EP3204338A2

Glasses and glass ceramics including a metal oxide concentration gradient

Abstract

This record has no abstract on file.

EP3204338A2, drawing sheet 1
Sheet 1 of 48

Term

9 yearsto projected expiry

Projected expiry 8 October 2035, counted from filing; an application has no term until it is granted.

  1. Priority
  2. Filed
  3. Published
  4. Today
  5. Projected expiry

92 claims: 50 independent, 42 dependent

  1. 1
    Claims of equivalent WO 2016057787 A2 What is claimed is:1. A glass-based article comprising: a first surface and a second surface opposing the first surface defining a thickness (J);and a concentration of a metal oxide that is both non-zero and varies along a thickness range from about 0·ί to about 0.3·/, wherein, when the glass-based article is fractured, the glass-based article fractures into at least 2 fragments/inch 2 .
  2. 25
    A glass-based article comprising:a first surface and a second surface opposing the first surface defining a thickness (t) of about less than about 3 millimeters;and a stress profile extending along the thickness, wherein all points of the stress profile between a thickness range from about ( to 0.3·? and from greater than 0.7't, comprise a tangent that is less than about -0.1 MP a/micrometers or greater than about 0.1 MPa/micrometers, wherein the stress profile comprises a maximum CS, a DOC and a maximum CT, wherein the ratio of maximum CT to maximum CS is in the range from about 0.01 to about 0.5 and wherein the DOC is about 0.1 ·ί or greater, and wherein, when the glass-based article is fractured, the glass-based article fractures into at least 2 fragments/inch 2 .
  3. 28
    The glass-based article of any one of claims 25-27, further comprising a surface CS of about 300 MPa or greater and a chemical depth of layer (DOL) of about 0Ά·ί or greater.
  4. 29
    The glass-based article of any one of claims 25-28, further comprising a CS layer extending from the first surface to a DOC, wherein the DOC is about 0.1 ·ί or greater.
  5. 30
    The glass-based article of any one of claims 25-29, further comprising a CT region, wherein the CT region comprises a metal oxide concentration gradient.
  6. 32
    The glass-based article of any one of claims 25-31, wherein t comprises about 2 millimeters or less.
  7. 33
    The glass-based article of any one of claims 25-32, wherein t comprises about 1 millimeter or less.
  8. 34
    A glass-based article comprising:a first surface and a second surface opposing the first surface defining a thickness (t);and a concentration of a metal oxide that is both non-zero and varies along a thickness range from about 0·ί to about 0.3·ί;and a surface CS of greater than about 200MPa or greater..
  9. 37
    The glass-based article of any one of claims 34-36, wherein the metal oxide generates a stress along the thickness range.
  10. 39
    The glass-based article of any one of claims 34-38, wherein the concentration of the metal oxide decreases from the first surface to a point between the first surface and the second surface and increases from the point to the second surface.
  11. 40
    The glass-based article of any one of claims 34-39, wherein, when the glass-based article is fractured, the glass-based article fractures into at least 1 fragment/inch 2 up to 40 fragments/ inch 2 .
  12. 41
    The glass-based article of any one of claims 34-40, wherein the glass-based article comprises a diffusivity of about 450 μιη 2 /1κχΐΓ or greater at about 460 °C, a maximum CT, and a DOC greater than about 0.15·/, and wherein the surface CS is 1.5 times the maximum CT or greater.
  13. 42
    The glass-based article of any one of claims 34-41 , wherein the glass-based article comprises a fracture toughness (Ki C ) of about 0.7 MPa-m 1/2 or greater.
  14. 44
    The glass-based article of any one of claims 34-43, wherein the surface CS of about 300 MPa or greater.
  15. 45
    The glass-based article of any one of claims 34-44, wherein the surface CS is about 600 MPa or greater.
  16. 46
    The glass-based article of any one of claims 34-45, wherein the concentration of the metal oxide is about 0.05 mol% or greater throughout the thickness.
  17. 47
    The glass-based article of any one of claims 34-46, wherein the concentration of the metal oxide at the first surface is about 1.5 times greater than the concentration of the metal oxides at a depth equal to about 0.5·ί.
  18. 48
    The glass-based article of any one of claims 34-47, wherein the total concentration of the metal oxide is in the range from about 1 mol% to about 15 mol%.
  19. 49
    The glass-based article of any one of claims 34-48, wherein the metal oxide comprises any one or more of Li 2 0, Na 2 0, K 2 0, Rb 2 0, and Cs 2 0.
  20. 50
    The glass-based article of any one of claims 34-49, further comprising a chemical depth of layer of about 0Α·ί or greater.
  21. 51
    The glass-based article of any one of claims 34-50, further comprising a CS layer extending from the first surface to a DOC, wherein the DOC is about 0.1 ·ί or greater.
  22. 52
    The glass-based article of any one of claims 34-51 , further comprising a CT region, wherein the CT region comprises the metal oxide concentration gradient.
  23. 54
    The glass-based article of any one of claims 34-53, wherein t comprises about 3 millimeters or less.
  24. 55
    The glass-based article of any one of claims 34-54, wherein t comprises about 1 millimeter or less.
  25. 56
    A glass-based article comprising:a first surface and a second surface opposing the first surface defining a thickness (J);and a metal oxide that forms a concentration gradient, wherein the concentration of the metal oxide decreases from the first surface to a point between the first surface and the second surface and increases from the point to the second surface, wherein the concentration of the metal oxide at the point is non-zero, and wherein the glass-based article comprises a stored tensile energy of about greater than 0 J/m2 to less than 20 J/m 2 .
  26. 59
    The glass-based article of any one of claims 56-58- wherein the concentration of the metal oxide is about 0.05 mol% or greater throughout the thickness.
  27. 60
    The glass-based article of any one of claims 56-59, wherein the concentration of the metal oxide at the first surface is about 1.5 times greater than the concentration of the metal oxides at a depth equal to about 0.5·ί.
  28. 61
    The glass-based article of any one of claims 56-60, wherein the total concentration of the metal oxide is in the range from about 1 mol% to about 15 mol%.
  29. 62
    The glass-based article of any one of claims 56-61 , wherein the metal oxide comprises any one or more of Li 2 0, Na 2 0, K 2 0, Rb 2 0, and Cs 2 0.
  30. 63
    The glass-based article of any one of claims 56-62, further comprising a surface CS of about 200 MPa or greater and a chemical depth of layer of about 0Ά·ί or greater.
  31. 64
    The glass-based article of any one of claims 56-63, further comprising a CS layer extending from the first surface to a DOC, wherein the DOC is about 0.1 ·ί or greater.
  32. 65
    The glass-based article of any one of claims 56-64, further comprising a CT region, wherein the CT region comprises the metal oxide concentration gradient.
  33. 66
    The glass-based article of any one of claims 56-65, wherein the CT region comprises a maximum CT and the ratio of maximum CT to surface CS is in the range from about 0.01 to about 0.5.
  34. 67
    The glass-based article of any one of claims 56-66, wherein t comprises about 3 millimeters or less.
  35. 68
    The glass-based article of any one of claims 56-67, wherein t comprises about 1 millimeter or less.
  36. 69
    A glass-based article comprising:a first surface and a second surface opposing the first surface defining a thickness (t) of about less than about 3 millimeter;and a stress profile extending along the thickness, wherein all points of the stress profile between a thickness range from about O t up to 0.3 ? and from greater than 0.71, comprise a tangent that is less than about -0.1 MP a/micrometers or greater than about 0.1 MPa/micrometers, wherein the stress profile comprises a maximum CS, a DOC and a maximum CT, wherein the ratio of maximum CT to maximum CS is in the range from about 0.01 to about 0.5 and wherein the DOC is about 0.1 ·ί or greater, and wherein the glass-based article comprises a stored tensile energy of about greater than 0 J/m 2 to less than 20 J/m 2 .
  37. 72
    The glass-based article of any one of claims 67-71 , wherein the maximum CS comprises about 300 MPa or greater.
  38. 73
    The glass-based article of any one of claims 67-72, wherein the maximum CS comprises about 600 MPa or greater.
  39. 74
    The glass-based article of any one of claims 67-73, further comprising a chemical depth of layer of about OA't or greater.
  40. 75
    The glass-based article of any one of claims 67-74, further comprising a CT region, wherein the CT region comprises the metal oxide concentration gradient.
  41. 76
    The glass-based article of any one of claims 67-75, wherein t comprises about 3 millimeters or less.
  42. 77
    The glass-based article of any one of claims 67-76, wherein t comprises about 1 millimeter or less.
  43. 78
    A glass-based article comprising:a stress profile including a CS region and a CT region, wherein the CT region is defined by the equation Stress(x) = MaxCT - (((MaxCT · (n+l))/0.5 n |(x/t)-0.5| n ), wherein MaxCT is a maximum CT value and provided as a positive value in units of MPa, x is position along the thickness (t) in micrometers, and n is between 1.5 and 5.
  44. 81
    The glass-based article of any one of claims 78-80, wherein the stress profile is defined by a plurality of error functions as measured from 0.5t to the surface.
  45. 82
    A method of forming a fracture resistant glass-based article comprising:providing a glass-based substrate having a first surface and a second surface defining a thickness of about 3 millimeter or less;generating a stress profile in the glass-based substrate comprising a CT layer and a CS layer, wherein the CS layer has a surface CS, a chemical depth of about 0.4t or greater and a DOC of about 0.1 *t or greater, and wherein the CT layer comprises a maximum CT and the ratio of maximum CT to surface CS is from about 0.01 to about 0.5.
  46. 85
    The method of any one of claims 82-84, wherein the CT layer comprises the metal oxide concentration gradient.
  47. 86
    The method of any one of claims 82-85, further comprising increasing the surface CS by about 100 MPa or greater after generating the stress profile.
  48. 89
    The use of a glass composition in a strengthened glass, the glass composition comprising:S1O 2 in an amount in the range from about 68 to about 75;AI 2 O 3 in an amount in the range from about 12 to about 15;B 2 O 3 in an amount in the range from about 0.5 to about 5;L1 2 O in an amount in the range from about 2 to about 8 ;Na 2 0 in an amount in the range from about 0 to about 6;MgO in an amount in the range from about 1 to about 4;ZnO in an amount in the range from about 0 to about 3;and CaO in an amount in the range from about 0 to about 5, wherein the glass substrate is ion-exchangeable and is amorphous, wherein the glass substrate exhibits any one or more of: a ratio of L1 2 O to R 2 O in the range from about 0.5 to about 1 ;a difference between a total amount of R 2 O to the amount of AI 2 O3 in the range from about -5 to about 0;a difference between a total amount of R x O (in mol%) and the amount of AI 2 O 3 in the range from about 0 to about 3;and a ratio of the amount of MgO (in mol%) to a total amount of RO (in mol%) in the range from about 0 to about 2, and wherein the glass substrate is substantially free of nucleating agents..
  49. 90
    A glass substrate comprising a composition including, in mol%, S1O 2 in an amount in the range from about 68 to about 75; AI 2 O3 in an amount in the range from about 12 to about 15; B 2 O3 in an amount in the range from about 0.5 to about 5; L1 2 O in an amount in the range from about 2 to about 8 ; Na 2 0 in an amount in the range from about 0 to about 6; MgO in an amount in the range from about 1 to about 4; ZnO in an amount in the range from about 0 to about 3; and CaO in an amount in the range from about 0 to about 5, wherein the glass substrate is ion-exchangeable and is amorphous, wherein the glass substrate exhibits any one or more of:a ratio of Li 2 0 to R 2 O in the range from about 0.5 to about 1 ;a difference between a total amount of R 2 O to the amount of AI 2 O 3 in the range from about -5 to about 0;a difference between a total amount of R x O (in mol%) and the amount of AI 2 O 3 in the range from about 0 to about 3;and a ratio of the amount of MgO (in mol%) to a total amount of RO (in mol%) in the range from about 0 to about 2, and wherein the glass substrate is substantially free of nucleating agents.
  50. 91
    A glass substrate comprising a composition including, in mol%, S1O 2 in an amount in the range from about 68 to about 75;AI 2 O3 in an amount in the range from about 12 to about 15;B 2 O3 in an amount in the range from about 0.5 to about 5;Li 2 0 in an amount in the range from about 2 to about 8 ;Na 2 0 in an amount in the range from about 0 to about 6;MgO in an amount in the range from about 1 to about 4;ZnO in an amount in the range from about 0 to about 3;and CaO in an amount in the range from about 0 to about 5, wherein the glass substrate is amorphous and the glass is strengthened, wherein the Na 2 0 concentration varies, substantially free of nucleating agents.
Independent claims50