IP Library Granted Patent US 10,862,010
Granted Patent B2
US 10,862,010 · App. 16/442,324 · Granted Dec 8, 2020

Integrated colour LED micro-display

Inventors: James Ronald Bonar (Redmond, WA); Gareth John Valentine (Redmond, WA); Stephen Warren Gorton (Redmond, WA)
Assignee: Facebook Technologies, LLC
H01L33/507H01L25/167H01L27/156H01L33/0093H01L33/22H01L33/32H01L33/58H01L33/60H01L33/62H01L33/505H01L2924/0002H01L2933/0041H01L2933/0058H01L2933/0066H01L2933/0091
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Quick Facts
Patent No.
US 10,862,010
App. No.
16/442,324
Granted
Dec 8, 2020
Kind
B2
Abstract

There is herein described a low power consumption high brightness display. More particularly, there is described an integrated LED micro-display and a method of manufacturing the integrated LED micro-display.

Claims (39)

1. A light emitting diode (LED) display, comprising:

a color converter configured to change wavelength of light, the color converter including:

a color conversion layer; and

a long pass filter on the color conversion layer, wherein the long pass filter allows light converted by the color conversion layer to pass, and recycles unconverted light;

a micro-LED array configured to pump light into the color converter, wherein the array comprises a plurality of LEDs having a dimension between 0.5 μm to 100 μm; and

a backplane control for the micro-LED array, the color conversion layer of the color converter producing light at a longer wavelength than the pumped light from the micro-LED array.

2. The LED display of claim 1 , wherein the color converter includes a substrate and the color conversion layer is on the substrate.

3. The LED display of claim 2 , wherein the substrate is made from glass, sapphire, silicon, gallium nitride (GaN), or silicon carbide.

4. The LED display of claim 2 , wherein the color converter includes a transparent layer on the substrate.

5. The LED display of claim 4 , further comprising a mask between the color conversion layer and the transparent layer, the mask being opaque or reflective.

6. A light emitting diode (LED) display, comprising:

a color converter configured to change wavelength of light, the color converter including:

a color conversion layer; and

a long pass filter on the color conversion layer, wherein the long pass filter allows light converted by the color conversion layer to pass, and recycles unconverted light;

a micro-LED array configured to pump light into the color converter, wherein the array comprises a plurality of LEDs that generate substantially blue or ultraviolet (UV) light, and the color converter converts the light generated by the array into substantially red light; and

a backplane control for the micro-LED array.

7. The LED display of claim 6 , wherein the color converter includes a short pass filter on a side of the color conversion layer opposite the long pass filter, the short pass filter transmitting the substantially blue or UV light to the color conversion layer and reflecting the substantially red light.

8. The LED display of claim 6 , wherein the color conversion layer includes at least one of a phosphor, a quantum dot, or an organic substance.

9. The LED display of claim 6 , wherein the color converter includes a transparent layer and a short pass filter on the transparent layer, the short pass filter transmitting the substantially blue or UV light to the transparent layer and reflecting the substantially red light.

10. The LED display of claim 6 , wherein the color converter includes a transparent layer and an etched silicon area that absorbs light between the color conversion layer and the transparent layer.

11. A light emitting diode (LED) display, comprising:

a color converter configured to change wavelength of light, the color converter including:

a color conversion layer; and

a long pass filter on the color conversion layer, wherein the long pass filter allows light converted by the color conversion layer to pass, and recycles unconverted light;

a micro-LED array configured to pump light into the color converter, wherein the array comprises a plurality of LEDs that generate substantially blue or ultraviolet (UV) light, and the color converter converts the light generated by the array into substantially green light; and

a backplane control for the micro-LED array.

12. The LED display of claim 11 , wherein the color converter includes a substrate including a modified refractive index layer between un-modified refractive index layers to define a waveguide for the substantially green light from the color conversion layer.

13. The LED display of claim 11 , wherein the color converter includes opaque/reflective features on the un-modified refractive index layer at a side of the substrate opposite the color conversion layer.

14. The LED display of claim 11 , wherein the color converter includes a short pass filter on a side of the color conversion layer opposite the long pass filter, the short pass filter transmitting the substantially blue or UV light to the color conversion layer and reflecting the substantially green light.

15. The LED display of claim 11 , wherein the color converter includes a transparent layer and a short pass filter on the transparent layer, the short pass filter transmitting the substantially blue or UV light to the transparent layer and reflecting the substantially green light.

16. A light emitting diode (LED) display, comprising:

a first micro-LED array configured to pump light into a color converter, wherein the first micro-LED array generates substantially blue or ultraviolet (UV) light, and the color converter converts the light generated by the first micro-LED array into substantially red light;

a second micro-LED array that generates substantially blue light; and

the color converter including a color conversion layer that converts at least a portion of the light generated by the first micro-LED array into the substantially red light, a transparent layer that transmits at least a portion of the substantially blue light from the second micro-LED array, and an etched silicon area that absorbs light between the color conversion layer and the transparent layer;

wherein converted light from the first array correspond to red subpixels, light from the second array correspond to blue subpixels, and the red and blue subpixels combine to form display pixels of the LED display.

17. The LED display of claim 16 , wherein the first micro-LED array includes a gallium nitride (GaN) layer including light extraction features.

18. The LED display of claim 17 , wherein the GaN layer of the first micro-LED array includes a convex light emitting surface for an LED.

19. The LED display of claim 17 , wherein the GaN layer of the first micro-LED array includes a roughened light emitting surface for an LED.

20. The LED display of claim 17 , wherein the GaN layer of the first micro-LED array includes pillars between the extraction features.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 24, 2024
From: BONAR, JAMES RONALD; VALENTINE, GARETH JOHN; GORTON, STEPHEN WARREN
To: OCULUS VR, LLC
Reel/Frame 067204/0553 →
CHANGE OF NAME Recorded Apr 18, 2024
From: OCULUS VR, LLC
To: FACEBOOK TECHNOLOGIES, LLC
Reel/Frame 067148/0422 →
CHANGE OF NAME Recorded Jun 8, 2022
From: FACEBOOK TECHNOLOGIES, LLC
To: META PLATFORMS TECHNOLOGIES, LLC
Reel/Frame 060315/0224 →
Priority Claims (1)
GB 1420452.3 · Nov 18, 2014 · national
Continuity (3)
Continuation 15974581 · May 8, 2018
Continuation 15526279
Related Publication 20200028036A1 · Jan 23, 2020
Cited By (2)
US 12,230,528 US 12,424,599