IP Library Granted Patent US 10,899,661
Granted Patent B2
US 10,899,661 · App. 16/216,318 · Granted Jan 26, 2021

Glass having antiglare surface with low display sparkle

Inventors: Jacques Gollier (Bellevue, WA); Shandon Dee Hart (Elmira, NY); Kelvin Nguyen (Wilmington, NC); Alan Thomas Stephens, II (Beaver Dams, NY); James Andrew West (Painted Post, NY); Lu Zhang (Painted Post, NY)
Assignee: CORNING INCORPORATED
C03C21/002C03C15/00G02B5/0215G02B5/0294G02F1/133502C03C2204/08G02F2001/133331
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Quick Facts
Patent No.
US 10,899,661
App. No.
16/216,318
Granted
Jan 26, 2021
Kind
B2
Abstract

A glass article having a low level of grainy appearance that can appear to have a shift in the pattern of the grains with changing viewing angle of a display, or “sparkle.” The glass article—which, in some embodiments, is a transparent glass sheet—has small-angle-scattering properties and/or distinctness-of-reflected-image (DOI), leading to improved viewability in display applications, especially under high ambient lighting conditions. In some embodiments, the antiglare surface of the glass sheet is an etched surface, with no foreign coating present on the antiglare surface.

Claims (37)

1. A display system, comprising:

a pixelated display having a plurality of pixels and an imaging plane; and

a transparent glass sheet having a roughened antiglare surface integral to the sheet,

wherein the transparent glass sheet is disposed in front of the pixelated display such that the antiglare surface is distal from the pixelated display and separated from the imaging plane by an optical distance,

wherein the transparent glass sheet has a pixel power deviation of less than about 7.5%, and

wherein the transparent glass sheet has a 20° distinctness of image of less than about 85.

2. The display system of claim 1 , wherein the transparent glass sheet has a 20° distinctness of image of less than about 60.

3. The display system of claim 1 , wherein the pixelated display alone has a second pixel power deviation, and wherein pixel power deviation of the transparent glass sheet combined with the pixelated display is less than about 4% greater than the second pixel power deviation.

4. The display system of claim 1 , wherein the pixelated display alone has a second pixel power deviation, and wherein pixel power deviation of the transparent glass sheet combined with the pixelated display is less than about two times greater than the second pixel power deviation.

5. The display system of claim 4 , wherein the pixelated display has a minimum sub-pixel window opening dimension of less than 200 μm.

6. The display system of claim 4 , wherein the optical distance between the imaging plane and the antiglare surface is in a range from about 1.0 mm to about 3.5 mm.

7. The display system of claim 1 , wherein the transparent glass sheet is strengthened by ion exchange, and wherein the transparent glass sheet has at least one surface having a region under a compressive stress, the region extending from the surface to a depth of layer within the transparent glass sheet.

8. The display system of claim 1 , wherein the transparent glass sheet has:

a first RMS surface roughness Rlong of up to about 300 nm measured in a range of lateral spatial periods from about 40 μm to about 640 μm; and

a second RMS surface roughness Rshort measured at lateral spatial periods of less than about 20 μm,

wherein the ratio (Rlong/Rshort) is less than about 4.9.

9. The display system of claim 1 , wherein the antiglare surface is an etched glass antiglare surface.

10. A glass article, comprising:

a transparent glass sheet having at least one antiglare surface integral to the sheet, wherein the antiglare surface has:

a first RMS surface roughness Rlong of up to about 300 nm measured in a range of lateral spatial periods from about 40 μm to about 640 μm; and

a second RMS roughness Rtotal in a range from about 60 nm up to about 600 nm, measured without surface wavelength filtering, wherein there is a ratio Rtotal/Rlong of greater than or equal to about 1.80.

11. The glass article of claim 10 , wherein the antiglare surface has a third RMS surface roughness Rshort of greater than about 30 nm, wherein Rshort is measured at lateral spatial periods of less than about 20 μm.

12. The glass article of claim 10 , wherein the transparent glass sheet has a transmission haze of less than about 20%.

13. The glass article of claim 10 , wherein the transparent glass sheet has a 20° distinctness of image of less than about 85.

14. The glass article of claim 10 , wherein the antiglare surface has a third RMS surface roughness Rshort, wherein Rshort is measured at lateral spatial periods of less than about 20 μm, and wherein the ratio (Rlong/Rshort) is less than about 4.9.

15. The glass article of claim 10 , wherein the antiglare surface is an etched glass antiglare surface.

16. A glass article, comprising:

a transparent glass sheet having at least one roughened antiglare surface integral to the sheet,

wherein the antiglare surface has a pixel power deviation of less than about 7.5% when disposed in front of a pixelated display having a plurality of pixels and an imaging plane such that the antiglare surface is distal from the pixelated display and separated from the imaging plane by an optical distance, and

further wherein the transparent glass sheet has a 20° distinctness of image of less than about 85.

17. The glass article of claim 16 , wherein the transparent glass sheet has a 20° distinctness of image of less than about 60.

18. The glass article of claim 16 , wherein the optical distance between the imaging plane and the antiglare surface is in a range from about 1.0 mm to about 3.5 mm.

19. The glass article of claim 16 , wherein the transparent glass sheet is strengthened by ion exchange, and wherein the transparent glass sheet has at least one surface having a region under a compressive stress, the region extending from the surface to a depth of layer within the transparent glass sheet.

20. The glass article of claim 16 , wherein the transparent glass sheet has:

a first RMS surface roughness Rlong of up to about 300 nm measured in a range of lateral spatial periods from about 40 μm to about 640 μm; and

a second RMS surface roughness Rshort measured at lateral spatial periods of less than about 20 μm,

wherein the ratio (Rlong/Rshort) is less than about 4.9.

Continuity (4)
Continuation 15617138 · Jun 8, 2017
Continuation 13405787 · Feb 27, 2012
Provisional Application 61447242 · Feb 28, 2011
Related Publication 20190248703A1 · Aug 15, 2019
Cited By (5)
US 12,195,384 US 12,352,924 US 12,360,290 US 12,386,101 US 12,625,302