Claims
- 1. A stent, comprising:
a) a thin-walled tubular member having front and back open ends and having a first diameter for insertion into a vessel and a second diameter for deployment in said vessel; and b) at least one radiopaque tab mounted to at least one of said front and back open ends, said tab comprising a micro-alloy.
- 2. The stent according to claim 1, wherein said stent is made from a superelastic alloy.
- 3. The stent according to claim 2, wherein said superelastic alloy comprises from about 50.5 percent to about 60 percent Nickel and the remainder comprising Titanium.
- 4. The stent according to claim 1, wherein said micro-alloy comprises a first alloy and a second alloy.
- 5. The stent according to claim 4, wherein one of said first and second alloys is radiopaque.
- 6. The stent according to claim 5, wherein said radiopaque alloy is chosen from a group consisting of gold, platinum, tantalum, niobium, molybdenum, rhodium, palladium, silver, hafnium, tungsten and iridium.
- 7. A stent, comprising:
a) a thin-walled tubular member, made from a superelastic Nickel Titanium alloy, having front and back open ends and having a first diameter for insertion into a vessel and a second diameter for deployment in said vessel; and b) at least one radiopaque tab mounted to least one of said front and back open ends, said tab comprising a micro-alloy.
- 8. The stent according to claim 7, wherein said superelastic alloy comprises from about 50.5 percent to about 60 percent Nickel and the remainder comprising Titanium.
- 9. The stent according to claim 7, wherein said micro-alloy comprises a radiopaque alloy and Nickel Titanium.
- 10. The stent according to claim 9, wherein said radiopaque alloy is chosen from a group consisting of gold, platinum, tantalum, niobium, molybdenum, rhodium, palladium, silver, hafnium, tungsten and iridium.
- 11. A method of micro-alloying said first alloy and said second alloy on a portion of a medical device, comprising the steps of:
providing a medical device made from said first alloy; placing said medical device in a protective atmosphere; selectively melting said portion of said medical device with heat from a source
while a predetermined amount of said second alloy is added; forming a sphere through surface tension from said molten portion; and cooling said medical device, wherein said portion in the form of said sphere
remains attached to said medical device upon solidification.
- 12. The method of claim 11, wherein one of said first and second alloys is radiopaque.
- 13. A stent, comprising:
a) a thin-walled tubular member having front and back open ends and having a first diameter for insertion into a vessel and a second diameter for deployment in said vessel; and b) at least one radiopaque tab mounted to said thin-walled tubular member, said
tab comprising a micro-alloy.
- 14. A stent, comprising:
a) a thin-walled tubular member, made from a superelastic Nickel Titanium alloy, having front and back open ends and having a first diameter for insertion into a vessel and a second diameter for deployment in said vessel; and b) at least one radiopaque tab mounted to said thin-walled tubular member, said
tab comprising a micro-alloy.
RELATED APPLICATION
[0001] This application is a continuation-in-part application of Applicant's application, Ser. No. 09/005,401, now U.S. Pat. No. 6,129,755, filed Jan. 9, 1998, entitled “An Intravascular Stent Having an Improved Strut Configuration”.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09731957 |
Dec 2000 |
US |
Child |
10291109 |
Nov 2002 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09005401 |
Jan 1998 |
US |
Child |
09731957 |
Dec 2000 |
US |