IP Library Granted Patent US 12671096
Granted Patent B2
US 12671096 · App. 17/923,342 · Granted Jun 30, 2026

Porous silicon oxycarbide composite material and method for manufacturing same

Inventors: Yusaku Goto (Chiba, JP); Shinji Kato (Chiba, JP)
Assignee: DIC Corporation
H01M4/9075H01M4/8626H01M4/8652H01M4/9058H01M4/96
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Quick Facts
Patent No.
US 12671096
App. No.
17/923,342
Granted
Jun 30, 2026
Kind
B2
Abstract

A porous silicon oxycarbide composite material comprises a porous silicon oxycarbide having a three-dimensional skeleton structure, and a carbon-containing material supported by the three-dimensional skeleton structure, wherein the porous silicon oxycarbide composite material has a BET specific surface area of 100 m 2 /g or more and an electrical conductivity of 1.0×10 −6 S/cm or more.

Claims (31)

1 . A porous silicon oxycarbide composite material comprising:

a porous silicon oxycarbide forming a three-dimensional skeleton structure, and

a carbon-containing material supported by the three-dimensional skeleton structure,

the porous silicon oxycarbide composite material having a BET specific surface area of 100 m 2 /g or more, and having an electrical conductivity of 1.0×10 −6 S/cm or more.

2 . The porous silicon oxycarbide composite material according to claim 1 , which has a total pore volume of 0.5 cm 3 /g or more.

3 . The porous silicon oxycarbide composite material according to claim 1 , which has a pore size of 2 to 200 nm.

4 . The porous silicon oxycarbide composite material according to claim 1 , wherein the content of the carbon-containing material in the porous silicon oxycarbide composite material is 2.5 to 50% by mass.

5 . The porous silicon oxycarbide composite material according to claim 4 , wherein the carbon-containing material comprises one member or two or more members selected from carbon black, a carbon nanofiber, a carbon nanotube, and lowly-crystalline nanocarbon.

6 . The porous silicon oxycarbide composite material according to claim 5 , wherein the primary particles of the carbon-containing material have an average diameter of 10 to 200 nm.

7 . An electrode for use in a fuel cell, the electrode having a layer comprising the porous silicon oxycarbide composite material according to claim 1 .

8 . A method for producing a porous silicon oxycarbide composite material, comprising the steps of:

(A) adding an organic alkoxysilane to an acidic aqueous solution containing a surfactant and a pH adjustor to cause a sol-gel reaction of the organic alkoxysilane, forming a gel;

(B) cleaning the gel with an alcohol;

(C) drying the cleaned gel to form a porous silicon oxycarbide precursor; and

(D) calcining the porous silicon oxycarbide precursor to obtain a porous silicon oxycarbide composite material,

wherein, in the step (A), a carbon-containing material or an organic polymer is further added to the acidic aqueous solution to form a gel containing the carbon-containing material or the organic polymer.

9 . The method for producing a porous silicon oxycarbide composite material according to claim 8 , wherein, in the step (A), the sol-gel reaction is conducted at 25 to 80° C.

10 . The method for producing a porous silicon oxycarbide composite material according to claim 8 , wherein the organic alkoxysilane is represented by the following formula (1) or (2):

wherein R 1 is any one group selected from a methyl group, an ethyl group, a vinyl group, and a phenyl group, R 2 represents a methyl group, R 3 represents a methyl group or an ethyl group, and integer x is 0 or 1,

wherein R 4 includes any one group selected from a methylene group, an ethylene group, a hexylene group, a vinylene group, a phenylene group, and a biphenylene group, R 5 represents a methyl group, R 6 represents a methyl group or an ethyl group, and integer y is 0 or 1.

11 . The method for producing a porous silicon oxycarbide composite material according to claim 8 , wherein the content of the surfactant in the acidic aqueous solution is 0.1 to 50% by mass.

12 . The method for producing a porous silicon oxycarbide composite material according to claim 11 , wherein the surfactant is a nonionic surfactant and/or a cationic surfactant.

13 . The method for producing a porous silicon oxycarbide composite material according to claim 8 , wherein the content of the pH adjustor in the acidic aqueous solution is 5 to 50% by mass.

14 . The method for producing a porous silicon oxycarbide composite material according to claim 12 , wherein the pH adjustor contains any one selected from urea, ammonia, and sodium hydroxide.

15 . The method for producing a porous silicon oxycarbide composite material according to claim 8 , wherein the mass ratio of the carbon-containing material or organic polymer and the organic alkoxysilane is 2.5 to 50:97.5 to 50.

16 . The method for producing a porous silicon oxycarbide composite material according to claim 15 , wherein the carbon-containing material comprises one member or two or more members selected from carbon black, a carbon nanofiber, a carbon nanotube, and lowly-crystalline nanocarbon.

17 . The method for producing a porous silicon oxycarbide composite material according to claim 16 , wherein primary particles of the carbon-containing material have an average diameter of 10 to 200 nm.

18 . The method for producing a porous silicon oxycarbide composite material according to claim 15 , wherein the organic polymer comprises one member or two or more members selected from a phenolic resin, polystyrene, and polydivinylbenzene.

19 . The method for producing a porous silicon oxycarbide composite material according to claim 8 , wherein, in the step (B), the surfactant is removed from the acidic aqueous solution, and further water in the acidic aqueous solution is replaced by the alcohol.

20 . The method for producing a porous silicon oxycarbide composite material according to claim 8 , wherein, in the step (C), the cleaned gel is dried at room temperature under atmospheric pressure.

21 . The method for producing a porous silicon oxycarbide composite material according to claim 8 , wherein, in the step (D), the porous silicon oxycarbide composite material is calcined at 700 to 1,200° C.