IP Library › Granted Patent US 12,660,401
Granted Patent B2
US 12,660,401 · App. 18/161,763 · Granted Jun 16, 2026

Pixel optical structures for display optical efficiency

Inventors: Young Cheol Yang (Sunnyvale, CA); Young Seok Kim (San Jose, CA); Aaron L Holsteen (Centennial, CO); Cheng Cheng (Cupertino, CA); Chin Wei Hsu (Hsinchu, TW); Hsin I Lu (Cupertino, CA); Ileana G. Rau (Cupertino, CA); Jaein Choi (Sunnyvale, CA); James M Perkins (Mountain View, CA); James P Ibbetson (Goleta, CA); Joy M Johnson (San Francisco, CA); Jui-Chih Liao (Hsinchu City, TW); Steven E Molesa (San Jose, CA); Sunggu Kang (San Jose, CA); Yang Deng (San Jose, CA); Zhibing Ge (Los Altos, CA)
Assignee: Apple Inc.
H10H29/142H10H20/855H10H20/882
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Quick Facts
Patent No.
US 12,660,401
App. No.
18/161,763
Granted
Jun 16, 2026
Kind
B2
Abstract

An electronic device may have a display with an array of inorganic light-emitting diodes. The array of inorganic light-emitting diodes may be overlapped by a polarizer layer such as a circular polarizer. Alternatively, the display may be a polarizer-free display without any polarizer layer over the array of inorganic light-emitting diodes. Each inorganic light-emitting diode may be surrounded by a diffuser that redirects edge-emissions towards a viewer. A top diffuser, a color filter layer, a microlens, and/or a microlens with color filtering and/or diffusive properties may also optionally overlap each inorganic light-emitting diode. The inorganic light-emitting diodes may have reflective sidewalls to mitigate edge-emissions. In this type of arrangement, the array of inorganic light-emitting diodes may be coplanar with one or more opaque masking layers. To mitigate reflections, the display may include two opaque masking layers having differing properties or a single phase separated opaque masking layer.

Claims (71)

1 . An electronic device, comprising:

an array of inorganic light-emitting diodes;

a display cover layer that overlaps the array of inorganic light-emitting diodes;

a circular polarizer that is interposed between the array of inorganic light-emitting diodes and the display cover layer;

a plurality of diffusers, wherein each diffuser laterally surrounds at least one respective inorganic light-emitting diode; and

a planarization layer, wherein the planarization layer laterally surrounds at least one diffuser of the plurality of diffusers.

2 . The electronic device defined in claim 1 , further comprising:

an opaque masking layer with openings that overlap the inorganic light-emitting diodes.

3 . The electronic device defined in claim 2 , wherein the array of inorganic light-emitting diodes includes red inorganic light-emitting diodes, green inorganic light-emitting diodes, and blue inorganic light-emitting diodes, wherein each one of the red inorganic light-emitting diodes is overlapped by a respective opening in the opaque masking layer having a first area, wherein each one of the green inorganic light-emitting diodes is overlapped by a respective opening in the opaque masking layer having a second area, wherein each one of the blue inorganic light-emitting diodes is overlapped by a respective opening in the opaque masking layer having a third area, wherein the second area is greater than the first area, and wherein the first area is greater than the third area.

4 . The electronic device defined in claim 2 , wherein the array of inorganic light-emitting diodes includes pairs of inorganic light-emitting diodes of a same color.

5 . The electronic device defined in claim 4 , wherein each opening in the opaque masking layer overlaps a respective pair of inorganic light-emitting diodes.

6 . The electronic device defined in claim 4 , wherein each opening in the opaque masking layer overlaps one but not both of the inorganic light-emitting diodes in a respective pair of inorganic light-emitting diodes.

7 . The electronic device defined in claim 4 , wherein each diffuser laterally surrounds a periphery of a respective pair of inorganic light-emitting diodes and wherein each diffuser includes a portion that is interposed between the respective pair of inorganic light-emitting diodes.

8 . The electronic device defined in claim 1 , further comprising:

a first additional planarization layer that overlaps the array of inorganic light-emitting diodes; and

a second additional planarization layer that overlaps the array of inorganic light-emitting diodes, wherein the second additional planarization layer is interposed between the first additional planarization layer and the array of inorganic light-emitting diodes and wherein the second additional planarization layer has a lower refractive index than the first additional planarization layer.

9 . The electronic device defined in claim 8 , further comprising:

a plurality of microlenses, wherein each microlens is formed on an upper surface of the second additional planarization layer over a respective inorganic light-emitting diode.

10 . The electronic device defined in claim 1 , further comprising:

a plurality of microlenses, wherein each microlens overlaps a respective inorganic light-emitting diode.

11 . The electronic device defined in claim 1 , further comprising:

a plurality of additional diffusers, wherein each additional diffuser overlaps a respective inorganic light-emitting diode.

12 . The electronic device defined in claim 1 , further comprising:

an additional diffuser that overlaps multiple inorganic light-emitting diodes in the array of inorganic light-emitting diodes.

13 . The electronic device defined in claim 1 , wherein the planarization layer is coplanar with the array of inorganic light-emitting diodes, the electronic device further comprising:

a first opaque masking layer that is formed on the planarization layer, wherein the first opaque masking layer has openings that overlap the inorganic light-emitting diodes and wherein the first opaque masking layer is formed in a first plane;

an additional planarization layer that is formed over the first opaque masking layer; and

a second opaque masking layer that is formed on the additional planarization layer, wherein the second opaque masking layer is formed in a second plane that is parallel with the first plane.

14 . The electronic device defined in claim 1 , wherein the planarization layer is coplanar with the array of inorganic light-emitting diodes, the electronic device further comprising:

a first opaque masking layer that is formed on the planarization layer, wherein the first opaque masking layer has openings that overlap the inorganic light-emitting diodes;

an additional planarization layer that is formed over the first opaque masking layer; and

a second opaque masking layer that is orthogonal to the first opaque masking layer and that extends through the additional planarization layer.

15 . The electronic device defined in claim 1 , further comprising:

a substrate;

pixel control circuits mounted on the substrate;

a first additional planarization layer on the substrate that laterally surrounds the pixel control circuits;

at least one insulating layer that is formed on the first additional planarization layer;

backplane metal that is formed in the at least one insulating layer;

a plurality of spacer layers, wherein each inorganic light-emitting diode is mounted on a respective spacer layer and wherein the planarization layer is coplanar with the plurality of spacer layers and the array of inorganic light-emitting diodes; and

a second additional planarization layer that is interposed between the at least one insulating layer and the planarization layer.

16 . The electronic device defined in claim 1 , further comprising:

a substrate;

pixel control circuits mounted on the substrate;

an additional planarization layer on the substrate that laterally surrounds the pixel control circuits;

at least one insulating layer that is formed on the first planarization layer;

backplane metal that is formed in the at least one insulating layer; and

a plurality of spacer layers, wherein each inorganic light-emitting diode is mounted on a respective spacer layer, wherein the planarization layer is coplanar with the plurality of spacer layers and the array of inorganic light-emitting diodes, wherein the at least one insulating layer is interposed between the additional planarization layer and the planarization layer and wherein the at least one insulating layer has a total thickness that is greater than 3 microns.

17 . The electronic device defined in claim 1 , further comprising:

a first opaque masking layer; and

a second opaque masking layer that is formed on the first opaque masking layer and that has at least one differing property from the first opaque masking layer.

18 . The electronic device defined in claim 17 , wherein the second opaque masking layer has a different refractive index than the first opaque masking layer and a different transmission than the first opaque masking layer.

19 . The electronic device defined in claim 1 , further comprising:

an opaque masking layer that overlaps regions between inorganic light-emitting diodes; and

a color filter layer that overlaps the opaque masking layer in the regions between inorganic light-emitting diodes.

20 . The electronic device defined in claim 1 , further comprising:

an opaque masking layer that overlaps regions between inorganic light-emitting diodes, wherein the opaque masking layer has a transmission that is more than 25% and a thickness that is greater than 3 microns.

21 . The electronic device defined in claim 1 , wherein each inorganic light-emitting diode has a corrugated upper surface.

22 . The electronic device defined in claim 1 , wherein each inorganic light-emitting diode has a non-planar and reflective lower surface.

23 . The electronic device defined in claim 1 , further comprising:

an optical sensor that is overlapped by at least a portion of the array of inorganic light-emitting diodes.

24 . An electronic device, comprising:

an array of inorganic light-emitting diodes;

a display cover layer that overlaps the array of inorganic light-emitting diodes;

a circular polarizer that is interposed between the array of inorganic light-emitting diodes and the display cover layer; and

a single phase separated opaque masking layer that is formed over the array of inorganic light-emitting diodes, wherein the single phase separated opaque masking layer has openings, wherein each opening overlaps a respective inorganic light-emitting diode, wherein the single phase separated opaque masking layer has an upper surface and a lower surface, wherein the upper surface is interposed between the circular polarizer and the lower surface, and wherein the single phase separated opaque masking layer has a refractive index gradient that gradually increases from the upper surface towards the lower surface.

25 . An electronic device, comprising:

an array of inorganic light-emitting diodes;

a display cover layer that overlaps the array of inorganic light-emitting diodes;

a circular polarizer that is interposed between the array of inorganic light-emitting diodes and the display cover layer;

a first opaque masking layer that is formed over the array of inorganic light-emitting diodes; and

a second opaque masking layer that is formed over the first opaque masking layer, wherein the second opaque masking layer has a lower refractive index, a lower optical density, and a higher transmission than the first opaque masking layer.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 31, 2023
From: HOLSTEEN, AARON L; HSU, CHIN WEI; LIAO, JUI-CHIH; LU, HSIN I; RAU, ILEANA G.; IBBETSON, JAMES P; PERKINS, JAMES M; DENG, YANG; GE, ZHIBING; KIM, YOUNG SEOK; KANG, SUNGGU; CHOI, JAEIN; MOLESA, STEVEN E; JOHNSON, JOY M; CHENG, CHENG; YANG, YOUNG CHEOL
To: APPLE INC.
Reel/Frame 062553/0396 →
Continuity (3)
Provisional Application 63322309 · Mar 22, 2022
Provisional Application 63322306 · Mar 22, 2022
Related Publication 20230307488A1 · Sep 28, 2023
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