IP Library › Granted Patent US 7,517,575
Granted Patent B2
US 7,517,575 · App. 11/428,045 · Granted Apr 14, 2009

Optical information recording media and silver alloy reflective films for the same

Assignee: Kobe Steel, Ltd.
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Quick Facts
Patent No.
US 7,517,575
App. No.
11/428,045
Granted
Apr 14, 2009
Kind
B2
Abstract

A silver alloy reflective film contains X1 as a component and has an enriched layer located in a region within 2 nm deep from the surface of the reflective film, in which the component X1 is enriched in the enriched layer at a higher concentration than the average concentration of X1 in the whole of the reflective film, wherein X1 is at least one alloying element selected from the group consisting of Bi, Si, Ge, Pb, Zn, Cd, Hg, Al, Ga, In, Tl, Sn, As, and Sb. The reflective film has stable and excellent basic properties as reflective films, such as initial reflectivity and durability, and satisfies further requirements, such as laser marking suitability. An optical information recording medium includes the reflective film and is excellent.

Claims (50)

1. A silver alloy reflective film comprising:

silver;

a total of 0.01-3 atomic % of X1; and

a total of 6-20 atomic % of Y1,

wherein the silver alloy reflective film comprises an enriched layer located in a region within 2 nm deep from the surface of the silver alloy reflective film,

wherein X1 is enriched in the enriched layer at a higher concentration than the average concentration of X1 in the whole of the silver alloy reflective film,

wherein X1 is at least one alloying element selected from the group consisting of Bi and Ge,

wherein Y1 is at least one alloying element selected from the group consisting of Nd, Sn, In and Gd, and

wherein the concentration of X1 in the enriched layer increases in a thickness direction from the surface of the silver alloy reflective film to a depth of 2 nm from the surface of the silver alloy reflective film.

2. The silver alloy reflective film according to claim 1 , wherein X1 is Bi and Ge.

3. The silver alloy reflective film according to claim 1 , wherein X1 is Bi.

4. The silver alloy reflective film according to claim 1 , wherein X1 is Ge.

5. An optical information recording medium comprising the silver alloy reflective film according to claim 1 .

6. A silver alloy reflective film comprising:

silver;

a total of 0.01-3 atomic % of Bi;

a total of 0.01-10 atomic % of X1; and

a total of 6-20 atomic % of Y1,

wherein the silver alloy reflective film comprises an enriched layer located in a region within 2 nm deep from the surface of the silver alloy reflective film,

wherein Bi and X1 are enriched in the enriched layer at a higher concentration than the average concentration of Bi and X1 in the whole of the silver alloy reflective film,

wherein X1 is at least one alloying element selected from the group consisting of Si, Ge, Pb, Zn, Cd, Hg, Al, Ga, In, Tl, Sn, As and Sb,

wherein Y1 is at least one alloying element selected from the group consisting of Nd, Sn, In and Gd, and

wherein the concentration of Bi and X1 in the enriched layer increases in a thickness direction from the surface of the silver alloy reflective film to a depth of 2 nm from the surface of the silver alloy reflective film.

7. The silver alloy reflective film according to claim 6 , wherein X1 is Ge.

8. An optical information recording medium comprising the silver alloy reflective film according to claim 6 .

9. A silver alloy reflective film comprising:

silver;

a total of 0.01-3 atomic % of X1; and

a total of 6-20 atomic % of Y1,

wherein the silver alloy reflective film comprises an enriched layer located in a region within 2 nm deep from the surface of the silver alloy reflective film,

wherein X1 is enriched in the enriched layer at a higher concentration than the average concentration of X1 in the whole of the silver alloy reflective film,

wherein X1 is at least one alloying element selected from the group consisting of Bi and Ge,

wherein Y1 is at least one alloying element selected from the group consisting of Nd, Sn, In and Gd, and

wherein the concentration of X1 in the enriched layer decreases in a thickness direction from the surface of the silver alloy reflective film to a depth of 2 nm from the surface of the silver alloy reflective film.

10. The silver alloy reflective film according to claim 9 , wherein X1 is Bi and Ge.

11. The silver alloy reflective film according to claim 9 , wherein X1 is Bi.

12. The silver alloy reflective film according to claim 9 , wherein X1 is Ge.

13. An optical information recording medium comprising the silver alloy reflective film according to claim 9 .

14. A silver alloy reflective film comprising:

silver;

a total of 0.01-3 atomic % of Bi;

a total of 0.01-10 atomic % of X1; and

a total of 6-20 atomic % of Y1,

wherein the silver alloy reflective film comprises an enriched layer located in a region within 2 nm deep from the surface of the silver alloy reflective film,

wherein Bi and X1 are enriched in the enriched layer at a higher concentration than the average concentration of Bi and X1 in the whole of the silver alloy reflective film,

wherein X1 is at least one alloying element selected from the group consisting of Si, Ge, Pb, Zn, Cd, Hg, Al, Ga, In, Tl, Sn, As and Sb,

wherein Y1 is at least one alloying element selected from the group consisting of Nd, Sn, In and Gd, and

wherein the concentration of Bi and X1 in the enriched layer decreases in a thickness direction from the surface of the silver alloy reflective film to a depth of 2 nm from the surface of the silver alloy reflective film.

15. The silver alloy reflective film according to claim 14 , wherein X1 is Ge.

16. An optical information recording medium comprising the silver alloy reflective film according to claim 14 .

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 10, 2006
From: FUJII, HIDEO; TAUCHI, YUKI; NAKAI, JUNICHI
To: KABUSHIKI KAISHA KOBE SEIKO SHO (KOBE STEEL, LTD.)
Reel/Frame 018388/0722 →
Priority Claims (1)
JP 2005-213204 · Jul 22, 2005 · national
Continuity (1)
Related Publication 20070020427A1 · Jan 25, 2007