IP Library Granted Patent US 7,896,982
Granted Patent B2
US 7,896,982 · App. 11/303,844 · Granted Mar 1, 2011

Bulk solidifying amorphous alloys with improved mechanical properties

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Quick Facts
Patent No.
US 7,896,982
App. No.
11/303,844
Granted
Mar 1, 2011
Kind
B2
Abstract

Bulk solidifying amorphous alloys exhibiting improved processing and mechanical properties and methods of forming these alloys are provided. The bulk solidifying amorphous alloys are composed to have high Poisson's ratio values. Exemplary Pt-based bulk solidifying amorphous alloys having such high Poisson's ratio values are also described. The Pt-based alloys are based on Pt—Ni—Co—Cu—P alloys, and the mechanical properties of one exemplary alloy having a composition of substantially Pt 57.5 Cu 14.7 Ni 5.3 P 22.5 are also described.

Claims (44)

1. A bulk-solidifying amorphous alloy having the following composition:

(Pt,Pd) x M y P z

wherein M is a combination of at least Cu and Ni, having a ratio of Cu to Ni of from about 1 to 4, x is from about 20 to 60 atomic percent, y is from 15 to 60 atomic percent and z is from about 16 to 24 atomic percent, and wherein Pd is optionally included in the alloy;

wherein the combination of components has a Poisson's ratio of at least 0.38; and

wherein, the alloy exhibiting an elastic strain limit of at least 1.5%, a ductility of more than 10% under compression geometries with aspect ratio more than 2, a bend ductility of more than 3% under bending geometries with a thickness more than 2.0 mm, and a fracture toughness greater than K1C>35 MPa m −1/2 .

2. The bulk solidifying amorphous alloy of claim 1 , wherein the bulk-solidifying amorphous alloy has an elastic strain limit n the range of 1.5% to 2.0%.

3. The bulk solidifying amorphous alloy of claim 1 , wherein the bulk-solidifying amorphous alloy has a Poisson's ratio of 0.42 or higher.

4. The bulk solidifying amorphous alloy of claim 3 , wherein the bulk-solidifying amorphous alloy exhibits a ductility of more than 20% under compression geometries with aspect ratio more than 2.

5. The bulk solidifying amorphous alloy of claim 3 , wherein the bulk-solidifying amorphous alloy exhibits a bend ductility of more than 3% under bending geometries with thickness more than 4.0 mm.

6. The bulk solidifying amorphous alloy of claim 3 , wherein the bulk-solidifying amorphous alloy exhibits a bend ductility of more than 10% under bending geometries with thickness of more than 2.0 mm.

7. The bulk solidifying amorphous alloy of claim 3 , wherein the bulk solidifying amorphous alloy has a Poisson's ratio of 0.42 or higher and show a fracture toughness of K1c>60 MPa m −1/2 .

8. The bulk solidifying amorphous alloy of claim 1 , wherein the bulk-solidifying amorphous alloy has a crystalline volume fraction of less than 5% by volume.

9. The bulk solidifying amorphous alloy of claim 1 , wherein the bulk-solidifying amorphous alloy is formed in a composite consisting of at least 10% of the bulk solidifying amorphous alloy.

10. The bulk solidifying amorphous alloy of claim 1 , wherein M further comprises Co, and wherein the ratio of Cu to Ni and Co is from 0.1 to 4 and where the addition of Co is included in the total atomic percent of y.

11. The bulk solidifying amorphous alloy of claim 1 , wherein the alloy further comprises Pd, and wherein the Pd to Pt ratio has a range up to about 4 where the total combined concentration of Pd and Pt is less than 40 atomic percent, wherein the Pd to Pt ratio has a range up to about 6 where the total combined concentration of Pd and Pt is from about 40 to 50 atomic percent, and wherein the Pd to Pt ratio has a range up to about 8 where the total combined concentration of Pd and Pt is more than about 50 atomic percent, and where the addition of Pd is included in the total atomic percent of x.

12. The bulk solidifying amorphous alloy of claim 1 , wherein the alloy further comprises Si, and where the ratio of Si to P is from about 0.05 to 1, and where the addition of Si is included in the total atomic percent of z.

13. The bulk solidifying amorphous alloy of claim 12 , wherein the bulk-solidifying amorphous alloy further comprises a non-zero concentration of up to 5 atomic percent of B, and where the addition of B is included in the total atomic percent of z.

14. The bulk solidifying amorphous alloy of claim 1 , wherein the bulk-solidifying amorphous alloy composition is Pt 57.5 Cu 14.7 Ni 5.3 P 22.5 .

15. The bulk solidifying amorphous alloy of claim 14 , wherein, the bulk-solidifying has a high fracture toughness of more than 60 MPa m −1/2 .

16. The bulk solidifying amorphous alloy of claim 14 , wherein the bulk-solidifying amorphous alloy has a plastic region of up to 20% under compressive loading with aspect ratios of greater than 2.

17. The bulk solidifying amorphous alloy of claim 14 , wherein the bulk solidifying amorphous alloy has a fracture toughness of K1c>70 MPa m −1/2 .

18. The bulk solidifying amorphous alloy of claim 14 , wherein the bulk solidifying amorphous alloy is plastically deformable by more than 15% in an unconfined geometry under quasistatic compressive loading conditions.

19. The bulk solidifying amorphous alloy of claim 14 , wherein the bulk solidifying amorphous alloy is plastically deformable under bending conditions by more than 2% for sample thicknesses up to 4 mm.

20. The bulk solidifying amorphous alloy of claim 14 , wherein the bulk solidifying amorphous alloy has a critical crack radius of 4 mm.

21. The bulk solidifying amorphous alloy of claim 1 , wherein the bulk-solidifying amorphous alloy further comprises a non-zero concentration of up to 5 atomic percent of B, and where the addition of B is included in the total atomic percent of z.

22. The bulk solidifying amorphous alloy of claim 1 , wherein the bulk-solidifying amorphous further comprises a non-zero concentration of up to 10 atomic percent of Cr, and where the addition of Cr is included in the total atomic percent of y.

23. The bulk solidifying amorphous alloy of claim 1 , wherein the bulk-solidifying amorphous alloy further comprises a non-zero concentration of at least one of Ir and Au, wherein the total concentration of Ir and Au is less than about 10 atomic percent, and where the addition of Ir and Au is included in the total atomic percent of x.

24. The bulk solidifying amorphous alloy of claim 1 , wherein the bulk solidifying amorphous alloy further comprises a non-zero concentration of at least one of the group consisting of Ge, Ga, Al, As, Sn and Sb, wherein the total concentration of Ge, Ga, Al, As, Sn and Sb is less than about 5 atomic percent, and where the addition of Ge, Ga, Al, As, Sn and Sb is included in the total atomic percent of z.

25. A bulk solidifying amorphous alloy, wherein the bulk solidifying amorphous alloy has a composition according to the formula:

((Pt,Pd) 1-x PGM x ) a ((Cu,Co,Ni) 1-y TM y ) b ((P,Si) 1-z X z ) c

where a is in the range of from about 20 to 65 atomic percent, b is in the range of from about 15 to 60 atomic percent, c is in the range of from about 16 to 24 atomic percent;

where the concentration of Pt is at least 10 atomic percent;

where Co is in non-zero concentration and the total combine concentration of Ni and Co is at least 2 atomic percent;

where the concentration of P is at least 10 atomic percent;

where PGM is selected from the group consisting of Ir, Os, Au, W, Ru, Rh, Ta, Nb and Mo;

where TM is selected from the group consisting of Fe, Zn, Ag, Mn and V;

where X is selected from the group consisting of B, Al, Ga, Ge, Sn, Sb and As;

where x, y and z are atomic fractions, wherein:

z is less than about 0.3,

the sum of x, y and z is less than about 0.5,

when a is less than 35, x is less than about 0.3 and y is less than about 0.1,

when a is in the range of from about 35 to 50, x is less than about 0.2 and y is less than about 0.2, and

when a is more than 50, x is less than about 0.1 and y is less than about 0.3; and

wherein the combination of components has a Poisson's ratio of at least 0.38.

Assignments (4)
RELEASE OF SECURITY INTEREST Recorded Feb 19, 2016
From: APPLE INC.
To: CRUCIBLE INTELLECTUAL PROPERTY, LLC
Reel/Frame 037861/0073 →
SECURITY AGREEMENT Recorded Aug 6, 2010
From: CRUCIBLE INTELLECTUAL PROPERTY, LLC
To: APPLE INC.
Reel/Frame 024804/0149 →
CONTRIBUTION AGREEMENT Recorded Aug 6, 2010
From: LIQUIDMETAL TECHNOLOGIES, INC.
To: CRUCIBLE INTELLECTUAL PROPERTY, LLC
Reel/Frame 024804/0169 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 6, 2009
From: JOHNSON, WILLIAM L.; SCHROERS, JAN
To: LIQUIDMETAL TECHNOLOGIES, INC.
Reel/Frame 023064/0536 →