanofiber comprising a fiber material selected from polymers and polymer blends; wherein the fiber material has a fiber material proton conductivity; wherein the proton conducting polymer has a proton conducting polymer conductivity; and wherein the fiber material proton conductivity is less than the proton conducting polymer conductivity, and methods of making. In some embodiments, the nanofiber further comprises a proton conducting polymer.
Opening claim text (preview).
What is claimed is: 1. An electrolyte membrane, comprising: a first proton conducting polymer reinforced with a nanofiber mat; wherein the nanofiber mat is made from a nanofiber comprising a fiber material selected from the group consisting of (i) PES, (ii) a PES blend, (iii) PEI, (iv) a PEI blend, (v) PBI, (vi) a PBI blend, (vii) PPO, (viii) a PPO blend, (ix) PEEK, (x) a PEEK blend, (xi) PPES, (xii) a PPES blend, (xiii) PEK, (xiv) a PEK blends, and (xv) combinations thereof, and wherein the nanofiber has an average diameter no greater than 1000 nm; and wherein the first proton conducting polymer is selected from the group consisting of highly fluorinated ionomer, perfluorinated ionomer, hydrocarbon ionomer, blends and combinations thereof. 2. The electrolyte membrane of claim 1 , wherein the fiber material is PES blended with PVDF. 3. The electrolyte membrane of claim 1 , wherein the fiber material comprises at least one of: PES, PEI, PBI, PPO, PEEK, PPES, and PEK blended with a proton conducting polymer. 4. The electrolyte membrane of claim 1 , wherein the fiber material is crosslinked. 5. The electrolyte membrane of claim 1 , wherein the nanofiber mat has an average basis weight in a range from 3.2 g/m 2 to 6.5 g/m 2 . 6. The electrolyte membrane of claim 1 , wherein the electrolyte membrane has a thickness in the range of from about 10 micrometers to about 50 micrometers. 7. The electrolyte membrane of claim 1 , wherein the first proton conducting polymer further comprises a stabilizing additive comprising an element selected from the group consisting of Mn and Ce. 8. The electrolyte membrane of claim 7 , wherein the first proton conducting polymer comprises a pendant group having the structure selected from the group consisting of: —OCF 2 CF 2 CF 2 CF 2 SO 3 Y, —OCF 2 CF(CF 3 )OCF 2 CF 2 SO 3 Y, and —CF 2 SO 2 N(Z)SO 2 (CF 2 ) 3 SO 3 Y, wherein Y is a hydrogen ion or a cation and Z is a suitable countercation. 9. The electrolyte membrane of claim 8 , wherein the first proton conducting polymer has an equivalent weight of 900 or less. 10. The electrolyte membrane of claim 1 , wherein the fiber material further comprises a stabilizing additive comprising an element selected from the group consisting of Mn and Ce. 11. A membrane electrode assembly comprising the electrolyte membrane of claim 1 . 12. The electrolyte membrane of claim 1 , wherein an average thickness of the nanofiber mat is in a range of about 20% to 60% of an average thickness of the electrolyte membrane. 13. The electrolyte membrane of claim 1 , wherein the electrolyte membrane comprises the nanofiber mat in a central layer region with a proton conducting polymer layer on either side and wherein the center layer region is smaller than the proton conducting polymer layer. 14. The electrolyte membrane of claim 1 , wherein nanofibers in the nanofiber mat are not fused together. 15. The electrolyte membrane of claim 1 , wherein the nanofiber mat is made from a nanofiber comprising a fiber material selected from the group consisting of (i) PES, (ii) PEI, (iii) (v) PBI, (iv) PPO, (v) PEEK, (vi) PPES, (vii) PEK, and (viii) combinations thereof. 16. A multilayer electrolyte membrane comprising: the electrolyte membrane of claim 1 , further comprising at least one layer of a second proton conducting polymer adhered to a major surface of the electrolyte membrane, wherein the second proton conducting polymer is selected from the group consisting of highly fluorinated ionomer, perfluorinated ionomer, hydrocarbon ionomer, blends and combinations thereof. 17. A membrane electrode assembly comprising the multilayer electrolyte membrane of claim 16 . 18. A method of making an electrolyte membrane, comprising: (a) providing a nanofiber mat comprising a nanofiber comprising a fiber material, wherein the fiber material comprises a polymer selected from the group consisting of (i) PES, (ii) PES blends, (iii) PEI, (iv) PEI blends, (v) PBI, (vi) PBI blends, (vii) PPO, (viii) PPO blends, (ix) PEEK, (x) PEEK blends, (xi) PPES, (xii) PPES blends, (xiii) PEK, (xiv) PEK blends, and (xv) combinations thereof, wherein the nanofiber has an average diameter no greater than 1000 nm; and (b) at least partially filling the nanofiber mat with a first proton conducting polymer, wherein the first proton conducting polymer is selected from the group consisting of highly fluorinated ionomer, perfluorinated ionomer, hydrocarbon ionomer, blends and combinations thereof. 19. The method of claim 18 further comprising applying any one of a sizing, a binder, or a polymeric treatment to the nanofiber mat prior to step b).
based on organic and/or inorganic macromolecular compounds · CPC title
characterised by the chemical composition of the porous support · CPC title
consisting of layers of polymers with at least one layer being ionically conductive · CPC title
Organic polymers · CPC title
characterised by their physical properties, e.g. porosity, ionic conductivity or thickness · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.