Claims
- 1. A method of fabricating a cylindrical sputter target for a rotary cylindrical cathode, comprising:
(a) forming a cooling tube having a passage within to receive a cooling medium; (b) fabricating multiple annular rings using each of the basic metal constituents of a layer of desired alloy to be sputtered on to a substrate; and (c) attaching the fabricated annular rings over the cooling tube such that the exposed portions of the annular rings provide a homogeneous layer of the desired alloy on the substrate when used as the rotary cylindrical cathode during sputtering.
- 2. The method of claim 1, wherein the attaching step (c) further comprises:
(c)(i) threading outer ends of the cooling tube to threadedly engage a pair of clamping nuts; (c)(ii) arranging the fabricated annular rings including each of the metal constituents of the desired alloy such that the arranged annular rings provide a homogeneous layer of a desired alloy on the substrate during sputtering; (c)(iii) disposing the arranged fabricated annular rings over the formed cooling tube; and (c)(iv) clamping the annular rings using the pair of clamping nuts by threadedly engaging the clamping nuts over the threaded outer ends of the cooling tube such that the pair of clamping nuts rigidly hold the annular rings in place.
- 3. The method of claim 2, wherein the attaching step (c) further comprises:
(c)(v) tightening the clamping nuts to compress the annular rings together to form a mechanical seal between the annular rings to prevent the soldering material from wicking between the annular rings during soldering to further bond the cooling tube to the annular rings; and (c)(vi) soldering the annular rings to the cooling tube to further bond the annular rings to the cooling tube.
- 4. The method of claim 3, wherein one of the clamping nuts has an opening therein to receive a solder material for the soldering step (c)(iv).
- 5. The method of claim 3, wherein the desired alloy is made from a brittle material.
- 6. The method of claim 5, wherein the brittle material comprises CoCrPtB.
- 7. The method of claim 5, wherein the annular rings are made from materials selected from the group consisting of iron, cobalt, chromium, platinum, chrome alloy, cobalt alloy, and boron.
- 8. The method of claim 7, wherein the fabricating step (c) further comprises the step of:
(c)(vii) machining a cobalt sheet material to produce the cobalt annular ring.
- 9. The method of claim 7, wherein the fabricating step (c) further comprises the step of:
(c) (vii) stamping a platinum sheet material to produce the platinum annular ring.
- 10. The method of claim 7, wherein the fabricating step (c) further comprises the step of:
(c)(vii) machining a block of boron material to produce the boron annular ring.
- 11. The method of claim 7, wherein fabricating step (c) further comprises the steps of:
(c)(vii) mixing boron and cobalt powdered elements in a metal container; (c)(viii) sealing the mixture of the powdered elements in the container; (c)(ix) pressing the container including the mixture of the powdered elements at a high temperature to sinter and form an ingot of chromium; (c)(x) forming sheets of chromium by rolling the chromium ingot; and (c)(xi) cutting the sheets of chromium to produce the chromium annular ring.
- 12. The method of claim 1, wherein the annular rings have an outside diameter of greater than or equal to ½ an inch.
- 13. The method of claim 1, wherein the forming step (a) further includes the step of (a)(i) forming the cooling tube of a stainless steel material.
- 14. The method of claim 1, wherein the cooling medium is water.
- 15. A rotary cylindrical cathode for a sputter target, comprising:
a cooling tube having a passage within to receive a cooling medium, wherein the cooling tube has an outer surface; and a plurality of annular rings having inner and outer ring surfaces, wherein the annular rings are made of the basic metal constituents of a desired alloy, wherein the inner ring surface of the annular rings are arranged and disposed over the outer surface of the cooling tube such that the outer ring surfaces of the annular rings provide a substantially homogeneous layer of the desired alloy on a non-planar substrate during sputtering.
- 16. The cathode of claim 15, wherein the cooling tube further comprises:
a first threaded outer end; and a second threaded outer end.
- 17. The cathode of claim 16, further comprising:
a first clamping nut; and a second clamping nut; the first and second clamping nuts are threadedly engaged with the first and second threaded outer ends of the cooling tube to clamp and hold the disposed annular rings rigidly over the outer surface of the cooling tube such that a seal is formed between the plurality of annular rings to prevent solder from wicking between the plurality of annular rings as the inner ring surfaces of the plurality of annular rings are soldered to the outer surface of the cooling tube.
- 18. The cathode of claim 17, wherein one of the first and second clamping nuts has an opening to receive an indium solder to solder the inner ring surfaces of the annular rings to the outer surface of the cooling tube, such that the indium solder does not wick between the plurality of annular rings during soldering.
- 19. The cathode of claim 17, wherein the plurality of annular rings are made from materials selected from the group consisting of iron, cobalt, chromium, platinum, chrome alloy, cobalt alloy, and boron.
- 20. A rotary cylindrical cathode sputtering system for forming a dielectric layer of a desired alloy on a non-planar substrate comprising:
means to hold and expose the surface of the non-planar substrate to be coated with the dielectric layer; and means to provide a homogeneous layer of the desired alloy on the non-planar substrate.
Parent Case Info
[0001] RELATED APPLICATION
[0002] This application claims the benefit of U.S. Provisional Application Serial No. 60/208,995, filed Jun. 1, 2000 under 35 U.S.C. 119(e).
Provisional Applications (1)
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Number |
Date |
Country |
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60208995 |
Jun 2000 |
US |