Display device
11257424 · 2022-02-22
Assignee
Inventors
Cpc classification
G09G2320/029
PHYSICS
G09G2360/14
PHYSICS
International classification
Abstract
A display device is disclosed. In an embodiment a display device includes a plurality of image points, each image point comprising at least one active region configured to generate first radiation, a carrier including a drive circuit for the plurality of image points and a detector assigned to at least some image points, the detector configured to receive second radiation, wherein at least some image points are configured to act either as an emitter or as a detector during operation of the display device.
Claims
1. A display device comprising: a plurality of image points, each image point comprising at least one active region configured to generate first radiation; a carrier comprising a drive circuit configured to drive the plurality of image points; and one or several detectors assigned to at least some image points, the one or several detectors configured to receive second radiation, wherein at least some image points are configured to act either as an emitter or as a detector during operation of the display device, wherein the active regions of several image points are formed from a common semiconductor layer sequence, wherein the image points, which are configured to act either as the emitter or as the detector during the operation of the display device, are configured to detect the first radiation, and wherein some of the image points, whose active regions are configured to generate radiation in different spectral ranges, are formed by different compound semiconductor material systems.
2. The display device according to claim 1, wherein at least one of the several detectors is integrated in the carrier which comprises the drive circuit.
3. The display device according to claim 1, wherein at least one of the one or several detectors is arranged between two image points in plan view of the display device.
4. The display device according to claim 1, wherein at least one of the several detectors overlaps with at least one image point in plan view of the display device.
5. The display device according to claim 1, wherein at least one of the one or several detectors is arranged without overlapping with the image points in plan view of the display device.
6. The display device according to claim 1, wherein at least one separate detector is assigned to each image point.
7. The display device according to claim 1, wherein each image point comprises at least two subimage points and a separate detector is assigned to each subimage point.
8. The display device according to claim 1, wherein at least one detector is assigned to a plurality of image points.
9. The display device according to claim 1, wherein an optical barrier is arranged between the active regions of the image points and the one or several detectors.
10. The display device according to claim 1, wherein the one or several detectors comprise a III-V compound semiconductor material.
11. The display device according to claim 1, wherein at least one of the several detectors is based on silicon.
12. The display device according to claim 1, wherein each image point comprises a respective subimage point configured to generate radiation in a red spectral range, a blue spectral range and a green spectral range, and a detector, and wherein the detector and the subimage points are arranged side by side on the carrier.
13. The display device according to claim 1, wherein the active region of the image point and a photosensitive region of the one or several detectors are formed in the common semiconductor layer sequence.
14. The display device according to claim 1, wherein the display device is configured to drive the active regions depending on a signal of the one or several detectors.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further designs and functionalities result from the following description of the exemplified embodiments in connection with the figures, in which
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(9) In the figures, the same reference numerals are used to denote same, similar or equivalent elements.
(10) The figures are schematic illustrations and therefore are not necessarily true to scale. Rather, comparatively small elements and, in particular, layer thicknesses can be illustrated exaggeratedly large for clarification.
DETAILED DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
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(12) The image points 2 each comprise subimage points 2a, 2b and 2C, which are configured to generate radiation in the green, red or blue spectral range. Furthermore, a detector 3 is assigned to each image point 2.
(13) Alternatively or additionally, the image point 2 can also comprise a subimage point 2d, which emits radiation in the infrared spectral range. This is shown in the side view in
(14) The display device 1 comprises a carrier 5 which comprises a drive circuit 6 for the plurality of image points 2. Here, the detectors 3 are located at positions of the carrier 5 where no image points 2 are placed.
(15) The detectors 3 each comprise a photosensitive region 30 in which the incident radiation causes an electrical signal.
(16) In this exemplified embodiment, the detectors 3 are integrated in the carrier 5. Thus, the photosensitive regions 30 of the detectors 3 are located in the carrier 5, in which also the drive circuit of the image points 2 is formed. The detectors 3 and drive circuit 6 can be integrated into the carrier 5, especially in CMOS technology.
(17) The image points 2 are arranged on a main surface 50 of the carrier 5 and are attached to it in particular.
(18) The image points 2 each comprise an active region 20 for generating radiation, for example, radiation in the blue spectral range. The primary radiation generated in the active region can be converted to secondary radiation in another spectral range by means of a radiation conversion material 8a, 8b, so that, for example, the subimage point 2a emits secondary radiation in the green spectral range and the subimage point 2b emits secondary radiation in the red spectral range, whereas the subimage point 2c emits primary radiation in the blue spectral range.
(19) Thus, the display device 1 comprises a detector 3 for each image point 2 comprising a color triad in the red, green and blue spectral range.
(20) In contrast to an arrangement in which emitters and detectors are arranged side by side in two separate matrix arrangements, the detectors 3 and the subimage points of one image point 2 have the same perspective. An optical element can be arranged downstream of the display device 1, wherein both the radiation to be emitted and the radiation to be detected passes through the optical element. For example, the optical element projects the radiation emitted by the image points 2 and concentrates the radiation incident on the display device onto the associated detectors 3. This reduces the number of optical elements required.
(21) For example, the image points 2 or subimage points 2a, 2b, 2c, 2d are luminescent diodes, such as incoherent emitters, such as light-emitting diodes or light-emitting diodes with resonant cavity (RCLED), or coherent emitters, for example, surface-emitting lasers with vertical cavity (Vertical Cavity Surface Emitting Laser, VCSEL).
(22) During the production of the display device 1, the image points 2 can result from a common semiconductor layer sequence 200. For example, a complete wafer, such as a sapphire wafer, comprising light-emitting structures arranged on it is bonded to a functional silicon wafer. Advantageously, areas of the wafer with the light-emitting structures where a detector is located after bonding are omitted when producing reflective layers such as a silver mirror or when forming a roughening.
(23) For example, the semiconductor layer sequence 200 provided for the image points 2, which comprises the active regions 20, is epitaxially deposited on a growth substrate and attached to the carrier 5. After attachment, the carrier 5 can mechanically stabilize the semiconductor layer sequence so that the growth substrate can be removed. Thus, a particularly high density of image points 2 can be achieved. Such a display device per se, i.e., without detectors, and a method for producing such a display device are described in the publication U.S. Pat. No. 9,362,335, the entire disclosure content of which is hereby explicitly incorporated by reference.
(24) Alternatively, individual image points 2 can, for example, be transferred to a functional silicon carrier which already comprises the drive circuit 6. The image points 2 or the individual subimage points 2a, 2b, 2c can thus also be formed by individual, independently produced components which are attached to the carrier 5.
(25) The exemplified embodiment shown in
(26) The exemplified embodiment shown in
(27) Such a design is particularly advantageous if a lower spatial resolution is required for the radiation to be received than for the image points. Furthermore, a larger lateral extension of the photosensitive region of the detectors typically improves the signal-to-noise ratio.
(28) For example, the detectors 3 are provided to track the pupil movement of the human eye.
(29) The exemplified embodiment shown in
(30) The exemplified embodiment shown in
(31) The exemplified embodiment shown in
(32) For example, the drive circuit 6 is designed in such a way that the active regions 20 of the image points 2 can be operated both in the forward direction and in the reverse direction. When operating in the reverse direction, the image points 2 can act as detectors 3.
(33) The exemplified embodiment shown in
(34) For example, the display device 1 is designed for a system for time of flight measurement or as a “structured light” camera.
(35) An optical barrier 7 is located in a direct beam path between the image point 2 and the detector 3. For example, the optical barrier 7 completely surrounds either the image point 2 or the detector 3 in the lateral direction. This reduces the amount of radiation coming from the image point 2 or an adjacent image point and strikes detector 3 directly without being reflected by the target object.
(36) The exemplified embodiment shown in
(37) The number of detectors 3 may, but does not have to correspond to the number of subimage points 2a, 2b, 2c. Furthermore, the lateral extension of a detector 3 can also be larger than the lateral extension of the active region of the corresponding subimage point arranged on it. For example, a detector 3 can also extend continuously over two or more subimage points 2a, 2b, 2c, for example, over all subimage points 2a, 2b, 2c of one image point 2.
(38) The invention is not limited by the description of the exemplified embodiments. Rather, the invention includes any new feature and any combination of features, which in particular includes any combination of features in the patent claims, even if that feature or combination itself is not explicitly mentioned in the patent claims or the exemplified embodiments.