Alternative low cost electrodes for hybrid flow batteries
US-2024047707-A1 · Feb 8, 2024 · US
US2017309927A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2017309927-A1 |
| Application number | US-201515509547-A |
| Country | US |
| Kind code | A1 |
| Filing date | Sep 23, 2015 |
| Priority date | Sep 23, 2014 |
| Publication date | Oct 26, 2017 |
| Grant date | — |
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The present specification relates to a composite membrane containing an ion transfer polymer and a method for preparing the same.
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1 . A composite membrane comprising two or more polymer layers comprising an ion transfer polymer, wherein the polymer layer comprises: a first polymer layer composed of an ion transfer polymer or composed of an ion transfer polymer and a stabilizer; and a second polymer layer provided on the first polymer layer and having an ion transfer polymer and a functional additive particle, and the functional additive particle is at least one of a silicon element-containing particle, a graphite oxide particle, a metal particle, and a metal oxide particle. 2 . The composite membrane of claim 1 , wherein a content of the functional additive particle is 30 wt % or more and 80 wt % or less based on a total weight of the second polymer layer, and the second polymer layer has a thickness of 60 μm or more and 150 μm or less. 3 . The composite membrane of claim 1 , wherein the first polymer layer is brought into contact with the second polymer layer. 4 . The composite membrane of claim 1 , further comprising: a fourth polymer layer provided on a surface opposite to a surface of the second polymer layer on which the first polymer layer is provided, wherein the fourth polymer layer composes of an ion transfer polymer, or composes of an ion transfer polymer and a stabilizer. 5 . The composite membrane of claim 4 , wherein the second polymer layer is positioned within a range of 10% or more and 90% or less of a thickness of the composite membrane from an upper surface or a lower surface of the composite membrane. 6 . The composite membrane of claim 1 , further comprising: a third polymer layer provided on a surface opposite to a surface of the first polymer layer on which the second polymer layer is provided, wherein the third polymer layer has an ion transfer polymer and a functional additive particle. 7 . The composite membrane of claim 6 , wherein the functional additive particle of the second polymer layer and the functional additive particle of the third polymer layer are different from each other. 8 . The composite membrane of claim 1 , wherein the functional additive particle has a diameter of 1 nm or more and 100 μm or less. 9 . The composite membrane of claim 1 , wherein the silicon element-containing particle is a silicon particle, a silica particle, or a silica particle having a sulfonic acid group. 10 . The composite membrane of claim 1 , wherein the metal particle or the metal oxide particle comprises at least one of Ag, Ni, Cu, Ti, Pt, and oxides thereof. 11 . The composite membrane of claim 1 , wherein at least one layer of the polymer layers comprises two or more ion transfer polymers which are different from each other. 12 . The composite membrane of claim 1 , wherein the ion transfer polymers comprised in an adjacent polymer layer among the polymer layers are the same as or different from each other. 13 . The composite membrane of claim 6 , wherein the second polymer layer and the third polymer layer have a portion where a concentration of the functional additive particle in each thickness direction of the composite membrane is different from those of the other portions. 14 . The composite membrane of claim 6 , wherein in the second polymer layer and the third polymer layer, a concentration of the functional additive particle is gradually changed in each thickness direction. 15 . The composite membrane of claim 1 , wherein the ion transfer polymer comprises one or more selected from an ion exchange resin of a hydrocarbon; a fluorine-based ion resin; and an anionic resin. 16 . An electrochemical cell comprising: a negative electrode; a positive electrode; and the composite membrane according to claim 1 disposed between the negative electrode and the positive electrode. 17 . The electrochemical cell of claim 16 , wherein the electrochemical cell is a fuel cell or a redox flow battery.
by recharging of redox couples containing fluids; Redox flow type batteries · CPC title
Fuel cells with polymeric electrolytes · CPC title
in the form of layered or coated products · CPC title
Organic polymers · CPC title
Non-ion-conducting additives, e.g. stabilisers, SiO2 or ZrO2 · CPC title
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