IP Library › Granted Patent US 11,156,759
Granted Patent B2
US 11,156,759 · App. 17/039,422 · Granted Oct 26, 2021

μ-LED, μ-LED device, display and method for the same

Inventors: Peter Brick (Regensburg, DE); Jean-Jacques Drolet (Obertraubling, DE); Hubert Halbritter (Dietfurt-Toeging, DE); Laura Kreiner (Regensburg, DE); Thomas Schwarz (Regensburg, DE); Tilman Ruegheimer (Regensburg, DE); Frank Singer (Regenstauf, DE)
Assignee: OSRAM Opto Semiconductors GmbH
G02B6/0031G02B27/0172H01L25/0753G02B6/0076G02B2027/0147
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Quick Facts
Patent No.
US 11,156,759
App. No.
17/039,422
Granted
Oct 26, 2021
Kind
B2
Abstract

The invention relates to various aspects of a μ-LED or a μ-LED array for augmented reality or lighting applications, in particular in the automotive field. The μ-LED is characterized by particularly small dimensions in the range of a few μm.

Claims (56)

1. Light guide arrangement comprising:

a μ-display for generating at least a first image and a second image, and

an imaging optic adapted to project a first image at a first resolution onto a first region of a retina of a user and to project a second image at a second resolution onto another, second region of the retina, the first resolution being different from the second resolution; wherein

the μ-display is adapted to display the first image and the second image consecutively; and

the imaging optic comprises a beam steering device that directs light rays of the first image onto the first region and light rays of the second image onto the second region.

2. Light guide arrangement according to claim 1 , characterized in that the first region is closer to a center of the retina than the second region and that the first resolution is higher than the second resolution.

3. Light guide arrangement according to claim 1 , characterized in that the beam steering device has at least one movable and/or fixed mirror.

4. Light guide arrangement according to claim 1 , characterized in that the second region concentrically encloses the first region.

5. Light guide arrangement according to claim 1 , in which the μ-display comprises at least one matrix of pixels formed by a μ-LED arrangement.

6. Light guide arrangement according to claim 1 , in which the μ-display comprises a matrix with a light-shaping structure, comprising a photonic crystal.

7. Light field display comprising:

an optoelectronic device for generating a raster image;

an optics module for directing a retinal projection of the raster image into a user's eye;

characterised in that

said optoelectronic device comprises a first μ-display generating a first raster sub-image and a second μ-display generating a second raster sub-image;

wherein the raster image comprises the first raster field sub-image and the second raster field sub-image; and

the optics module comprises an adjustment optic for directing the retinal projection of the second raster sub-image onto a fovea centralis in the user's eye; and

wherein the retinal projection of the second raster sub-image has a higher resolution than that of the first raster sub-image;

wherein the adjustment optic comprises one of:

a switchable Bragg grating;

an adjustable Alvarez lens arrangement; or

a Moire lens arrangement.

8. Light field display according to claim 7 , characterized in that the adjustment optic is configured in such a way that a relative position of the retinal projection of the second raster sub-image can be adjusted with respect to the retinal projection of the first raster sub-image.

9. Light field display according to claim 7 , characterized in that the retinal projection of the second raster sub-image in the user's eye has a smaller spatial extension than the retinal projection of the first raster sub-image.

10. Light field display according to claim 7 , characterized in that a collimation optic is arranged in a beam path of the first μ-display and/or the second μ-display.

11. Light field display according to claim 7 , characterized in that the first μ-display and/or the second μ-display comprises a matrix of a plurality of μ-LED base modules.

12. Light field display according to claim 7 , characterized in that the first μ-display and/or the second μ-display comprises a matrix with a light-shaping structure, wherein the light-shaping structure is a microlens or a photonic structure.

13. Light field display according to claim 12 , in which the light-shaping structure is at least partially arranged in a semiconductor material of μ-LEDs of pixels of the optoelectronic device.

14. Light field display according to claim 7 , wherein the optoelectronic device comprises μ-LEDs including arrangements in which the μ-LEDs of a pixel comprise a reflective side surface.

15. Pixel array, for a display in polar coordinates, comprising

a plurality of pixel elements arranged from a starting point on an axis through the starting point in at least one row, wherein

the plurality of pixel elements in planar view have a length and a variable width such that the variable width of the plurality of pixel elements substantially increases from the starting point.

16. Pixel array according to claim 15 , in which any two adjacent pixel elements of the plurality of pixel elements have at least one of the following characteristics:

first luminous areas of equal size, a distance between them increasing with increasing distance from the starting point;

second luminous areas wherein a corresponding increasing width of pixels becomes larger; or

a combination thereof.

17. Pixel array according to claim 15 , in which the plurality of pixel elements have a variable length such that the variable length of the plurality of pixel elements increases with increasing distance from the starting point.

18. Pixel array according to claim 15 , in which the plurality of pixel elements have at least three different colors, a number of pixels of each color being different.

19. Pixel array according to claim 15 , in which a first number of said plurality of pixel elements are arranged in a first row and a second number of said plurality of pixel elements are arranged in at least one second row, said first and second numbers of pixel elements having a different color in operation.

20. Pixel array according to claim 19 , in which the first number of the plurality of pixel elements in the first row is different from the second number of the plurality of pixel elements in the at least one second row.

21. Pixel array according to claim 19 , in which at least some pixels of the first and at least one second row have a same width and from an n-th pixel of the first row onwards the width is different from the width of the n-th pixel of the at least one second row.

22. Pixel array according to claim 15 , where a number of pixels of a color green is greater than a number of pixels of other colors.

23. Pixel array according to claim 15 , in which the plurality of pixel elements in the at least one row are formed by a monolithically shaped pixelated array of μ-LEDs.

24. Pixel array according to claim 15 , comprising μ-LEDs that each comprise a pair of spaced light-emitting elements with a converter material disposed therebetween.

25. Pixel array according to claim 15 , in which the plurality of pixel elements have a light-shaping structure comprising one of a reflective structure, a microlens, or a photonic crystal.

26. Pixel matrix comprising at least two pixel arrays according to claim 15 , for a display in polar coordinates, in which the at least two pixel arrays have a common center point and enclose an angle substantially equal to 360° divided by twice a number of the at least two pixel arrays.

27. Pixel matrix comprising at least two pixel arrays according to claim 15 , in which the at least two pixel arrays comprise a different color.

28. Light guide arrangement comprising:

a pixel array, for a display in polar coordinates, which:

has a plurality of light emitting devices, μ-LEDs, μ-LED arrays, or μ-LED modules

which are arranged in at least one row starting from a starting point on an axis through the starting point, wherein

a plurality of pixel elements have a height and a variable width such that the variable width of the plurality of pixel elements substantially increases from the starting point;

or comprising

a μ-display and a projection optics, wherein the μ-display comprises a matrix with pixels for emission of visible light and wherein each pixel comprises several μ-LEDs with spectrally different light emission; and wherein each pixel is assigned a separate collimation optics preceding the projection optics,

characterised in that

the collimation optics are configured in such a way that enlarged and overlapping intermediate images of the μ-LEDs of the respective pixel are generated in a beam path in front of the projection optics.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 8, 2020
From: BRICK, PETER; DROLET, JEAN-JACQUES; HALBRITTER, HUBERT; KREINER, LAURA; SCHWARZ, THOMAS; RUEGHEIMER, TILMAN; SINGER, FRANK
To: OSRAM OPTO SEMICONDUCTORS GMBH
Reel/Frame 054575/0106 →
Priority Claims (6)
DK PA201970059 · Jan 29, 2019 · national
DE 102019113793.4 · May 23, 2019 · national
DE 102019116312.9 · Jun 14, 2019 · national
DE 102019118082.1 · Jul 4, 2019 · national
DE 102019118085.6 · Jul 4, 2019 · national
DE 102019130934.4 · Nov 15, 2019 · national
Continuity (2)
Continuation PCTEP2020052191 · Jan 29, 2020
Related Publication 20210080637A1 · Mar 18, 2021
Cited By (31)
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