Method and system for forming LED light emitters
09816691 · 2017-11-14
Assignee
Inventors
Cpc classification
H05K2201/042
ELECTRICITY
H05K3/0097
ELECTRICITY
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01L2924/0002
ELECTRICITY
H05K1/0278
ELECTRICITY
F21V5/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01L33/08
ELECTRICITY
F21V9/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K1/189
ELECTRICITY
H05K2201/10121
ELECTRICITY
F21V29/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V5/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21K9/90
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K3/4688
ELECTRICITY
H05K2203/0143
ELECTRICITY
H05K2201/09127
ELECTRICITY
H01L2924/0002
ELECTRICITY
H05K1/0204
ELECTRICITY
F21V21/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K2203/171
ELECTRICITY
H01L2924/00
ELECTRICITY
F21V9/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V19/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01L2924/00
ELECTRICITY
International classification
H01L25/075
ELECTRICITY
F21K9/90
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K3/00
ELECTRICITY
H05K1/18
ELECTRICITY
F21V19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01L33/08
ELECTRICITY
F21V5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V23/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V21/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A flexible sheet of light-emitting diode (LED) light emitters includes a support substrate having a thermally conductive material. The flexible sheet of LED light emitters also has an LED emitter sheet overlying the support substrate, and the LED emitter sheet including a plurality of LED light emitters. The flexible sheet of LED light emitters also has a flexible circuit sheet overlying the LED emitter sheet, and a phosphor sheet overlying the flexible circuit sheet. The phosphor sheet includes a wave-length converting material. The flexible sheet of LED light emitters also has a lens sheet overlying the phosphor sheet. The lens sheet includes a plurality of lenses.
Claims
1. A flexible sheet of light-emitting diode (LED) light emitters, comprising: a flexible support substrate including a thermally conductive material; a plurality of LED light emitters overlying the flexible support substrate; a flexible circuit sheet coupled to the plurality of LED light emitters; a phosphor layer overlying the plurality of LED light emitters, the phosphor layer including a wave-length converting material; and a plurality of lenses overlying the phosphor layer.
2. The flexible sheet of LED light emitters of claim 1, wherein each of the plurality of LED light emitters comprises multiple LED dies.
3. The flexible sheet of LED light emitters of claim 1, wherein the flexible sheet of LED emitters is also stretchable.
4. The flexible sheet of LED light emitters of claim 1, wherein the phosphor layer comprises a plurality of phosphor regions, each of the phosphor regions is aligned to a corresponding one of the plurality of LED light emitters.
5. The flexible sheet of LED light emitters of claim 1, wherein each of the plurality of lenses is aligned to a corresponding one of the plurality of LED light emitters.
6. The flexible sheet of LED light emitters of claim 1, wherein the plurality of lenses are singulated from a lens sheet comprising pre-formed notches between adjacent lenses.
7. The flexible sheet of LED light emitters of claim 6, wherein the lens sheet comprises separate lenses.
8. The flexible sheet of LED light emitters of claim 1, wherein the plurality of LED light emitters are singulated from an LED emitter sheet comprising a ceramic substrate with pre-formed notches between adjacent emitters.
9. The flexible sheet of LED light emitters of claim 1, wherein the plurality of LED light emitters comprises separate LED emitters.
10. The flexible sheet of LED light emitters of claim 1, wherein the plurality of LED light emitters are inorganic solid-state based LED light sources.
11. A flexible sheet of light-emitting diode (LED) light emitters, comprising a flexible support substrate, a flexible circuit layer, a flexible phosphor layer, a plurality of LED light emitters, and a plurality of lenses, wherein: the flexible support substrate includes a thermally conductive material; the flexible circuit layer includes conductive wires; the plurality LED light emitters overlies the flexible support substrate; the plurality LED light emitters are electrically coupled to the flexible circuit layer; the flexible phosphor layer overlies the plurality LED light emitters; and the plurality of lenses overlies the plurality LED light emitters.
12. The flexible sheet of LED light emitters of claim 11, wherein each of the plurality of LED light emitters comprises multiple LED dies.
13. The flexible sheet of LED light emitters of claim 11, wherein each of the plurality of lenses is aligned to a corresponding one of the plurality of LED light emitters.
14. The flexible sheet of LED light emitters of claim 11, wherein the plurality of lenses are singulated from a lens sheet comprising pre-formed notches between adjacent lenses.
15. The flexible sheet of LED light emitters of claim 11, wherein the plurality of LED light emitters are singulated from an LED emitter sheet comprising a ceramic substrate sheet with pre-formed notches between adjacent emitters.
16. The flexible sheet of LED light emitters of claim 11, wherein the flexible sheet of LED light emitters is also stretchable.
17. The flexible sheet of LED light emitters of claim 11, wherein the flexible circuit layer is also stretchable.
18. The flexible sheet of LED light emitters of claim 17, wherein the flexible circuit layer comprises conductive wires that are in zig-zag form.
19. The flexible sheet of LED light emitters of claim 11, wherein the plurality of LED light emitters are inorganic solid-state based LED light sources.
20. The flexible sheet of LED light emitters of claim 11, wherein the flexible circuit layer is disposed under the plurality of LED light emitters.
21. The flexible sheet of LED light emitters of claim 11, wherein the flexible circuit layer is disposed over the plurality of LED light emitters.
22. The flexible sheet of LED light emitters of claim 11, wherein the flexible circuit layer is disposed under the plurality of LED light emitters, and a second flexible circuit layer is disposed over the plurality of LED light emitters.
23. A flexible sheet of light-emitting diode (LED) light emitters, comprising: a flexible circuit sheet, the flexible circuit sheet including conductive wires; a plurality of LED light emitters electrically coupled to the flexible circuit sheet; a phosphor material overlying each of the plurality of LED light emitters, the phosphor material including a wave-length converting material; and a plurality of lenses, wherein each of the plurality of lenses is aligned to a corresponding one of the plurality of LED light emitters.
24. The flexible sheet of LED light emitters of claim 23, wherein each of the plurality of LED light emitters comprises multiple LED dies.
25. The flexible sheet of LED light emitters of claim 23, further comprising a flexible support substrate.
26. The flexible sheet of LED light emitters of claim 25, wherein the flexible support substrate comprises a thermally conductive material.
27. The flexible sheet of LED light emitters of claim 25, wherein the flexible support substrate is disposed under the flexible sheet of LED light emitters.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(5) The description below is presented with reference to a series of drawing figures enumerated above. These diagrams are merely examples, and should not unduly limit the scope of the claims herein. In connection with the various aspects illustrated and described, one of ordinary skill in the art would recognize other variations, modifications, and alternatives.
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(7) Lens sheet 110 includes a sheet of transparent material with lenses 112. The transparent material can be an optically transparent material suitable for forming lenses. For example, glass or silicone can be used to form the lens sheet. In some embodiments, the lens sheet is made by molding glass or silicone, and the lenses can be formed integrally with the sheet. As shown in
(8) In a conventional LED emitter, a primary lens is usually used to extract light from the LED die, and a secondary lens is often used for beam forming purposes. In some cases, the primary lens may form part of the emitter, and the secondary lens may be part of a housing. Examples of lenses are described in U.S. patent application Ser. No. 12/420,802, filed Apr. 8, 2009, entitled “Total Internal Reflection Lens And A Mechanical Retention And Locating Device.” In some embodiments of the present invention, the lens can perform the functions both the primary lens and secondary lens, i.e., both light extracting and beam forming. In some embodiments, the lens sheet is made from silicone, and the sheet can remain flexible. In some embodiments, a glass lens sheet is used to take advantage of the better heat conductive properties of glass than silicone. Lens sheets made from glass can be rigid. In some embodiments, preformed notches or cracks 114 are formed in the lens sheet to facilitate singulation as described below. In an example, these notches or cracks can be made by laser. In other example, the notches or cracks can be formed by a mechanical method. In some examples, notches or cracks are formed on both front and back sides of the sheet and penetrate partially into the sheet. In other examples, the notches or cracks can be formed on only the front side or the back side.
(9) In
(10) Flexible circuit sheet 130 includes conductive lines that make contacts to the LED emitters in emitter sheet 140. In some embodiments, flexible circuit sheet 130 can include a flexible plastic sheet made of, e.g., polyimide or polyester, etc. In some embodiments, circuit sheet 130 can include conductive patterns formed in the sheet or over the sheet, and can also include solder joints or connectors. The flexible material can protect solder joints, electrical contacts, and wires that are formed on the sheet or embedded in the sheet. The conductive patterns may be printed on the plastic sheet.
(11) In some embodiments, circuit sheet 130 can be made of a stretchable material, for example, a polymer such as polyimide. In some embodiments, the conductive wires can be made in zig-zag shapes to allow stretching. The stretching may occur during manufacturing (e.g., roller for sigulation) or in actual use (e.g., when extended to cover a non-planar target area). As described below, circuit sheet 130 is also configured to allow access and control of individual LED dice.
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(13) The ceramic substrate sheet tends to be rigid. In some embodiments, pre-formed notches or cracks 144 are formed in the substrate allow singulation. Similar to the notches or cracks described above in connection with the lens sheet, the notches or cracks in the substrate can be made by laser. In other example, the notches or cracks can be formed by a mechanical method. In some examples, notches or cracks are formed on both front and back sides of the sheet and penetrate partially into the sheet. In other examples, the notches or cracks can be formed on only the front side or the back side. In some embodiments, no electrical contacts are formed at the bottom layer.
(14) In
(15) According to another embodiment of the invention, the sheets described above can be made separately. These sheets are then stacked together, e.g., by lamination, to form an assembled sheets of LED emitters. In an embodiment, a method for forming a flexible sheet of LED light emitters includes forming the individual sheets, which can include: forming a lens sheet having a plurality of micro lenses; forming a phosphor sheet including a wave-length converting material; forming a flexible circuit sheet; forming a ceramic substrate sheet including a plurality of LED light emitters; and forming a support substrate including a thermally conductive material.
In some embodiments, these sheets are then brought together to form a stack including, from top to bottom, the lens sheet, the phosphor sheet, the flexible circuit sheet, the ceramic substrate sheet, and the support substrate. In other embodiments, one or more sheets can be omitted, or disposed in a different position. For example, in some embodiments a flexible circuit sheet can be formed below the LED sheet, instead of above the LED sheet. In other embodiments, a flexible circuit sheet can be formed above and below the LED sheet to provide electrical connections.
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(19) In flexible electronics, electronic circuits can be formed by mounting electronic devices on flexible plastic substrates, such as polyimide, PEEK or transparent conductive Polyester film. Additionally, flex circuits can be screen printed silver circuits on polyester. Flexible electronic assemblies can often be manufactured using identical components as those used for rigid printed circuit boards, allowing the board to conform to a desired shape, or to flex during its use. As described above, in embodiments of the present invention, the components for multiple LED emitters are formed in sheets of materials. In some embodiments, phosphor sheet 120, circuit sheet 130, and protective sheet 150 can be made of flexible and stretchable material, and lens sheet 110 and emitter sheet 140 can be rigid with pre-formed notches or cracks. After singulation, the emitters and lenses for individual emitters are held together by the flexible and stretchable layers as described above. The interconnects in circuit layer 130 can be formed in zig-zag shapes to allow movement of the LED emitters when the substrate is flexed or stretched. Depending on the embodiments, phosphor sheet 120, circuit sheet 130, and protective sheet 150 can be made of flexible, stretchable, or flexible and stretchable materials.
(20) As described above, flexible, stretchable, or flexible and stretchable, sheets of LED emitters can be made using the method and structures provided by embodiments of the present invention. Embodiments of the present invention can provide one or more of the following benefits over conventional techniques. For example, the methods and structures can be used in mass production of LED emitters, lowering the manufacturing cost. In some embodiments, the singulated emitters can be separated by cutting the remaining sheets. In other embodiments, the flexible, stretchable, or flexible and stretchable sheets of LED emitters can be used in different applications. These applications includes flat panels, wall lighting (e.g., the sheet of LED emitters cab be pasted on target area), lighting on a non-flat surface, clothing (signage on jackets or shirts signage for safety, for example). In other embodiments, the emitter sheets also can find applications in traffic control. For example, the emitter sheets can be disposed at road side or even as part of the pavement for providing lighting or traffic signs.
(21) In the above description, specific circuits and examples are used to illustrate the embodiments. However, it is understood that the examples and embodiments described herein are for illustrative purposes only and that various modifications or changes in light thereof will be suggested to persons skilled in the art and are to be included within the spirit and purview of this invention.