Claims
- 1. A, homogeneously boron doped, polymer derived, silicon carbide fiber produced by the process comprising the steps of providing a spin dope solution comprising a silicon carbide forming organosilicon polymer, a solvent, a soluble boron precursor and a nitrogen containing precursor which reacts with said soluble boron precursor to form a boron compound such that boron remains in said fiber after heat treating; forming green fibers from said spin dope solution by spinning; and heat treating to sinter said green fibers to produce, homogeneously doped, boron containing fibers having a tensile strength of at least 2.0 GPa, wherein the fiber retains at least 90% of the original tensile strength after being heated treated at a temperature of up to 1800.degree. C.
- 2. A sintered, boron doped, polymer derived, silicon carbide fiber where said boron is homogeneously dispersed within said fiber, wherein the fiber retains at least 90% of the original tensile strength after being heated treated at a temperature of up to 1800.degree. C.
- 3. The fiber of claim 2, where said fiber has average tensile strength of at least 2.0 GPa after heat treatment at 1950 degrees C.
- 4. The fiber of claim 2, where said fiber has average tensile strength within the range of about 2 to 4 GPa at room temperature.
- 5. The fiber of claim 1, where said organosilicon polymer is present in said solution from about 50 to 80 weight percent.
- 6. The fiber of claim 1, where said soluble boron precursor is present in said solution from about 0.25 to 4 weight percent.
- 7. The fiber of claim 1, where said heat treating includes the step of heating said green fibers in the range of about 25 to 300 degrees C. in an oxidizing atmosphere, and then up to about 1700 to 2000 degrees C. in a non-oxidizing atmosphere.
- 8. The fiber of claim 1, where said soluble boron precursor and said nitrogen containing precursor are premixed, then added to said spin dope solution containing said silicon carbide forming organosilicon polymer and said solvent.
- 9. The fiber of claim 1, where said heat treatment is performed at between 1700 and 2000 degrees C.
- 10. The fiber of claim 1, where said heat treatment is performed at 1950 degrees C.
- 11. The fiber of claim 1, where said boron is homogeneously dispersed on a molecular level within said fiber.
- 12. The fiber of claim 2, where said boron is homogeneously dispersed on a molecular level within said fiber.
- 13. The fiber of claim 1, where said fiber has an average tensile strength of 2.85 GPa.
- 14. The fiber of claim 4, where said fiber has an average tensile strength of 2.85 GPa.
Parent Case Info
This application is a divisional of application Ser. No. 08/683,475, filed Jul. 18, 1996, now U.S. Pat. No. 5,792,416 which claims the benefit of U.S. provisional application No. 60/017,131, filed May 17, 1996.
Government Interests
This invention was made with Government support under grant/contract no. N00014-91-J-4075 awarded by the Office of Naval Research and Defense Advanced Research Projects Agency. The Government has certain rights in the invention.
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Divisions (1)
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Number |
Date |
Country |
Parent |
683475 |
Jul 1996 |
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