Claims
- 1. A process for preparing a conductor for transmission of electricity, which comprises reacting graphite with a Bronsted acid selected from hydrogen fluoride, hydrogen chloride, hydrogen bromide, nitric acid, nitrous acid, sulfuric acid or perchloric acid and an electron acceptor metal halide selected from a boron trihalide, a pentahalide of a Group V A or B metal, a tetrahalide of a Group IV A or B metal, or mixtures thereof wherein the molar ratio of the Bronsted acid to metal halide ranges from about 0.01:1 to about 100:1, the reaction is conducted under a substantially moisture free, inert atmosphere, at a temperature of at least about 10.degree. C. and the Bronsted acid and metal halide or boron trihalide are in a liquid or gas phase, said reaction producing a graphite intercalation compound; and shaping said graphite intercalation compound into a form adapted for the conduction of electricity.
- 2. A process according to claim 1 wherein the conductor is a metal plated filamentary electrical conductor, the graphite intercalation compound is in a filament form, and shaping is accomplished by plating the filament with a metal by means of an electrolytic metal plating process.
- 3. A process according to claim 1 wherein the conductor is a stranded electrical conductor;
- the graphite intercalation compound is in a filament form; and
- shaping in accomplished by twisting the filaments together with metal wires to form the stranded conductor.
- 4. A process according to claim 1 wherein the conductor is a composite electrical conductor;
- the graphite intercalation compound is in particulate form; and
- shaping is accomplished by mixing the particulate compound with metal particles to form a mixture, compressing the mixture under sufficient pressure to cause the compound and metal particles to become substantially continuous phases and to have the form of a unitary structure, and annealing the unitary structure in a hydrogen atmosphere at a temperature of about 250.degree. C. to 1000.degree. C. to produce the composite conductor.
- 5. A process according to claim 1 wherein the conductor is a metal coated electrical conductor;
- the graphite intercalation compound is in particulate form; and
- shaping is accomplished by filling a metal tube with the particulate compound, sealing the ends of the tube, and swaging the filled tube to a smaller diameter to produce the metal coated electrical conductor in the form of a wire having a substantially continuous phase of graphite intercalation compound.
- 6. A process for preparing a conductor for transmission of electricity which comprises reacting graphite with hydrogen fluoride and an electron acceptor metal halide selected from a boron trihalide, a pentahalide of a group V A or B metal, a tetrahalide of a Group IV A or B metal, or mixtures thereof, wherein the molar ratio of the hydrogen fluoride to metal halide ranges from about 0.01:1 to about 100:1, the reaction is conducted under a substantially moisture free, inert atmosphere, at a temperature of at least about 10.degree. C. and the metal halide is in liquid or gas phase, said reactor producing a graphite intercalation compound; and shaping said graphite intercalation compound into a form adapted for the conduction of electricity.
- 7. The process in accordance with claim 6, wherein the metal halide is selected from the group consisting of BF.sub.3, SiF.sub.4, HfF.sub.4, TiF.sub.4, ZrF.sub.4, PF.sub.5, NbF.sub.5, TaF.sub.5, AsF.sub.5, SbF.sub.5 and mixtures thereof.
- 8. The process in accordance with claim 6, wherein said molar ratio is about 100:1.
- 9. A process according to claim 6 wherein the conductor is a metal plated filamentary electrical conductor, the graphite intercalation compound is in a filament form, and shaping is accomplished by plating the filament with a metal by means of an electrolytic metal plating process.
- 10. A process according to claim 6 wherein the conductor is a stranded electrical conductor;
- the graphite intercalation compound is in a filament form; and
- shaping is accomplished by twisting the filaments together with metal wires to form the stranded conductor.
- 11. A process according to claim 6 wherein the conductor is a composite electrical conductor;
- the graphite intercalation compound is in particulate form; and
- shaping is accomplished by mixing the particulate compound with metal particles to form a mixture, compressing the mixture under sufficient pressure to cause the compound and metal particles to become substantially continuous phases and to have the form of a unitary structure, and annealing the unitary structure in a hydrogen atmosphere at a temperature of about 250.degree. C. to 1000.degree. C. to produce the composite conductor.
- 12. A process according to claim 6 wherein the conductor is a metal coated electrical conductor;
- the graphite intercalation compound is in particulate form; and
- shaping is accomplished by filling a metal tube with the particulate compound, sealing the ends of the tube, and swaging the filled tube to a smaller diameter to produce the metal coated electrical conductor in the form of a wire having a substantially continuous phase of graphite intercalation compound.
- 13. A process for preparing a conductor for transmission of electricity which comprises reacting graphite with an acid halide system comprised of a Bronsted acid selected from hydrogen fluoride, hydrogen chloride, hydrogen bromide, nitric acid, nitrous acid, sulfuric acid or perchloric acid; and an electron acceptor metal halide selected from boron trihalide, a pentahalide of a Group V A or B metal, a tetrahalide of a Group IV A or metal, or mixtures thereof wherein the molar ratio of the Bronsted acid to metal halide ranges from about 0.01:1 to about 100:1, the reaction is conducted under a substantially moisture free, inert atmosphere, at a temperature of at least about 10.degree. C. and the Bronsted acid and metal halide are in a liquid or gas phase.
- 14. The process in accordance with claim 13 wherein said Bronsted acid is hydrogen fluoride.
- 15. A process for conducting electricity comprising:
- providing an electrically conductive material, said material comprising:
- (a) graphite;
- (b) an acid halide system, said system being comprised of:
- (i) a Bronsted acid selected from hydrogen fluoride, hydrogen chloride, hydrogen bromide, nitric acid, nitrous acid, sulfuric acid or perchloric acid; and
- (ii) an electron acceptor metal halide selected from boron trihalide, a tetrahalide of a Group IV A or B metal, a pentahalide of a Group V A or B metal, or a mixture thereof; the molar ratio of the Bronsted acid to the metal halide being from about 0.01:1 to about 100:1; and
- connecting said material between an electrical source and a point of electrical use.
- 16. The process in accordance with claim 15, wherein said Bronsted acid is hydrogen fluoride.
- 17. The process in accordance with claim 15, wherein the metal halide is selected from the group consisting of BF.sub.3, SiF.sub.4, HfF.sub.4, TiF.sub.4, ZrF.sub.4, PF.sub.5, NbF.sub.5, TaF.sub.5, AsF.sub.5, SbF.sub.5 and mixtures thereof.
CROSS-REFERENCE TO RELATED APPLICATIONS
This is a continuation of application Ser. No. 206,647 filed Nov. 13, 1980; which in turn is a continuation-in-part of application Ser. No. 499,834 filed Aug. 23, 1974, both now abandoned.
US Referenced Citations (2)
| Number |
Name |
Date |
Kind |
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3984352 |
Rodewald |
Oct 1976 |
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|
4293450 |
Vogel |
Oct 1981 |
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Continuations (1)
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Number |
Date |
Country |
| Parent |
206647 |
Nov 1980 |
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Continuation in Parts (1)
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Number |
Date |
Country |
| Parent |
499834 |
Aug 1974 |
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