Claims
- 1. A system for the delivery of high energy pulsed laser light utilizing an optical waveguide, wherein said waveguide comprises an optical fiber having an energy-conducting core made of synthetic silica that is substantially free of metallic impurities and that is doped with a material that functions to repair inherent structural defects in the silica, and further including an energy coupler at one end of said fiber for enabling energy pulses to be coupled into said fiber while maintaining their energy level without damage to said fiber.
- 2. The delivery system of claim 1 wherein said energy coupler includes at least one lens for changing the diameter of a beam of laser light to be substantially the same as the diameter of said fiber.
- 3. The delivery system of claim 1 further including a lens at one end of said fiber for concentrating the energy emerging from said end into a convergent beam.
- 4. The delivery system of claim 1 wherein said material includes an OH.sup.- radical.
- 5. The delivery system of claim 4 wherein said silica contains about 200 to about 2000 ppM of an OH.sup.- radical
- 6. The delivery system of claim 1 wherein said material includes fluorine.
- 7. The delivery system of claim 6 wherein said silica contains between about 0.25 and about 2.0 wt % fluorine.
- 8. The delivery system of claim 7 wherein said fluorine content is about 1.0 wt %.
- 9. The delivery system of claim 1 wherein said waveguide comprises a bundle of flexible close-packed synthetic silica fibers to produce a relatively large cross-sectional beam which is delivered to a desired site with uniform energy distribution over the area of said beam..
- 10. The delivery system of claim 9 wherein said core is surrounded by a cladding made from an organic material.
- 11. The delivery system of claim 10 wherein said organic material is acrylate.
- 12. An angioplasty system, comprising:
- a source of high energy, pulsed ultraviolet laser light;
- an optical waveguide for delivering said laser light to the site of a vascular lesion, said waveguide comprising an optical fiber having an energy-conducting core comprised of synthetic silica that is substantially free of metallic impurities and that is doped with at least one of an OH.sup.- radical and fluorine; and
- an energy coupler for coupling the laser light from said source into an input end of said waveguide.
- 13. The angioplasty system of claim 12 wherein said waveguide further includes a cladding of organic material which surrounds said silica core.
- 14. The angioplasty system of claim 12 wherein said laser light source produces the laser light energy in pulses each of which has a duration substantially greater than 10 nsec.
- 15. The angioplasty system of claim 14 wherein said pulses each have a duration in the range of 100-125 nsec.
- 16. An angioplasty system, comprising:
- a source of visible light;
- a source of high peak energy pulsed ultraviolet laser light;
- a first fiber-optic waveguide which receives at least the laser light at one end thereof and conducts it to the distal end thereof, said waveguide being comprised of synthetic silica that is substantially free of metallic impurities and that is doped with a material that functions to repair inherent structural defects in the silica;
- a lens on said distal end of said first waveguide for producing a pattern of light in which at least a majority of the light energy is focused upon a focal point;
- a second fiber-optic waveguide disposed alongside said first waveguide for receiving and conducting the image of an area in which said laser energy is focused; and
- means for viewing an image conducted by said second waveguide.
- 17. The angioplasty system of claim 16 wherein said material comprises fluorine.
- 18. The angioplasty system of claim 16 wherein said
- material comprises an OH.sup.- radical.
- 19. The angioplasty system of claim 16 wherein said material comprises a combination of fluorine and an OH.sup.- radical.
- 20. The angioplasty system of claim 16 further including an energy coupler at said one end of said first waveguide for coupling laser pulses having a predetermined energy level into said first waveguide without damage thereto.
- 21. The angioplasty system of claim 16 further including a jacket surrounding all of said waveguides, said jacket being composed of a material that is not degraded by ultraviolet light losses from bends in the waveguides.
- 22. The angioplasty system of claim 16 wherein said laser light source produces the laser light energy in pulses each of which has a duration substantially greater than 10 nsec.
- 23. The angioplasty system of claim 22 wherein said pulses each have a duration in the range of 100-125 nsec.
CROSS-REFERENCE TO RELATED APPLICATIONS
This is a continuation-in-part of application Serial No 779,844 filed Sept. 25, 1985 (now U.S. Pat. No. 4,732,448), which is itself a continuation-in-part of application Ser. No. 679,538 filed Dec. 7, 1984 (now U.S. Pat. No. 4,641,912), the disclosures of which are herein incorporated by reference thereto.
US Referenced Citations (24)
Foreign Referenced Citations (2)
Number |
Date |
Country |
2517019 |
Oct 1976 |
DEX |
59-228602 |
Dec 1984 |
JPX |
Non-Patent Literature Citations (1)
Entry |
Linsker et al, "Far-Ultraviolet Laser Ablation of Atherosclerotic Lesions", Lasers in Surgery and Medicine, 4:201-206, Jul. 25, 1984. |
Continuation in Parts (2)
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Number |
Date |
Country |
Parent |
779844 |
Sep 1985 |
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Parent |
679538 |
Dec 1984 |
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