Claims
- 1. A process for producing an electro-conductive oxide particle comprising indium atoms, antimony atoms and oxygen atoms in a molar ratio of In:Sb:O being 1:0.02-1.25:1.55-4.63 and having a primary particle diameter of from 5 to 500 nm, which comprises mixing an indium compound with an antimony oxide particle having a primary particle diameter of from 2 to 300 nm in a molar ratio of In/Sb being from 0.8 to 50, and calcining the mixture in an atmosphere at a temperature of from 720.degree. to 850.degree. C.
- 2. A process for producing an electro-conductive oxide particle comprising indium atoms, antimony atoms and oxygen atoms in a molar ratio of In:Sb:O being 1:0.83-1.25:3.58-4.63, having a primary particle diameter of from 5 to 500 nm and having a crystal structure of indium antimonate, which comprises mixing an indium compound with an antimony oxide particle having a primary particle diameter of from 2 to 300 nm in a molar ratio of In/Sb being from 0.8 to 1.2, and calcining the mixture in an atmosphere at a temperature of from 720.degree. to 850.degree. C.
- 3. A process for producing a mixture comprising (1) electro-conductive oxide particle having a crystal structure of indium antimonate, (2) an electro-conductive oxide particle having a crystal structure of indium oxide, and (3) an electro-conductive oxide particle having a crystal structure of indium antimonate and a crystal structure of indium oxide, wherein the respective particles have a primary particle diameter of from 5 to 500 nm, and said mixture comprises indium atoms, antimony atoms and oxygen atoms in a molar ratio of In:Sb:O being 1:0.10-0.83:1.75-3.58, which comprises mixing an indium compound with antimony oxide particles having a primary particle diameter of from 2 to 300 nm in a molar ratio of In/Sb being from 1.2 to 10, and calcining the mixture in an atmosphere at a temperature of from 720.degree. to 850.degree. C.
- 4. A process for producing an electro-conductive oxide particle comprising indium atoms, antimony atoms and oxygen atoms in a molar ratio of In:Sb:O being 1:0.02-0.10:1.55-1.75, having a primary particle diameter of from 5 to 500 nm and having a crystal structure of indium oxide, which comprises mixing an indium compound with an antimony oxide particle having a primary particle diameter of from 2 to 300 nm in a molar ratio of In/Sb being from 10 to 50, and calcining the mixture in an atmosphere at a temperature of from 720.degree. to 850.degree. C.
- 5. The process for producing the electro-conductive oxide particle according to claim 1, wherein the indium compound is at least one indium compound selected from the group consisting of indium hydroxide, indium oxide, an indium salt of inorganic acid, and an indium salt of organic acid and an organic indium compound.
- 6. The process for producing the electro-conductive oxide particle according to claim 2, wherein the indium compound is at least one indium compound selected from the group consisting of indium hydroxide, indium oxide, an indium salt of inorganic acid, and an indium salt of organic acid and an organic indium compound.
- 7. The process for producing the electro-conductive oxide particle according to claim 3, wherein the indium compound is at least one indium compound selected from the group consisting of indium hydroxide, indium oxide, an indium salt of inorganic acid, and an indium salt of organic acid and an organic indium compound.
- 8. The process for producing the electro-conductive oxide particle according to claim 4, wherein the indium compound is at least one indium compound selected from the group consisting of indium hydroxide, indium oxide, an indium salt of inorganic acid, and an indium salt of organic acid and an organic indium compound.
- 9. The process for producing the electro-conductive oxide particle according to claim 1, wherein the antimony oxide particle having a primary particle diameter of from 2 to 300 nm, is a diantimony pentoxide particle.
- 10. The process for producing the electro-conductive oxide particle according to claim 2, wherein the antimony oxide particle having a primary particle diameter of from 2 to 300 nm, is a diantimony pentoxide particle.
- 11. The process for producing the electro-conductive oxide particle according to claim 3, wherein the antimony oxide particle having a primary particle diameter of from 2 to 300 nm, is a diantimony pentoxide particle.
- 12. The process for producing the electro-conductive oxide particle according to claim 4, wherein the antimony oxide particle having a primary particle diameter of from 2 to 300 nm, is a diantimony pentoxide particle.
- 13. The process for producing the electro-conductive oxide particle according to claim 5, wherein the antimony oxide particle having a primary particle diameter of from 2 to 300 nm, is a diantimony pentoxide particle.
- 14. The process for producing the electro-conductive oxide particle according to claim 6, wherein the antimony oxide particle having a primary particle diameter of from 2 to 300 nm, is a diantimony pentoxide particle.
- 15. The process for producing the electro-conductive oxide particle according to claim 7, wherein the antimony oxide particle having a primary particle diameter of from 2 to 300 nm, is a diantimony pentoxide particle.
- 16. The process for producing the electro-conductive oxide particle according to claim 8, wherein the antimony oxide particle having a primary particle diameter of from 2 to 300 nm, is a diantimony pentoxide particle.
- 17. The process according to claim 1, wherein the antimony oxide particle is selected from the group consisting of diantimony pentoxide sol, a hexantimony tridecoxide sol, a hydrous diantimony tetroxide sol and a colloidal diantimony trioxide powder.
- 18. The process according to claim 2, wherein the antimony oxide particle is selected from the group consisting of diantimony pentoxide sol, a hexantimony tridecoxide sol, a hydrous diantimony tetroxide sol and a colloidal diantimony trioxide powder.
- 19. The process according to claim 5, wherein the antimony oxide particle is selected from the group consisting of diantimony pentoxide sol, a hexantimony tridecoxide sol, a hydrous diantimony tetroxide sol and a colloidal diantimony trioxide powder.
- 20. The process according to claim 6, wherein the antimony oxide particle is selected from the group consisting of diantimony pentoxide sol, a hexantimony tridecoxide sol, a hydrous diantimony tetroxide sol and a colloidal diantimony trioxide powder.
Priority Claims (1)
Number |
Date |
Country |
Kind |
5-314393 |
Nov 1993 |
JPX |
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Parent Case Info
This is a division of application Ser. No. 08/343,955 filed on Nov. 17, 1994, now U.S. Pat. No. 5,582,909.
US Referenced Citations (7)
Foreign Referenced Citations (1)
Number |
Date |
Country |
6-219743 |
Aug 1994 |
JPX |
Non-Patent Literature Citations (1)
Entry |
Database WPI, Derwent Publications Ltd., AN 92 223634, JP-A-04 149 837, May 22, 1992. |
Divisions (1)
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Number |
Date |
Country |
Parent |
343955 |
Nov 1994 |
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