IP Library Granted Patent US 10,868,322
Granted Patent B2
US 10,868,322 · App. 16/318,319 · Granted Dec 15, 2020

Hydrocarbon-based cross-linked membrane in which nanoparticles are used, method for manufacturing said membrane, and fuel cell

Inventor: Jedeok Kim (Tsukuba, JP)
Assignee: NATIONAL INSTITUTE FOR MATERIALS SCIENCE
H01M8/1027C08G75/20C08G77/392H01B1/06H01B13/00H01M8/02H01M8/10H01M8/1032H01M2008/1095H01M2300/0082Y02P70/50
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Quick Facts
Patent No.
US 10,868,322
App. No.
16/318,319
Granted
Dec 15, 2020
Kind
B2
Abstract

A hydrocarbon-based cross-linked membrane used for the proton exchange membrane of a fuel cell, containing a cross-linked composite mediated by the sulfonate groups of SPPSU and SPOSS. Where SPPSU is represented by formula (I), where a, b, c, and d are each independently an integer of 0-4, and the total of a, b, c, and d is a rational number greater than 1 in terms of the average per repeating unit, and SPOSS is represented by formula (II), where each R is independently a hydrogen, a hydroxyl group, a straight or branched C1-20 alkyl or alkoxyl group optionally containing a substituent, or any of the above-mentioned structures, each e is independently an integer of 0-2 for R, x is an integer of 1-20, and the total number of sulfonate groups is a rational number greater than 2 in terms of the average per molecule.

Claims (20)

1. A hydrocarbon-based cross-linked membrane used in a proton exchange membrane of a proton exchange membrane fuel cell, the hydrocarbon-based cross-linked membrane comprising:

a cross-linked composite of a sulfonated polyphenyl sulfone (SPPSU) and a sulfonated polyhedral oligomeric silsesquioxane (SPOSS) via sulfonic acid groups.

2. The hydrocarbon-based cross-linked membrane according to claim 1 , wherein the cross-linked composite is a cross-linked composite of:

the SPPSU having a structure represented by the formula (I):

(wherein a, b, c, and d are each independently an integer of 0 to 4, the total of a, b, c, and d is a rational number greater than 1 on average per repeating unit), and

the SPOSS having a structure represented by the formula (II):

(wherein R is each independently hydrogen, a hydroxyl group, a straight or branched alkyl group or alkoxyl group with a carbon number of 1 to 20 which may have a substituent, or any of the above-described structures; e is (if present) an integer of 0 to 2 for each independent R; x is (if present) an integer of 1 to 20, and the total number of sulfonic acid groups is a rational number greater than 2 on average per molecule).

3. The hydrocarbon-based cross-linked membrane according to claim 2 , wherein the total of a, b, c, and d is 2 or more on average per repeating unit, and/or the total of e is 8 or 16 on average per molecule.

4. The hydrocarbon-based cross-linked membrane according to claim 1 , wherein the mass proportion of the SPOSS to the SPPSU in the cross-linked composite is 10% by mass or less.

5. A proton exchange membrane fuel cell comprising the hydrocarbon-based cross-linked membrane according to claim 1 as a proton exchange membrane.

6. A method for producing a hydrocarbon-based cross-linked membrane used in a proton exchange membrane of a proton exchange membrane fuel cell, comprising

a step of forming a cross-linked composite by subjecting a sulfonated polyphenyl sulfone (SPPSU) and a sulfonated polyhedral oligomeric silsesquioxane (SPOSS) to a cross-linking reaction via sulfonic acid groups under heating.

7. The method for producing a hydrocarbon-based cross-linked membrane according to claim 6 , wherein the step of forming a cross-linked composite comprises:

subjecting the SPPSU represented by the formula (I):

(wherein a, b, c, and d are each independently an integer of 0 to 4, the total of a, b, c, and d is a rational number greater than 1 on average per repeating unit), and

the SPOSS represented by the formula (II):

(wherein R is each independently hydrogen, a hydroxyl group, a straight or branched alkyl group or alkoxyl group with a carbon number of 1 to 20 which may have a substituent, or any of the above-described structures, e is (if present) an integer of 0 to 2 for each independent R, x is (if present) an integer of 1 to 20, and the total number of sulfonic acid groups is a rational number greater than 2 on average per molecule) to a cross-linking reaction via sulfonic acid groups.

8. The method for producing a hydrocarbon-based cross-linked membrane according to claim 7 , wherein the total of a, b, c, and d is 2 or more on average per repeating unit, and/or the total of e is 8 or 16 on average per molecule.

9. The method for producing a hydrocarbon-based cross-linked membrane according to claim 6 , wherein the mass proportion of the SPOSS to the SPPSU in the cross-linked composite is 10% by mass or less.

10. The method for producing a hydrocarbon-based cross-linked membrane according to claim 6 , wherein the step of forming a cross-linked composite is followed by a step of heat-treating the thus obtained cross-linked composite in sulfuric acid.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 16, 2019
From: KIM, JEDEOK
To: NATIONAL INSTITUTE FOR MATERIALS SCIENCE
Reel/Frame 048082/0549 →
Priority Claims (1)
JP 2016-142277 · Jul 20, 2016 · national
Continuity (1)
Related Publication 20190288319A1 · Sep 19, 2019