FLEXIBLE SUBSTRATE WITH ADAPTABLE PARAMETERS FOR INTEGRATED LED ARRAYS
20170006710 ยท 2017-01-05
Inventors
- Frederic Stephane Diana (Santa Clara, CA, US)
- Patrick Allen Bournes (Santa Clara, CA, US)
- Walter Daeschner (San Jose, CA, US)
- Yong Seok Choi (Cupertino, CA, US)
- Axel Mehnert (Mountain View, CA, US)
- Mohiuddin Mala (San Jose, CA, US)
Cpc classification
H05K3/04
ELECTRICITY
H10H20/857
ELECTRICITY
H01L2924/0002
ELECTRICITY
H01L2924/00
ELECTRICITY
H01L2924/0002
ELECTRICITY
H05K1/0293
ELECTRICITY
H05K1/189
ELECTRICITY
H01L2924/00
ELECTRICITY
International classification
Abstract
A patterned conductive layer on a flexible substrate includes pads for mounting an array of LEDs, conductive strips, and conductive tabs that couple the conductive strips to the pads. The desired circuit configuration is created by removing select tabs by punching holes or otherwise piercing the flexible substrate at the location of the tabs. In some embodiments, the patterned conductive layer is arranged to permit each LED to be mounted in either of two mirrored orientations, and in some embodiments, the patterned conductive layer is arranged to permit a separation between LEDs that is not predefined by the pattern. In some embodiments, the unmodified patterned conductive layer is arranged to provide a parallel circuit configuration, and the modified patterned conductive layer is arranged to provide a series or series-parallel configuration.
Claims
1-12. (canceled)
13: A method comprising: providing flexible substrates each including a patterned conductive layer comprising at least two parallel conductive strips, for a first application, mounting first LEDs on a first plurality of the flexible substrate with a first spacing between adjacent first LEDs, and for a second application, mounting second LEDs on a second plurality of the flexible substrate with a second spacing between adjacent second LEDs, wherein the two parallel conductive strips are spaced apart to accommodate conducive pads of the first and the second LEDs.
14: The method of claim 13, wherein the substrate is a flexible polymer substrate.
15: The method of claim 13, including providing the first LEDs and the second LEDs, wherein each LED is a self-supporting LED.
16-20. (canceled)
21: The method of claim 13, further comprising removing at least a portion of the patterned conductive layer on the first plurality of the flexible substrates or the second plurality of the flexible substrates to form a particular circuit arrangement.
22: The method of claim 21, wherein the removing of at least the portion of the patterned conductive layer includes controlling a machine to pierce the flexible substrate at one or more select locations, thereby removing at least the portion at the one or more select locations.
23: The method of claim 21, wherein the at least two parallel conductive strips are arranged such that an original circuit arrangement without the removal of the portion of the patterned conductive layer provides at least one parallel circuit arrangement of LEDs, and the particular circuit arrangement after the removal provides at least one series circuit arrangement of LEDs.
24: The method of claim 21, wherein: the patterned conductive layer further includes conductive tabs that couple the at least two parallel conductive strips; and the removal of the portion of the patterned conductive layer includes removal of at least one of the conductive tabs.
25: The method of claim 21, wherein the particular circuit formed by the removal of the portion of the patterned conductive layer includes at least a series-parallel arrangement of LEDs.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] The invention is explained in further detail, and by way of example, with reference to the accompanying drawings wherein:
[0010]
[0011]
[0012]
[0013] Throughout the drawings, the same reference numerals indicate similar or corresponding features or functions. The drawings are included for illustrative purposes and are not intended to limit the scope of the invention.
DETAILED DESCRIPTION
[0014] In the following description, for purposes of explanation rather than limitation, specific details are set forth such as the particular architecture, interfaces, techniques, etc., in order to provide a thorough understanding of the concepts of the invention. However, it will be apparent to those skilled in the art that the present invention may be practiced in other embodiments, which depart from these specific details. In like manner, the text of this description is directed to the example embodiments as illustrated in the Figures, and is not intended to limit the claimed invention beyond the limits expressly included in the claims. For purposes of simplicity and clarity, detailed descriptions of well-known devices, circuits, and methods are omitted so as not to obscure the description of the present invention with unnecessary detail.
[0015]
[0016] As illustrated in
[0017] The substrate material 110 may be rigid or flexible, although the principles of this invention are particularly well suited for a flexible substrate material 110. On a flexible substrate material 110, such as a thin insulating polymer film, the conductive strips may be formed by etching metal foil cladding (normally of copper) from polymer bases, plating metal or printing of conductive inks upon polymer bases, and other conventional processes.
[0018] In an example embodiment using a flexible substrate material 110, the substrate 100 may be provided on a continuous roll, and cut to size for each different application. Of particular note, such a roll may be provided by the producer of the substrate 100, and cut to size at the purchaser's locale, using common tools such as a knife or scissor.
[0019] In a typical application, the substrate 100 is designed to accommodate a particular family of light emitting devices with a well-defined pair of conductive pads for providing external power to each device. The width 122, 132 of each of the conductive strips 120, 130 and the space 125 between the conductive strips 120, 130 are sized to accommodate the mounting of the light emitting devices via these conductive pads. In a preferred embodiment, the strips 120, 130 accommodate the mounting of the light emitting devices in either of two mirrored orientations, as detailed below; accordingly, the widths 122, 130 of the strips 120, 130 may be equal for some embodiments.
[0020]
[0021] The light emitting devices 150 may be mounted on the strips 120, 130 using any of a variety of conventional techniques, including soldering or using a conductive adhesive to couple the pads 151, 152 to the strips 120, 130, respectively. In like manner, the external connection 140+, 140 to the strips 120, 130 may be via a wire-attach process, via the use of connectors that clamp onto the substrate 100, via the attachment of rigid pins to the strips 120, 130, that are plugged into a power source, and so on.
[0022] Of particular note, in the arrangement of
[0023] In the alternative strips 120, 130 may include several parallel strips that can be used collectively as one large strip or to accommodate a variety light emitting device sizes or a variety of pad arrangements. In these embodiments, connections may be made or broken to configure the parallel strips.
[0024] Also of note, the spacing 155 between light emitting devices 150 is not constrained by the pattern of conductors 120, 130 of the substrate 100, and may be selected based on each particular application. For example, in an arrangement for providing a ring of light sources around the perimeter of an object, the number of, and the spacing between the light emitting devices 150 may be based on the angular width of the light emission pattern (field of view) of each device, so that no dark spots are produced.
[0025]
[0026] In the example of
[0027] Light emitting device 150A is mounted in a first orientation, with its P-pad coupled to the conductive strip 120, and its N-pad coupled to the conductive strip 130. The light emitting device 150B is mounted in a second, mirrored, orientation, with its P-pad coupled to the conductive strip 130, and its N-pad coupled to the conductive strip 120.
[0028] A break 170A is introduced in the conductive strip 120, between devices 150A and 150B, for example, by punching a hole through the strip and underlying flexible substrate. This break decouples the P-pad of device 150A and the N-pad of device 150B, resulting in a series connection of the devices 150A-150B. Current will flow from 150A P-pad, through 150A, to 150A N-pad, to 150B P-pad, through 150B, to 150B N-pad.
[0029] In like manner, device 150C is oriented in the first orientation (P-Pad to strip 120), and device 150D is oriented in the second, mirrored orientation (P-Pad to strip 130), and breaks 170B, 170C decouple the P-pad of device 150B from the N-pad of device 150C, and the P-pad of device 150C from the N-pad of device 150D, placing devices 150C and 150D in series with the aforementioned series connection of devices 150A and 150D, as illustrated in
[0030] One of skill in the art will recognize that alternative circuit configurations may be provided via different breaks in the conductive strips 120, 130 and different orientation of the light emitting devices 150. For example, breaks 170A and 170C may be omitted, devices 150A and 150B may both be placed in the first orientation (P-pads to strip 120), and devices 150C and 150D may both be placed in the second orientation (P-pads to strip 130), which will provide a parallel arrangement of devices 150A-150B in series with a parallel combination of devices 150C-150D. Other configurations are also feasible.
[0031] The breaks 170 may be introduced using any number of a variety of techniques, depending upon the materials used for forming the substrate 100, the tools available for introducing the breaks, and so on. In a simple scenario of a flexible substrate material 110, a simple manual or automated punch-tool may be used to introduce each break in the conductive strips 120, 130. Alternatively, manual razor-cuts may be used to remove select sections of the strips 120, 130 in the substrate. For larger volume applications, a numerical-control (NC) machine may be also programmed to create the selected breaks via drilling or other actions. The breaks 170 may extend through the substrate material 110, but need only be formed such that current does not flow from one side of the break 170 to the other. Although each break 170 is illustrated as being between the light emitting devices, one of skill in the art will recognize that the break 170 may be introduced before the light emitting devices 150 are mounted, and may be situated beneath the mounted light emitting devices 150, allowing a reduced spacing between the devices 150.
[0032] Of particular note, as with the example of
[0033]
[0034] The patterned conductive layer on the substrate material 110 includes a plurality of horizontal strips 220A-220D (collectively, strips 220), with vertical tabs 230 interconnecting these strips at regular intervals. For ease of reference, the term tab is used herein to indicate a conductive element between two conductors that may be severed so as to isolate the conductors on either side of the tab. As in the previous figures, the substrate material 110 may be a flexible polymer substrate, and the conductive layer may be etched metal, conductive ink, and so on.
[0035] Like the conductive strips 120, 130 in
[0036]
[0037] This combination of select breaks 170A-170K and select orientations of the devices 150 provides the illustrated series-parallel circuit illustrated in
[0038]
[0039] The patterned conductive layer includes pads 310 for mounting the light emitting devices, conductive strips 320, and conductive tabs 330 that couple the pads 310 to the strips 320. As in the example of
[0040]
[0041] The breaks 170B, 170E, 170H, and 170M isolate the positive external connection 140+ from the negative external connection 140, and couple the P-pads of devices 150C and 150H to the connection 140+. The breaks 170I-170L place the devices 150F, 150G, and 150H in series between the connections 140+ and 140.
[0042] The breaks 170A and 170C-170G result in a parallel connection of devices 150A, 150B, 150D, and 150E. The P-pads of this parallel combination are coupled to the N-pad of device 150C, placing this parallel connection in series with device 150C, from connection 140+ to 140.
[0043] Although the example substrate 300 illustrates an arrangement for mounting a 33 array of light emitting devices, one of skill in the art will recognize that both the horizontal and vertical extent of the substrate 300 may be larger or smaller than illustrated. In an example embodiment, the substrate 300 may be provided on a roll or a sheet containing hundreds or thousands of mounting locales, and the purchaser may slice the roll or sheet in either or both directions to form the desired two-dimensional substrate for the particular application.
[0044] While the invention has been illustrated and described in detail in the drawings and foregoing description, such illustration and description are to be considered illustrative or exemplary and not restrictive; the invention is not limited to the disclosed embodiments.
[0045] For example, it is possible to operate the invention in an embodiment wherein other elements are also mounted on the patterned conductive layer, such as ESD (ElectroStatic Discharge) protection devices, and others.
[0046] 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. The mere fact that certain measures are recited in mutually different dependent claims does not indicate that a combination of these measures cannot be used to advantage. Any reference signs in the claims should not be construed as limiting the scope.