LIGHT EMITTING DIODES AND REFLECTOR
20170207202 ยท 2017-07-20
Inventors
- Floris Maria Hermansz Crompvoets (Bunde, NL)
- NORBERTUS ANTONIUS MARIA SWEEGERS (LIEROP, NL)
- Hugo Johan Cornelissen (Escharen, NL)
- Marc Andre De Samber (Eindhoven, NL)
Cpc classification
H01L2924/0002
ELECTRICITY
F21K9/90
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01L2924/0002
ELECTRICITY
H01L2924/00
ELECTRICITY
H10H20/841
ELECTRICITY
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
H01L25/075
ELECTRICITY
F21K9/90
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Proposed is a light source comprising: first and second semiconductor diode structures adapted to generate light, the first and second semiconductor diode structures being laterally adjacent to each other; a light output section at least partially overlapping both of the first and second semiconductor diode structures and adapted to output light from the first and second semiconductor diode structures; and a light reflecting structure at least partially enclosing side surfaces of the first and second semiconductor diode structures and the light output section and adapted to reflect light from the semiconductor diode structures towards the light output section. The area of the light output section is less than the combined area of the first and second semiconductor diode structures.
Claims
1. A light source comprising: a first semiconductor diode structure and a second semiconductor diode structures that are adapted to generate light, the first semiconductor diode strucure and the second semiconductor diode structures being laterally adjacent to each other; a light output section at least partially overlapping the first semiconductor diode structure and at least partially overlapping the second semiconductor diode structure the light output section being adapted to output light from the first semiconductor diode structure and the second semiconductor diode structures; a layer of optical enhancement material between the light output section and at least a portion of the first semiconductor diode structure or the second semiconductor structure, and a light reflecting structure at least partially enclosing side surfaces of at least one of, the first semiconductor diode structure, or the second semiconductor diode structure, or side surfaces of the layer of optical enhancement material wherein the light reflecting structure is adapted to reflect light from the semiconductor diode structures towards the light output section, wherein the light reflecting structure at least partially encloses the light output section, wherein the area of the light output section is less than combined areas of the first semiconductor diode structure and the second semiconductor diode structure and less than the area of the layer of optical enhancement material, and wherein there is a lateral separation between adjacent edges of the first semiconductor diode structure and the second semiconductor diode structures, the lateral separation being less than 10% of the lateral width of at least one of, the first semiconductor diode structures, or second semiconductor diode structure.
2. The light source of claim 1, wherein the light output section comprises an aperture formed in the light reflecting structure.
3. The light source of claim 1, wherein the optical enhancement material covers the combined areas of the first semiconductor diode structure and the second semiconductor structure.
4. The light source of claim 1, wherein the aperture of the light output section comprises no optical enhancement material.
5. The light source of claim 1, wherein at least one of, the first semiconductor diode structure, or and the second semiconductor diode structure comprises a pre-structured sapphire LED.
6. The light source of claim 1, further comprising a reflective coating at least partially overlapping the light reflecting structure.
7. The light source of claim 1, further comprising an automotive light.
8. The light source of claim 1, further comprising a projector light.
9. A method of manufacturing a light source comprising: arranging a first semiconductor diode structure and a second semiconductor diode structure that are adapted to generate light to be laterally adjacent to each other; providing a light output section at least partially overlapping the first semiconductor diode structure and at least partially overlapping the second semiconductor diode structure, the light output section being adapted to output light from the first semiconductor diode structure and the second semiconductor diode structures; forming a layer of optical enhancement material between the light output section and at least a portion of the first semiconductor diode structure and the second semiconductor structure and providing a light reflecting structure that at least partially enclosing sides surfaces of at least one of, the first semiconductor diode structure or the second semiconductor diode structure or side surfaces of the layer of optical enhancement material, the light reflecting structure being adapted to reflect light from the semiconductor diode structures towards the light output section, wherein the light reflecting structure at least partially encloses the light output section, wherein the area of the light output section is less than combined areas of the first semiconductor diode structure and the second semiconductor diode structure and less than the area of the layer of optical enhancement material, and wherein the step of arranging comprises arranging the first semiconductor diode structure and second semiconductor diode structure such that there is a lateral separation between adjacent edges of the first semiconductor diode structure and the second semiconductor diode structures, the lateral separation being less than 10% of at least one of, the lateral width of the first semiconductor diode structure or the second semiconductor diode structure.
10. The method of claim 9, wherein the light output section comprises an aperture formed in the light reflecting structure.
11. The method of claim 9, wherein forming a layer of optical enhancement material includes covering the the combined areas of the first semiconductor diode structure and the second semiconductor structure.
12. The method of claim 9, wherein the aperture of the light output section comprises no optical enhancement material.
13. The method of claim 9, further comprising, providing at least a portion of an automotive light.
14. The method of claim 9, further comprising, providing at least a portion of a projector light.
15. The method of claim 9, further comprising, providing at least a portion of a camera flashlight.
16. The method of claim 9, further comprising, providing at least a portion of a spot light.
17. The light source of claim 1, further comprising a camera flashlight.
18. The light source of claim 1, further comprising a spot light.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Examples of the invention will now be described in detail with reference to the accompanying drawings, in which:
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0037] The invention provides a light source comprising a plurality of LED light sources and a method for manufacturing the same. Embodiments may be of particular relevance to applications that require light of high or increased luminance from a relatively small and/or efficient light source.
[0038] Embodiments employ the concept of arranging light emitting semiconductor diode structures (such as LEDs) to be laterally adjacent and then providing a single light output section (of reduced size compared to the aligned diode structures) overlapping the adjacent diode structures. In this way, a common light output section may be employed or shared across multiple LED light sources to provide savings or reductions in materials and/or manufacturing complexity.
[0039] The term vertical, as used herein, means substantially orthogonal to the surface of a substrate. The terms lateral or horizontal, as used herein, means substantially parallel to the surface of a substrate. Also, terms describing positioning or locations (such as above, below, top, bottom, etc.) are to be construed in conjunction with the orientation of the structures illustrated in the diagrams.
[0040] The diagrams are purely schematic and it should therefore be understood that the dimensions of features are not drawn to scale. Accordingly, the illustrated thickness and/or separation of any of the layers should not be taken as limiting. For example, a first layer drawn as being thicker than a second layer may, in practice, be thinner than the second layer.
[0041] Referring to
[0042] The light source comprises a plurality of LEDs 12 positioned on the upper surface of a substrate 20. Here, the plurality of LEDs 12 are arranged in a 2x4 array comprising two columns of LEDs 12, each column having four rows of LEDs 12. Thus, it will be appreciated that the depicted arrangement of LEDs 12 may be described as comprising four pairs 12.sub.1,12.sub.2,12.sub.3,12.sub.4 of closely-positioned LED light sources 12 which are aligned in a column to form a column-like array of pairs. Being positioned on the flat upper surface of the substrate, the LEDs 12 can be described as being laterally adjacent to each other since they all lie in the same horizontal plane.
[0043] A light output section 18 is provided on top of the LEDs 12 such that it partially overlaps the top/upper surface of each LED 12. The light output section 18 is adapted to output light from the LEDs 12. Here, the light output section 18 comprises an optical enhancement material such as phosphorescent material or a lumiramic.
[0044] Accordingly, when viewed from directly above (i.e. in plan view as depicted in
[0045] A light reflecting structure 16 encloses the side surfaces of the LEDs 12 and the light output section 18, and also encloses the LED top/upper surfaces that are not covered by the light output section 18. Thus, the light reflecting structure 16 covers the LEDs 12 and light output section 18 such that only the top/upper surface of the light output section 18 is exposed (i.e. is not covered by the light reflecting structure 16). The light reflecting structure 16 comprises a highly reflective material that reflects light from LEDs 12 towards the light output section 18. The light reflecting structure 16 may therefore be considered as forming a light mix box from which light can only escape via the light output section 18.
[0046] Because the area of the light output section 18 is less than the total area of the LEDs, the embodiment employs the concept of having a light output section 18 which is smaller than the LEDs 12 it is adapted to output light from. This enables increased luminance from the LEDs 12 to be obtained. Furthermore, the use of a single light output section 18 partially overlapping multiple light generating structures (e.g. LEDs 12) enables a single component or structure to be employed and shared across multiple light sources. A reduction in device complexity and required materials can therefore be obtained.
[0047] Referring to
[0048] The embodiment of
[0049] As with the embodiment of
[0050] Referring to
[0051] The embodiment of
[0052] Also, there is provided a layer 22 of optical enhancement material below the light output section 18 and overlapping all of the LEDs 12. Here, the light output optical enhancement material comprises a lumiramic or phosphorescent material which is adapted to convert the color of light emitted by the LEDs.
[0053] The light reflecting structure 16 covers the side surfaces of the layer 22 of optical enhancement material as well as a portion of the upper surface of the layer 22 of optical enhancement material. In other words, the light reflecting structure 16 covers the LEDs 12 and layer 22 of optical enhancement material such that only the top/upper surface of layer 22 of optical enhancement material is exposed (i.e. uncovered) by the light output section 18.
[0054] Hence, it will be appreciated the
[0055] Alternatively, the embodiment of
[0056] It is noted that, in practice, the light reflecting structure 16 may not be entirely reflecting. In other words, the light reflecting structure may not have substantially 100% reflectivity, and so some light may leak through it. This increases the size of the light outputting area and hence reduces luminance. This may introduce color over position effects (e.g. a blue halo around white light in the center). To address this, embodiments may be made light leak tight by blocking the light with an opaque/reflective coating. Such a modification to the embodiment of
[0057] Other variations to the disclosed embodiments can be understood and effected by those skilled in the art in practicing the claimed invention, from a study of the drawings, the disclosure, and the appended claims. In the claims, the word comprising does not exclude other elements or steps, and the indefinite article a or an does not exclude a plurality. A single processor or other unit may fulfill the functions of several items recited in the claims. The mere fact that certain measures are recited in mutually different dependent claims does not indicate that a combination of these measured cannot be used to advantage. A computer program may be stored/distributed on a suitable medium, such as an optical storage medium or a solid-state medium supplied together with or as part of other hardware, but may also be distributed in other forms, such as via the Internet or other wired or wireless telecommunication systems. Any reference signs in the claims should not be construed as limiting the scope.