WO2013081972A1 - Solid state transducer devices with separately controlled regions, and associated systems and methods - Google Patents
Solid state transducer devices with separately controlled regions, and associated systems and methods Download PDFInfo
- Publication number
- WO2013081972A1 WO2013081972A1 PCT/US2012/066535 US2012066535W WO2013081972A1 WO 2013081972 A1 WO2013081972 A1 WO 2013081972A1 US 2012066535 W US2012066535 W US 2012066535W WO 2013081972 A1 WO2013081972 A1 WO 2013081972A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- electrical
- region
- regions
- die
- contacts
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Ceased
Links
Classifications
-
- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10H—INORGANIC LIGHT-EMITTING SEMICONDUCTOR DEVICES HAVING POTENTIAL BARRIERS
- H10H29/00—Integrated devices, or assemblies of multiple devices, comprising at least one light-emitting semiconductor element covered by group H10H20/00
- H10H29/10—Integrated devices comprising at least one light-emitting semiconductor component covered by group H10H20/00
- H10H29/14—Integrated devices comprising at least one light-emitting semiconductor component covered by group H10H20/00 comprising multiple light-emitting semiconductor components
- H10H29/142—Two-dimensional arrangements, e.g. asymmetric LED layout
-
- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10H—INORGANIC LIGHT-EMITTING SEMICONDUCTOR DEVICES HAVING POTENTIAL BARRIERS
- H10H20/00—Individual inorganic light-emitting semiconductor devices having potential barriers, e.g. light-emitting diodes [LED]
- H10H20/01—Manufacture or treatment
- H10H20/011—Manufacture or treatment of bodies, e.g. forming semiconductor layers
- H10H20/013—Manufacture or treatment of bodies, e.g. forming semiconductor layers having light-emitting regions comprising only Group III-V materials
-
- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10H—INORGANIC LIGHT-EMITTING SEMICONDUCTOR DEVICES HAVING POTENTIAL BARRIERS
- H10H20/00—Individual inorganic light-emitting semiconductor devices having potential barriers, e.g. light-emitting diodes [LED]
- H10H20/01—Manufacture or treatment
- H10H20/011—Manufacture or treatment of bodies, e.g. forming semiconductor layers
- H10H20/013—Manufacture or treatment of bodies, e.g. forming semiconductor layers having light-emitting regions comprising only Group III-V materials
- H10H20/0137—Manufacture or treatment of bodies, e.g. forming semiconductor layers having light-emitting regions comprising only Group III-V materials the light-emitting regions comprising nitride materials
-
- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10H—INORGANIC LIGHT-EMITTING SEMICONDUCTOR DEVICES HAVING POTENTIAL BARRIERS
- H10H20/00—Individual inorganic light-emitting semiconductor devices having potential barriers, e.g. light-emitting diodes [LED]
- H10H20/052—Light-emitting semiconductor devices having Schottky type light-emitting regions; Light emitting semiconductor devices having Metal-Insulator-Semiconductor type light-emitting regions
-
- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10H—INORGANIC LIGHT-EMITTING SEMICONDUCTOR DEVICES HAVING POTENTIAL BARRIERS
- H10H20/00—Individual inorganic light-emitting semiconductor devices having potential barriers, e.g. light-emitting diodes [LED]
- H10H20/80—Constructional details
- H10H20/81—Bodies
- H10H20/811—Bodies having quantum effect structures or superlattices, e.g. tunnel junctions
-
- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10H—INORGANIC LIGHT-EMITTING SEMICONDUCTOR DEVICES HAVING POTENTIAL BARRIERS
- H10H20/00—Individual inorganic light-emitting semiconductor devices having potential barriers, e.g. light-emitting diodes [LED]
- H10H20/80—Constructional details
- H10H20/81—Bodies
- H10H20/822—Materials of the light-emitting regions
- H10H20/824—Materials of the light-emitting regions comprising only Group III-V materials, e.g. GaP
-
- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10H—INORGANIC LIGHT-EMITTING SEMICONDUCTOR DEVICES HAVING POTENTIAL BARRIERS
- H10H20/00—Individual inorganic light-emitting semiconductor devices having potential barriers, e.g. light-emitting diodes [LED]
- H10H20/80—Constructional details
- H10H20/83—Electrodes
- H10H20/831—Electrodes characterised by their shape
- H10H20/8312—Electrodes characterised by their shape extending at least partially through the bodies
-
- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10H—INORGANIC LIGHT-EMITTING SEMICONDUCTOR DEVICES HAVING POTENTIAL BARRIERS
- H10H20/00—Individual inorganic light-emitting semiconductor devices having potential barriers, e.g. light-emitting diodes [LED]
- H10H20/80—Constructional details
- H10H20/83—Electrodes
- H10H20/831—Electrodes characterised by their shape
Definitions
- the present technology is directed generally to solid state transducer devices having a plurality of discrete regions that can be separately controlled, and associated systems and methods.
- Solid state transducer (“SST”) devices are used in a wide variety of products and applications. For example, mobile phones, personal digital assistants (“PDAs”), digital cameras, MP3 players, and other portable electronic devices utilize SST devices for backlighting. SST devices are also used for signage, indoor lighting, outdoor lighting, and other types of general illumination. SST devices generally use light emitting diodes (“LEDs”), organic light emitting diodes (“OLEDs”), and/or polymer light emitting diodes (“PLEDs”) as sources of illumination, rather than electrical filaments, plasma, or gas.
- Figure 1A is a cross-sectional view of a conventional SST device 10a with lateral contacts.
- the SST device 10a includes a substrate 20 carrying an LED structure 11 having an active region 14, e.g., containing gallium nitride/indium gallium nitride (GaN/InGaN) multiple quantum wells ("MQWs”), positioned between N-type GaN 15 and P- type GaN 16.
- the SST device 10a also includes a first contact 17 on the P-type GaN 16 and a second contact 19 on the N-type GaN 15.
- the first contact 17 typically includes a transparent and conductive material, e.g., indium tin oxide ("ITO"), to allow light to escape from the LED structure 11.
- ITO indium tin oxide
- Figure IB is a cross-sectional view of another conventional LED device 10b in which the first and second contacts 17 and 19 are opposite each other, e.g., in a vertical rather than lateral configuration.
- a growth substrate (not shown), similar to the substrate 20 shown in Figure 1A, initially carries an N-type GaN 15, an active region 14 and a P-type GaN 16.
- the first contact 17 is disposed on the P-type GaN 16, and a carrier 21 is attached to the first contact 17.
- the substrate is removed, allowing the second contact 19 to be disposed on the N-type GaN 15.
- the structure is then inverted to produce the orientation shown in Figure IB.
- the first contact 17 typically includes a reflective and conductive material, e.g., silver or aluminum, to direct light toward the N-type GaN 15.
- An optional converter material and an encapsulant can then be positioned over one another on the LED structure 11.
- the LED structure 11 can emit energy at a first wavelength, e.g., blue light, that stimulates the converter material, e.g., phosphor, to emit energy at a second wavelength, e.g., yellow light. Energy at the first and second wavelengths is combined to generate a desired color of light, e.g., white light.
- Conventional SST devices are made with a single, monolithic light delivery surface that receives a single voltage input and provides a single output across the lighting surface. Due to inherent manufacturing inconsistencies, the light output and efficiency of a given device may vary from one device to another, or within a given device. For example, the light output from devices made from a single wafer can vary as a function of the distance between the device and the center of the wafer or the edge of the wafer. For particular dies, e.g., large dies, the light output can vary across the surface of a single die, producing undesirable output variations.
- Some conventional SST devices incorporate a die-level lens, such as a spotlight lens, that focuses or otherwise alters light output.
- a conventional monolithic lighting device may produce light outside the lens area, which is not focused. Accordingly, conventional solid state transducer devices with die-level lenses are generally less than optimally efficient.
- Another drawback with conventional monolithic solid state transducer devices is the difficulty associated with controlling the heat generated in the device. During normal conditions, the lighting device may heat up irregularly due to manufacturing inconsistencies in the die itself, or due to the environment in which the device is employed. The typical response to excessive heating is to switch off the lighting device to avoid damaging it. However, this defeats the operational purpose of the device. Accordingly, there is a need in the art for an improved SST device.
- Figure 1A is a partially schematic, cross-sectional diagram of an SST device having a lateral arrangement in accordance with the prior art.
- Figure IB is a partially schematic, cross-sectional diagram of another SST device having a vertical arrangement in accordance with the prior art.
- Figure 2A is a partially schematic illustration of a wafer, along with an enlarged view of a singulated die from the wafer, in accordance with an embodiment of the present technology.
- Figure 2B is a partially schematic top view of a vertical SST device having lighting surface contacts formed thereon to define, at least in part, lighting regions, in accordance with embodiments of the present technology.
- Figure 2C is a partially schematic bottom view of the SST device shown in Figure 2B, in accordance with embodiments of the present technology.
- Figure 2D is a partially schematic cross-sectional view of the SST device shown in Figures 2B and 2C, taken substantially along line 2D-2D of Figure 2B.
- Figure 2E is a partially schematic top view of the SST device shown in Figures 2B-2D, packaged with a support substrate in accordance with embodiments of the present technology.
- Figure 3A is a partially schematic top view of a vertical SST device having lighting surface contacts formed to define, at least in part, lighting regions, in accordance with embodiments of the present technology.
- Figure 3B is a partially schematic bottom view of the SST device of Figure 3A having individual bottom contacts according to embodiments of the present technology.
- Figure 3C is a partially schematic cross-sectional view of the SST device shown in Figures 3 A and 3B, taken substantially along line 3C-3C of Figure 3 A.
- Figure 3D is a partially schematic top view of the SST device of Figures 3A-3C, packaged with a support substrate in accordance with embodiments of the present technology.
- Figure 4 A is a partially schematic top view of a lateral SST device having first and second contacts at or proximate to a lighting surface defining lighting regions in accordance with embodiments of the present technology.
- Figure 4B is a partially schematic top view of the SST device shown in Figure 4A, packaged with a support substrate in accordance with embodiments of the present technology.
- Figure 5 A is a partially schematic top view of a lateral flip SST device including first and second contacts at or proximate to a nonlighting surface of the SST device in accordance with embodiments of the present technology.
- Figure 5B is a partially schematic view of a support substrate for use with the SST device of Figure 5 A in accordance with embodiments of the present technology.
- Figure 5C is a partially schematic cross-sectional view of the SST device shown in Figures 5 A and 5B taken substantially along line 5C-5C of Figure 5 A.
- Figure 6 A is a partially schematic bottom view of a lateral flip SST device including first and second contacts at or proximate to a nonlighting surface of the SST device in accordance with embodiments of the present technology.
- Figure 6B is a partially schematic cross-sectional view of the SST device shown in Figure 6A taken substantially along line 6B-6B of Figure 6A.
- Figure 6C is a partially schematic top view of a support substrate for use with the SST device of Figures 6 A and 6B, in accordance with embodiments of the present technology.
- Figure 7A is a partially schematic top view of an SST device having concentric lighting regions in accordance with embodiments of the present technology.
- Figure 7B is a partially schematic side view of the SST device of Figure 7 A, including a spotlight-type lens, in accordance with embodiments of the present technology.
- Figure 7C is a partially schematic side view of the SST device of Figure 7 A including a wide angle-type lens in accordance with embodiments of the present technology.
- Figure 8A and 8B are partially schematic top and side views, respectively, of an SST device having independently controlled lighting regions which are operated at the same input level in accordance with embodiments of the present technology.
- Figure 8C and 8D are partially schematic top and side views, respectively, of an SST device having independently controlled lighting regions which are operated at different input levels in accordance with embodiments of the present technology.
- Figure 8E is a partially schematic illustration of an SST system that includes an SST device, a detector, and a controller.
- Figures 9A-9D illustrate an SST device array configured in accordance with the prior art.
- Figures 1 OA- IOC illustrate an SST device array having individual SST devices that include two or more independently controlled lighting regions in accordance with embodiments of the present technology.
- SST generally refers to solid state transducers or other devices that include a semiconductor material as the active medium to convert between electrical energy and electromagnetic radiation in the visible, ultraviolet, infrared, and/or other spectra.
- SST devices include solid state light emitters, e.g., LEDs, laser diodes, etc., and/or other sources of emission other than electrical filaments, plasmas, or gases.
- SST can also include solid state devices that convert electromagnetic radiation into electricity.
- substrate can refer to a wafer-level substrate or to a singulated device-level substrate.
- Figure 2A is a top view of a wafer 211 having multiple dies 210, and an enlarged view of a single one of the dies 210.
- SSTs like many semiconductor devices, are generally produced at the wafer level, and are then singulated into individual units such as the die 210.
- the manufacturing steps are imperfect and can result in an uneven distribution of light-emitting characteristics over the wafer 211.
- some dies 210 may have characteristics that vary as a function of radial position on the wafer 211. The variability of a representative characteristic is illustrated schematically in Figure 2A by shading and arrows 212.
- One result of the foregoing variability is that the SSTs containing the dies produce different light qualities, and accordingly there are fewer "good" dies per wafer.
- the variability is therefore generally undesirable.
- dies become larger, the effect is more pronounced for individual dies. The larger the individual dies are, the more noticeable the gradient or other variation across an individual die becomes.
- Some conventional techniques to address this problem include grouping dies with similar characteristics together (typically referred to as "binning"), e.g., based on the wafer position of the dies 210. For example, dies 210 produced from near the center of a wafer 211 can be placed in one group, and dies 210 produced from the periphery of the wafer 211 in another group.
- Another approach is to combine dies 210 having different, offsetting characteristics in a single array so that the differences between the dies 210 combine to produce an acceptable result. This approach, however, can result in a lower average light output when measured in the aggregate and is therefore less desirable.
- FIG. 2B is a partially schematic top view of an SST device 200 having a vertical configuration in accordance with embodiments of the present technology.
- the device 200 can include a die 210 having first contacts 220 and corresponding bond pads 222 on or at the first contacts 220.
- the first contacts 220 can be translucent or transparent to permit light to pass outwardly from the die 210.
- the first contacts 220 can include indium tin oxide.
- the die 210 can include any suitable light-emitting structure for an SST, such as a p-type gallium nitride ("p-GaN”) material, an n-type gallium nitride (“n- GaN”) material, and an active region comprising an indium gallium nitride (“InGaN”) material between the n-GaN and p-GaN materials, e.g., in the form of multiple quantum wells.
- the die 210 is generally planar and has a first surface 221, e.g., a lighting surface, through which light is emitted, and a second surface 231, e.g., a non-lighting surface opposite the first surface.
- the first contacts 220 cover a significant portion of the first surface 221 and define, in whole or in part, individual regions or cells 223 of the die 210.
- the SST device 200 has four regions 223 and four corresponding first contacts 220.
- the underlying die 210 can be generally continuous in a lateral direction from one region 223 to the next. Accordingly, there is no partition between neighboring regions 223, and the regions 223 are defined at least in part (and in some cases, only) by the first contacts 220, as will be described more fully below.
- neighboring regions 223 and in particular, the active regions and associated p-GaN and/or n-GaN may be separated by a partition.
- FIG. 2C is a partially schematic bottom view of the SST device 200 according to embodiments of the present technology.
- the SST device 200 can include a second contact 230 that covers substantially the entire second surface 231 of the die 210.
- the first contacts 220 ( Figure 2B) and second contact 230 can be plated, patterned, deposited and/or otherwise formed using any suitable technique. In operation, electric current passes through regions of the die 210 between the first contacts 220 ( Figure 2B) at the first surface 221 of the die 210 and the second contact 230 at the second surface 231 to produce light from the individual regions 223 ( Figure 2B) of the die 210.
- the first contacts 220 can be either n-type or p-type contacts, and the second contact 230 can be the complementary p-type or n-type contact.
- Figure 2D is a partially schematic cross-sectional view of a representative SST device 200 taken generally along line 2D-2D of Figure 2B.
- the die 210 includes a first semiconductor material 215, e.g., p-GaN or n-GaN, a second semiconductor material 216, e.g., n-GaN or p-GaN, and a continuous active region 214, e.g., a GaN compound, between the first and second semiconductor materials 215, 216.
- Individual first contacts 220a, 220b are spaced apart from each other and are positioned at corresponding individual first and second regions 223a, 223b of the die 210.
- a first electrical pathway 250a is established at the first region 223a of the die 210 between one, e.g., the leftmost, first contact 220a and the second contact 230.
- a second electrical pathway 250b is established at the second region 223b between a different, e.g., the rightmost, first contact 220b and the second contact 230.
- the die 210 has no physical partition, e.g., vertical partition, between the neighboring first and second regions 223a, 223b; rather, the regions 223a, 223b are defined by the individual first contacts 220a, 220b, which are separated from each other.
- some overlap may exist between the first electrical pathway 250a and the second electrical pathway 250b, and some electrical current from the first electrical pathway 250a may pass through at least a portion of the second region 223b, even when the first contact 220b corresponding to the second region 223b is not activated.
- the die 210 can include a physical partition, e.g., a trench or other structural feature, between the regions 223a, 223b, e.g., in addition to the space between the neighboring first contacts 220a, 220b.
- the regions 223a, 223b of the die 210 can be separately or individually controlled.
- the terms separately controlled and individually controlled mean that an input to one region may be different than an input to another region, and the respective outputs are responsive to the different inputs, even though the inputs may be provided simultaneously.
- the inputs to different regions may be independent of each other, and in other embodiments, the input to one region can depend upon the output produced by another region, so that the two inputs are not completely independent. Accordingly, the levels of light produced by each region can be controlled to produce different outputs, or can be controlled to produce similar outputs, with different inputs.
- One application of the foregoing technique is for a relatively large die 210 having at least some differential lighting characteristics.
- a die 210 having two first contacts 220a, 220b, and two corresponding regions 223a, 223b may emit light from the first region 223a that is not as bright as the light emitted from the second region 223b when both regions 223a, 223b are operating with the same input power.
- the first region 223a can be operated at a higher power than the second region 223b to achieve a light output the same as or at least closer to the output from the second region 223b. Accordingly, the overall output of the die 210 can be more uniform.
- the SST device 200 can include any of a variety of suitable numbers of regions 223 having any of a variety of suitable shapes, depending on the manner in which the light- emitting characteristics vary from one region to another.
- the shape and positioning of the regions 223 can be based on a desired differential light output from a die 210, e.g., in addition to or independent of accounting for disparate light emitting characteristics from different portions of the die 210.
- Figure 2E is a partially schematic top view of the SST device 200 shown in Figures 2B-2D, now incorporated into a package that includes a substrate 240.
- the substrate 240 can include several first substrate contacts 242 and a second substrate contact 244.
- the second substrate contact 244 in at least some embodiments, can be a relatively large contact that faces and connects with the second contact 230 of the die 210.
- the die 210 can be placed with the second surface 231 facing down toward the substrate 240 to create a good electrical connection between the second contact 230 and the second substrate contact 244.
- the first substrate contacts 242 can be connected to the bond pads 222 of the die 210 with wire bonds 246.
- separately controllable electrical pathways can be established to separately control the individual regions 223 of the SST device 200, via connections made to the substrate 240.
- An advantage of this arrangement is that it can provide high-resolution control over the light produced by the SST device 200.
- the die 210 and in particular, the active light emitting region of the die 210) can be generally continuous in a lateral direction, the light output of the SST device 200 is greater than the output from a collection of smaller dies that are placed next to each other.
- Figures 3A-3D illustrate several features of an SST device 300 having a vertical configuration and multiple second contacts in accordance with further embodiments of the present technology.
- Figure 3A is a partially schematic top view of the SST device 300.
- the SST device 300 includes a die 310 having a first surface 321 with first contacts 320 and corresponding bond pads 322 having an arrangement generally similar to that discussed above with reference to Figure 2B.
- Figure 3B is a partially schematic bottom view of a second surface 331 of the SST device 300 illustrating corresponding second contacts 330 that are configured generally according to the size and shape of the first contacts 320 ( Figure 3A) at the first surface 321 of the die 310.
- Figure 3C is a partially schematic cross-sectional view of the SST device 300 taken generally along line 3C-3C of Figure 3 A.
- the device 300 can include separately controllable electrical pathways 350a, 350b for corresponding regions 323a, 323b of the die 310, defined by the placement and position of the first contacts 320 at the first surface 321 of the die 310 and the second contacts 330 at the second surface 331.
- the second contacts 330 are discrete, e.g., spaced apart from each other, and accordingly, this arrangement can further isolate the electrical pathways 350a, 350b when compared to the electrical pathways 250a, 250b described above with reference to Figures 2B-2E.
- an advantage of the single second contact 230 shown in Figures 2B-2E is that it can be simpler and/or cheaper to manufacture.
- Figure 3D is a partially schematic top view of an SST device 300 that forms part of a package which also includes a substrate 340.
- the substrate 340 can include first substrate contacts 342, which can be connected via wirebonds 346 or other structures to the bond pads 322 at the first side 321 of the die 310.
- the substrate 340 can also include second substrate contacts 344 that are electrically isolated from one another at the substrate 340 and are connected to the corresponding second contacts 330 at the second side 331 of the die 310.
- FIG 4A is a partially schematic top view of an SST device 400 having a lateral configuration in accordance with further embodiments of the present technology.
- the SST device 400 can include a die 410 having a first side 421, e.g., a light emitting surface, with several first contacts 420 (four are shown in Figure 4A).
- the die 410 can also include one or more second contacts 430 (one is shown in Figure 4 A), also on the first side 421 of the die 410.
- This configuration is generally referred to as a lateral configuration because electrical pathways 450 can be established laterally through corresponding regions 423 of the die 410 located between the first contacts 420 and the second contact 430.
- the second contact 430 can be a single contact, as shown in Figure 4 A, or it can be one of a plurality of separate contacts.
- the second contact(s) 430 can have the general form of narrow traces of conductive material that extend between the regions 423 of the die 410.
- the shape of the second contact(s) 430 can generally conform to the shape and positioning of the first contacts 420.
- the single second contact 430 shown in Figure 4A can have a cross or cruciform shape to be positioned between four first contacts 420.
- the first contacts 420 can each include a bond pad 422 or other external electrical connection element. For each region 423 of the die 410, a different electric pathway 450 passes through the corresponding region of the die 410 as defined by the first contacts 420.
- the pathway 450 for any individual region 423 can include any portion of that region 423 between the first contact 420 of that region and the corresponding second contact(s) 430.
- the second contact 430 can extend partially to the edge of the device 400 to partially isolate neighboring regions 423, or it can extend completely to the edge to fully isolate the regions 423.
- Figure 4B is a partially schematic top view of the SST device 400 forming part of a package that also includes a substrate 440. Because the contacts for the SST device 400 in the illustrated embodiment are all on the first side 421 of the die 410, the substrate 440 includes first substrate contacts 442 that are laterally spaced apart from the die 410 and are connected with wire bonds 446 or other suitable conductive structures to the bond pads 422. A second substrate contact 444 is connected to the second contacts 430.
- FIGS 5A-5C are partially schematic views of an SST device 500 having a lateral flip configuration in accordance with further embodiments of the present technology.
- the device In a lateral flip configuration, the device has laterally spaced apart n-type and p-type contacts, but (unlike the arrangement described above with reference to Figures 4A-4C), the contacts are at the second or non-lighting surface of the device.
- the SST device 500 includes a die 510 having a downwardly facing, light emitting first surface 521 and an upwardly facing non-lighting second surface 531.
- the die 510 includes multiple spaced-apart first contacts 520 and one or more second contact(s) 530.
- the first contacts 520 and the second contact(s) 530 can define multiple lighting regions 523 of the die 510.
- the first contacts 520 and the second contact(s) 530 can have a pattern generally similar to that described above with reference to Figures 4A-4B (or another suitable pattern), but because the light from the die 510 is emitted from the downwardly-facing first surface 521, the device is inverted for packaging.
- the first contacts 520 and/or the second contact(s) 530 can be made of non-translucent material.
- Figure 5B is a partially schematic top view of a substrate 540 that can be used to package, carry or support the die 510 shown in Figure 5 A.
- the substrate 540 can include first substrate contacts 542 that correspond generally in shape, size and/or position to the first contacts 520 shown in Figure 5A, and second substrate contacts 544 that correspond generally in shape, size and/or position to the second contact(s) 530 shown in Figure 5A. As discussed above, these contacts can be used to separately address the individual regions 523 of the die 510.
- the die 510 is placed on the substrate 540 with the second surface 531 facing downwardly toward the first and second substrate contracts 542, 544.
- Figure 5C is a partially schematic cross-sectional view taken generally along line 5C-5C in Figure 5A, showing a first electrical pathway 550a and second electrical pathway 550b between the first contacts 520 and the second contact(s) 530 according to embodiments of the present technology. As shown in Figure 5C, the electrical pathways 550a, 550b and current lines form arcuate patterns between the second contact(s) 530 and the first contacts 520.
- Figures 6A-6C illustrate still further embodiments of a lateral flip SST device 600 having separate n-type and p-type contacts configured in accordance with embodiments of the present technology.
- Figure 6 A is a partially schematic bottom view of the SST device 600 including a die 610 having first contacts 620, and second contacts 630.
- Individual second contacts 630 can be positioned with an annular opening of a corresponding first contact 620 to prevent the contacts from shorting.
- Each pair of first and second contacts 620, 630 can establish an independent electrical pathway through a region or cell 623 of the die 610. Accordingly, individual regions 623 of the die 610 can be addressed with corresponding individual inputs.
- the first contacts 620 can be n-type contacts and the second contacts 630 can be p-type contacts, or vice versa.
- Figure 6B is a partially schematic cross-sectional view taken generally along line 6B-6B of Figure 6A.
- the active light emitting region of the die 610 can be formed on a growth substrate 611.
- the second contacts 630 can be recessed from an outwardly facing surface of the die 610.
- the first contacts 620 can be located at or proximate to the outwardly facing surface of the die 610.
- a dielectric material 612 can be deposited on the die 610 and in a well, trench or other recess 635 between neighboring regions 623. Accordingly, the dielectric material can form a physical separation between the neighboring regions 623.
- FIG. 6C is a partially schematic top view of a substrate 640 for packaging and supporting the die 610 described above with reference to Figures 6A and 6B, in accordance with particular embodiments of the present technology.
- the substrate 640 can include first substrate contacts 642 and second substrate contacts 644 that can receive the die 610 with the bottom or non-lighting side of the die 610 contacting the substrate 640.
- the first substrate contacts 642 connect to corresponding first contacts 620 of the die 610
- the second substrate contacts 644 connect to corresponding second contacts 630 of the die 610.
- Figures 7A-7C illustrate SST devices that include a die 702 having independently controlled regions defined at least in part by lighting surface contacts in accordance with a further embodiment of the present technology.
- the size, shape, and position of the contacts and corresponding regions of the die can be selected in accordance with the design constraints presented by any of a variety of applications.
- Figure 7A is a partially schematic top view of a device 700a having a die 702 with multiple, individually addressable regions.
- the regions can include a first region 710 comprising a peripheral section of the die 702, an annular or intermediate second region 720, and a third, generally circular region 730 at or near the center of the die 702.
- the second and third regions 720, 730 can be generally concentric; however, in other embodiments, these regions can have other shapes and/or configurations.
- the die 702 can comprise a generally continuous, uniform or monolithic lighting structure, such as an LED having a continuous active region, and the regions 710, 720, and 730 can be defined at least in part by contacts (not shown) that are patterned or otherwise formed on the surface of the die 702, in a manner generally similar to that described above.
- the regions 710, 720, and 730 can be separately controlled to adjust the light output from the SST device 700a, and/or to manage a heat load on the SST device 700a, and/or for other suitable reasons.
- the central third region 730 can receive more power than the first and/or second regions 710, 720 to create a spotlight effect.
- FIG. 7B illustrates a partially schematic side view of a device 700b in which the die 702 carries a lens 741 that produces or enhances a spotlight pattern obtained by separately controlling the regions 710, 720, 730.
- the lens 741 can include first lens portion 742 at the center of the SST device 700b and a second lens portion 740 toward a periphery of the SST device 700b.
- the lens portions 740, 742 can be positioned to further focus the high intensity light emitted by the third region 730 at the center of the die 702 and/or can focus the lower intensity light from the first and second regions 710, 720.
- Figure 7C illustrates another embodiment of an SST device 700c that produces a wide angle light pattern using a lens 744, e.g., in combination with independently controlling the light emitted from different regions of the die 702.
- the first region 710 can be operated at a relatively high intensity
- the second region 720 can be operated at a moderate intensity
- the third region 730 can be operated at a low intensity, with the wide angle lens 744 further diffusing the light.
- SST devices can include other types or shapes of lenses, and the regions of the die 702 can be formed and/or selected to produce a different target light output when combined with the appropriate lens.
- Figures 8A and 8B are partially schematic top and side views, respectively, of an SST device 800a that includes a die 802 carried by a substrate 840 and having multiple lighting regions, each operated at the same input power.
- Figures 8C and 8D are partially schematic top and side views, respectively, of an SST device 800c that includes a die 802 having multiple lighting regions operated at different input powers according to embodiments of the present technology.
- the SST devices 800a, 800c can include separately controlled lighting regions to manage heat and/or light produced by the SST devices 800a, 800c.
- the SST device 800a can include a first region 810, a second region 820, and a third region 830, generally similar to the embodiment shown in Figures 7A-C.
- the output approximates what would occur without the benefit of the individually controlled regions.
- the heat builds up in the SST device 800a, and if the heat reaches a certain level, the entire SST device 800a may need to be turned off to avoid damaging the SST device 800a.
- the regions of the device 800c can be operated at different levels according to the heat produced at each region to avoid shutting the device 800c down.
- the first region 810 can be operated at a higher power/intensity than the second region 820, which can in turn be operated at a higher power/intensity than the third region 830 to generate less heat in the third region 830, due to that region's relative inability to dissipate heat.
- the shape, size, number and/or positioning of the regions will vary, e.g., because different heat-sinks and other configurations create different heat transfer patterns at various regions of the SST device. Accordingly, the contacts at individual regions of the die 802 can be shaped according to the available heat-sink capacity in a variety of suitable patterns.
- the die can be used with a system that monitors heat at various regions within or outside the die and controls the input to individual regions in accordance with a measured temperature at or corresponding to the individual regions. For example, the intensity of light produced at individual regions can be raised or lowered according to the heat output of the region in a time-varying manner. The number of regions for each die can be selected to provide a target level of control over where the heat is generated and how it is dissipated.
- Figure 8E is a partially schematic illustration of an overall SST system 800e that includes a light 801 in which is positioned at least one die 802 having multiple, separately controllable regions configured in accordance with any of the foregoing embodiments.
- the regions include the concentric first, second, and third regions 810, 820, 830 described above with reference to Figures 8A-8D.
- the system 800e can further include a detector 880 that receives an input corresponding to an operational characteristic of the die 802, as indicated by arrow A.
- the detector 880 can include one or more photodetection elements that receive light from the die 802 and can output a signal indicative of a characteristic of the light, for example, an intensity of the light.
- the detector 880 can include one or more heat sensors that provide an output signal corresponding to the heat generated by the die 802.
- the output signals from the detector 880 can be directed to a controller 890 that in turn processes the signal and, based at least in part upon the information conveyed by the signal, can issue directions to the die 802, as indicated by arrow B.
- the controller 890 can include a processor programmed with instructions that, when executed, control the amount of power provided to each of the multiple regions of the die 802. Accordingly, the controller, e.g., the processor, can include automatically executed instructions that perform any of the foregoing tasks.
- an individual detector can perform multiple, different, functions, and/or can be one of multiple detectors that together perform similar or different functions.
- FIGS 9A-9D illustrate an SST device array 900 operating in accordance with a prior art technique to account for a characteristic of red SST devices used in the context of a larger SST device array.
- Existing red SST devices tend to lose efficiency, and therefore intensity, once they reach a steady state temperature.
- red SST devices are selected to have a relatively higher color intensity to offset the anticipated loss of efficiency after start up.
- the light produced by the array will tend to be more red than desired.
- One existing approach to account for this is described below with respect to Figures 9A-D.
- Figure 9 A illustrates an SST device array 900 that, for purposes of explanation, has six dies.
- the array 900 includes two red SST devices 910 and four non-red SST devices 920 which together, at steady state temperature, produce a desired light output, such as a white light output.
- the red SST devices 910 emit light at a greater intensity than is suitable for producing a target output color or chromaticity.
- Figure 9B shows the array 900 after reaching a steady state temperature at which point the red SST devices 910 have lost some efficiency and have reached the desired color intensity to achieve the target overall chromaticity for the array 900.
- Figure 9C shows the array 9C at initiation, rather than powering both of the red SST devices 910, a first red SST device 910a can be powered while a second red SST device 910b is not. The other non-red SST devices 920 can be powered and the array 900 will begin warming up.
- FIG. 9D illustrates the array 900 after it reaches the steady state temperature and after all the SST devices are operating at their steady state levels. While this approach produces the target chromaticity, the resolution with which it adjusts the light output is low.
- Figures 1 OA- IOC illustrate an array 1000 of SST devices having independently controlled lighting regions operated in accordance with particular embodiments of the present technology.
- the array 1000 includes a first SST device 1010a, a second red SST device 1010b, and four non-red SST devices 1020.
- Each of the red SST devices 1010a, 1010b can include a plurality of separately controlled regions, e.g., four as shown in Figure 10A.
- the non-red SST devices 1020 may or may not have separately controllable regions, according to the design requirements of a given application.
- the array 1000 When the array 1000 is first powered up, fewer than all the available red regions are activated. Accordingly, the array 1000 includes active red regions 1012, e.g., two such regions, and inactive red regions 1014, e.g., six such regions. By operating fewer than all the red regions, e.g., less than an entire red SST device, the amount of red light produced by the red SST devices 1010a and 1010b can be less than is produced by operating the same red SST devices at their full operating capacity. The number of initially active red lighting regions 1012 and inactive regions 1014 can be selected based on the desired output chromaticity of the array 1000. The non-red SST devices 1020 can be powered at this time, or at a slightly earlier or later time.
- the total light output from the array 1000 can more closely match a desired overall chromaticity than would result by powering the entire first and/or second red SST device 1010a, 1010b as described above with respect to Figures 9A-9D. Accordingly, the separately or individually controllable regions of the red SST devices 1010a and 1010b offer improved color over a range of brightness levels. Unlike a dimmer-controlled incandescent light, SST devices in general have a minimum power below which they do not produce light. Selectively turning on and off particular regions of the device can provide an acceptable dimmer function despite this characteristic of SST devices.
- Figure 10B shows the array 1000 after the initially powered red lighting regions have begun reducing output due to increased temperatures. Such regions are indicated by lighter hatching in Figure 10B. Additional lighting regions have accordingly been activated to account for the foregoing reduction.
- Figure IOC illustrates the SST device array 1000 after reaching the steady state operating temperature. At this point, all or substantially all the lighting regions of the red SST devices 1010a, 1010b are powered and have undergone thermally induced output reduction. At any given point during the foregoing process, a sufficient number of active red lighting regions 1012 are activated to produce, in combination with the non-red SST devices 1020, an output chromaticity approximately equal to a target steady state output chromaticity.
- each independently controlled lighting region of a red SST device 1010a, 1010b reaches the steady state operating temperature, its intensity drops and more independently controlled lighting regions are activated.
- the SST devices can include any suitable number of separately controllable regions, so the control over the output chromaticity can be fine-tuned to a desired, e.g., high, resolution. Accordingly, the overall output chromaticity from the array 1000 can more closely match a desired output chromaticity even before the array 1000 reaches the steady state temperature.
- the separately controlled regions can be adjacent to each other, as shown in Figures lOA-lOC.
- regions can be distributed in other manners.
- these initially powered lighting regions can be surrounded by initially unpowered lighting regions so the heat generated at the powered lighting regions will at least partially warm the as-yet unpowered lighting regions.
- different regions can be turned on and off multiple times in a random or deliberate process to gradually increase the number of powered regions until the lighting structure approaches the steady state temperature. At each point in time, the number of powered lighting regions is chosen to closely match the desired output chromaticity taking into consideration the artificially high output from red SST devices that have not yet reached the steady state temperature.
Landscapes
- Led Device Packages (AREA)
- Led Devices (AREA)
Abstract
Solid state transducer devices with independently controlled regions, and associated systems and methods are disclosed. A solid state transducer device in accordance with a particular embodiment includes a transducer structure having a first semiconductor material, a second semiconductor material and an active region between the first and second semiconductor materials, the active region including a continuous portion having a first region and a second region. A first contact is electrically connected to the first semiconductor material to direct a first electrical input to the first region along a first path, and a second contact electrically spaced apart from the first contact and connected to the first semiconductor material to direct a second electrical input to the second region along a second path different than the first path. A third electrical contact is electrically connected to the second semiconductor material.
Description
SOLID STATE TRANSDUCER DEVICES WITH SEPARATELY CONTROLLED REGIONS, AND ASSOCIATED SYSTEMS AND
METHODS
TECHNICAL FIELD
[0001] The present technology is directed generally to solid state transducer devices having a plurality of discrete regions that can be separately controlled, and associated systems and methods.
BACKGROUND
[0002] Solid state transducer ("SST") devices are used in a wide variety of products and applications. For example, mobile phones, personal digital assistants ("PDAs"), digital cameras, MP3 players, and other portable electronic devices utilize SST devices for backlighting. SST devices are also used for signage, indoor lighting, outdoor lighting, and other types of general illumination. SST devices generally use light emitting diodes ("LEDs"), organic light emitting diodes ("OLEDs"), and/or polymer light emitting diodes ("PLEDs") as sources of illumination, rather than electrical filaments, plasma, or gas. Figure 1A is a cross-sectional view of a conventional SST device 10a with lateral contacts. As shown in Figure 1A, the SST device 10a includes a substrate 20 carrying an LED structure 11 having an active region 14, e.g., containing gallium nitride/indium gallium nitride (GaN/InGaN) multiple quantum wells ("MQWs"), positioned between N-type GaN 15 and P- type GaN 16. The SST device 10a also includes a first contact 17 on the P-type GaN 16 and a second contact 19 on the N-type GaN 15. The first contact 17 typically includes a transparent and conductive material, e.g., indium tin oxide ("ITO"), to allow light to escape from the LED structure 11. In operation, electrical power is provided to the SST device 10a via the contacts 17, 19, causing the active region 14 to emit light.
[0003] Figure IB is a cross-sectional view of another conventional LED device 10b in which the first and second contacts 17 and 19 are opposite each other, e.g., in a vertical rather than lateral configuration. During formation of the LED device 10b, a growth substrate (not shown), similar to the substrate 20 shown in Figure 1A, initially carries an N-type GaN 15, an active region 14 and a P-type GaN 16. The first contact 17 is disposed on the P-type GaN 16,
and a carrier 21 is attached to the first contact 17. The substrate is removed, allowing the second contact 19 to be disposed on the N-type GaN 15. The structure is then inverted to produce the orientation shown in Figure IB. In the LED device 10b, the first contact 17 typically includes a reflective and conductive material, e.g., silver or aluminum, to direct light toward the N-type GaN 15. An optional converter material and an encapsulant can then be positioned over one another on the LED structure 11. In operation, the LED structure 11 can emit energy at a first wavelength, e.g., blue light, that stimulates the converter material, e.g., phosphor, to emit energy at a second wavelength, e.g., yellow light. Energy at the first and second wavelengths is combined to generate a desired color of light, e.g., white light.
[0004] Conventional SST devices are made with a single, monolithic light delivery surface that receives a single voltage input and provides a single output across the lighting surface. Due to inherent manufacturing inconsistencies, the light output and efficiency of a given device may vary from one device to another, or within a given device. For example, the light output from devices made from a single wafer can vary as a function of the distance between the device and the center of the wafer or the edge of the wafer. For particular dies, e.g., large dies, the light output can vary across the surface of a single die, producing undesirable output variations.
[0005] Some conventional SST devices incorporate a die-level lens, such as a spotlight lens, that focuses or otherwise alters light output. A conventional monolithic lighting device, however, may produce light outside the lens area, which is not focused. Accordingly, conventional solid state transducer devices with die-level lenses are generally less than optimally efficient. Another drawback with conventional monolithic solid state transducer devices is the difficulty associated with controlling the heat generated in the device. During normal conditions, the lighting device may heat up irregularly due to manufacturing inconsistencies in the die itself, or due to the environment in which the device is employed. The typical response to excessive heating is to switch off the lighting device to avoid damaging it. However, this defeats the operational purpose of the device. Accordingly, there is a need in the art for an improved SST device.
BRIEF DESCRIPTION OF THE DRAWINGS
[0006] Figure 1A is a partially schematic, cross-sectional diagram of an SST device having a lateral arrangement in accordance with the prior art.
[0007] Figure IB is a partially schematic, cross-sectional diagram of another SST device having a vertical arrangement in accordance with the prior art.
[0008] Figure 2A is a partially schematic illustration of a wafer, along with an enlarged view of a singulated die from the wafer, in accordance with an embodiment of the present technology.
[0009] Figure 2B is a partially schematic top view of a vertical SST device having lighting surface contacts formed thereon to define, at least in part, lighting regions, in accordance with embodiments of the present technology.
[0010] Figure 2C is a partially schematic bottom view of the SST device shown in Figure 2B, in accordance with embodiments of the present technology.
[0011] Figure 2D is a partially schematic cross-sectional view of the SST device shown in Figures 2B and 2C, taken substantially along line 2D-2D of Figure 2B.
[0012] Figure 2E is a partially schematic top view of the SST device shown in Figures 2B-2D, packaged with a support substrate in accordance with embodiments of the present technology.
[0013] Figure 3A is a partially schematic top view of a vertical SST device having lighting surface contacts formed to define, at least in part, lighting regions, in accordance with embodiments of the present technology.
[0014] Figure 3B is a partially schematic bottom view of the SST device of Figure 3A having individual bottom contacts according to embodiments of the present technology.
[0015] Figure 3C is a partially schematic cross-sectional view of the SST device shown in Figures 3 A and 3B, taken substantially along line 3C-3C of Figure 3 A.
[0016] Figure 3D is a partially schematic top view of the SST device of Figures 3A-3C, packaged with a support substrate in accordance with embodiments of the present technology.
[0017] Figure 4 A is a partially schematic top view of a lateral SST device having first and second contacts at or proximate to a lighting surface defining lighting regions in accordance with embodiments of the present technology.
[0018] Figure 4B is a partially schematic top view of the SST device shown in Figure 4A, packaged with a support substrate in accordance with embodiments of the present technology.
[0019] Figure 5 A is a partially schematic top view of a lateral flip SST device including first and second contacts at or proximate to a nonlighting surface of the SST device in accordance with embodiments of the present technology.
[0020] Figure 5B is a partially schematic view of a support substrate for use with the SST device of Figure 5 A in accordance with embodiments of the present technology.
[0021] Figure 5C is a partially schematic cross-sectional view of the SST device shown in Figures 5 A and 5B taken substantially along line 5C-5C of Figure 5 A.
[0022] Figure 6 A is a partially schematic bottom view of a lateral flip SST device including first and second contacts at or proximate to a nonlighting surface of the SST device in accordance with embodiments of the present technology.
[0023] Figure 6B is a partially schematic cross-sectional view of the SST device shown in Figure 6A taken substantially along line 6B-6B of Figure 6A.
[0024] Figure 6C is a partially schematic top view of a support substrate for use with the SST device of Figures 6 A and 6B, in accordance with embodiments of the present technology.
[0025] Figure 7A is a partially schematic top view of an SST device having concentric lighting regions in accordance with embodiments of the present technology.
[0026] Figure 7B is a partially schematic side view of the SST device of Figure 7 A, including a spotlight-type lens, in accordance with embodiments of the present technology.
[0027] Figure 7C is a partially schematic side view of the SST device of Figure 7 A including a wide angle-type lens in accordance with embodiments of the present technology.
[0028] Figure 8A and 8B are partially schematic top and side views, respectively, of an SST device having independently controlled lighting regions which are operated at the same input level in accordance with embodiments of the present technology.
[0029] Figure 8C and 8D are partially schematic top and side views, respectively, of an SST device having independently controlled lighting regions which are operated at different input levels in accordance with embodiments of the present technology.
[0030] Figure 8E is a partially schematic illustration of an SST system that includes an SST device, a detector, and a controller.
[0031] Figures 9A-9D illustrate an SST device array configured in accordance with the prior art.
[0032] Figures 1 OA- IOC illustrate an SST device array having individual SST devices that include two or more independently controlled lighting regions in accordance with embodiments of the present technology.
DETAILED DESCRIPTION
[0033] Specific details of several embodiments of SST devices with separately controlled lighting regions, and associated systems and methods are described below. The term "SST" generally refers to solid state transducers or other devices that include a semiconductor material as the active medium to convert between electrical energy and electromagnetic radiation in the visible, ultraviolet, infrared, and/or other spectra. For example, SST devices include solid state light emitters, e.g., LEDs, laser diodes, etc., and/or other sources of emission other than electrical filaments, plasmas, or gases. The term SST can also include solid state devices that convert electromagnetic radiation into electricity. Additionally, depending upon the context in which it is used, the term "substrate" can refer to a wafer-level substrate or to a singulated device-level substrate. A person skilled in the relevant art will also understand that the technology may have additional embodiments, and that the technology may be practiced without several of the details of the embodiments described below with reference to Figures 2A-8D and lOA-lOC.
[0034] Figure 2A is a top view of a wafer 211 having multiple dies 210, and an enlarged view of a single one of the dies 210. SSTs, like many semiconductor devices, are generally produced at the wafer level, and are then singulated into individual units such as the die 210. The manufacturing steps, however, are imperfect and can result in an uneven distribution of light-emitting characteristics over the wafer 211. For example, some dies 210 may have characteristics that vary as a function of radial position on the wafer 211. The variability of a representative characteristic is illustrated schematically in Figure 2A by shading and arrows 212. One result of the foregoing variability is that the SSTs containing the dies produce different light qualities, and accordingly there are fewer "good" dies per wafer. The variability is therefore generally undesirable. As dies become larger, the effect is more pronounced for individual dies. The larger the individual dies are, the more noticeable
the gradient or other variation across an individual die becomes. Some conventional techniques to address this problem include grouping dies with similar characteristics together (typically referred to as "binning"), e.g., based on the wafer position of the dies 210. For example, dies 210 produced from near the center of a wafer 211 can be placed in one group, and dies 210 produced from the periphery of the wafer 211 in another group. Another approach is to combine dies 210 having different, offsetting characteristics in a single array so that the differences between the dies 210 combine to produce an acceptable result. This approach, however, can result in a lower average light output when measured in the aggregate and is therefore less desirable.
[0035] Figure 2B is a partially schematic top view of an SST device 200 having a vertical configuration in accordance with embodiments of the present technology. The device 200 can include a die 210 having first contacts 220 and corresponding bond pads 222 on or at the first contacts 220. The first contacts 220 can be translucent or transparent to permit light to pass outwardly from the die 210. For example, the first contacts 220 can include indium tin oxide. The die 210 can include any suitable light-emitting structure for an SST, such as a p-type gallium nitride ("p-GaN") material, an n-type gallium nitride ("n- GaN") material, and an active region comprising an indium gallium nitride ("InGaN") material between the n-GaN and p-GaN materials, e.g., in the form of multiple quantum wells. The die 210 is generally planar and has a first surface 221, e.g., a lighting surface, through which light is emitted, and a second surface 231, e.g., a non-lighting surface opposite the first surface.
[0036] In some embodiments, the first contacts 220 cover a significant portion of the first surface 221 and define, in whole or in part, individual regions or cells 223 of the die 210. For example, in the embodiment shown in Figure 2B, the SST device 200 has four regions 223 and four corresponding first contacts 220. The underlying die 210 can be generally continuous in a lateral direction from one region 223 to the next. Accordingly, there is no partition between neighboring regions 223, and the regions 223 are defined at least in part (and in some cases, only) by the first contacts 220, as will be described more fully below. In other embodiments, e.g., as described below with reference to Figure 6B, neighboring regions 223 and in particular, the active regions and associated p-GaN and/or n-GaN may be separated by a partition.
[0037] Figure 2C is a partially schematic bottom view of the SST device 200 according to embodiments of the present technology. The SST device 200 can include a second contact
230 that covers substantially the entire second surface 231 of the die 210. The first contacts 220 (Figure 2B) and second contact 230 can be plated, patterned, deposited and/or otherwise formed using any suitable technique. In operation, electric current passes through regions of the die 210 between the first contacts 220 (Figure 2B) at the first surface 221 of the die 210 and the second contact 230 at the second surface 231 to produce light from the individual regions 223 (Figure 2B) of the die 210. The first contacts 220 can be either n-type or p-type contacts, and the second contact 230 can be the complementary p-type or n-type contact.
[0038] Figure 2D is a partially schematic cross-sectional view of a representative SST device 200 taken generally along line 2D-2D of Figure 2B. The die 210 includes a first semiconductor material 215, e.g., p-GaN or n-GaN, a second semiconductor material 216, e.g., n-GaN or p-GaN, and a continuous active region 214, e.g., a GaN compound, between the first and second semiconductor materials 215, 216. Individual first contacts 220a, 220b are spaced apart from each other and are positioned at corresponding individual first and second regions 223a, 223b of the die 210. Accordingly, a first electrical pathway 250a is established at the first region 223a of the die 210 between one, e.g., the leftmost, first contact 220a and the second contact 230. A second electrical pathway 250b is established at the second region 223b between a different, e.g., the rightmost, first contact 220b and the second contact 230.
[0039] As discussed above, in at least some embodiments, the die 210 has no physical partition, e.g., vertical partition, between the neighboring first and second regions 223a, 223b; rather, the regions 223a, 223b are defined by the individual first contacts 220a, 220b, which are separated from each other. In operation, some overlap may exist between the first electrical pathway 250a and the second electrical pathway 250b, and some electrical current from the first electrical pathway 250a may pass through at least a portion of the second region 223b, even when the first contact 220b corresponding to the second region 223b is not activated. In other embodiments, the die 210 can include a physical partition, e.g., a trench or other structural feature, between the regions 223a, 223b, e.g., in addition to the space between the neighboring first contacts 220a, 220b. In either embodiment, e.g., even if some current "leaks" from one region to another, the regions 223a, 223b of the die 210 can be separately or individually controlled. As usual herein, the terms separately controlled and individually controlled mean that an input to one region may be different than an input to another region, and the respective outputs are responsive to the different inputs, even though the inputs may be provided simultaneously. In some embodiments, the inputs to different regions may be
independent of each other, and in other embodiments, the input to one region can depend upon the output produced by another region, so that the two inputs are not completely independent. Accordingly, the levels of light produced by each region can be controlled to produce different outputs, or can be controlled to produce similar outputs, with different inputs.
[0040] One application of the foregoing technique is for a relatively large die 210 having at least some differential lighting characteristics. For example, a die 210 having two first contacts 220a, 220b, and two corresponding regions 223a, 223b may emit light from the first region 223a that is not as bright as the light emitted from the second region 223b when both regions 223a, 223b are operating with the same input power. By separately controlling the power applied to each region, the first region 223a can be operated at a higher power than the second region 223b to achieve a light output the same as or at least closer to the output from the second region 223b. Accordingly, the overall output of the die 210 can be more uniform. The SST device 200 can include any of a variety of suitable numbers of regions 223 having any of a variety of suitable shapes, depending on the manner in which the light- emitting characteristics vary from one region to another. For example, in other embodiments described below in greater detail, the shape and positioning of the regions 223 can be based on a desired differential light output from a die 210, e.g., in addition to or independent of accounting for disparate light emitting characteristics from different portions of the die 210.
[0041] Figure 2E is a partially schematic top view of the SST device 200 shown in Figures 2B-2D, now incorporated into a package that includes a substrate 240. The substrate 240 can include several first substrate contacts 242 and a second substrate contact 244. The second substrate contact 244, in at least some embodiments, can be a relatively large contact that faces and connects with the second contact 230 of the die 210. The die 210 can be placed with the second surface 231 facing down toward the substrate 240 to create a good electrical connection between the second contact 230 and the second substrate contact 244. The first substrate contacts 242 can be connected to the bond pads 222 of the die 210 with wire bonds 246. Accordingly, separately controllable electrical pathways can be established to separately control the individual regions 223 of the SST device 200, via connections made to the substrate 240. An advantage of this arrangement is that it can provide high-resolution control over the light produced by the SST device 200. At the same time, because the die 210 (and in particular, the active light emitting region of the die 210) can be generally continuous
in a lateral direction, the light output of the SST device 200 is greater than the output from a collection of smaller dies that are placed next to each other.
[0042] Figures 3A-3D illustrate several features of an SST device 300 having a vertical configuration and multiple second contacts in accordance with further embodiments of the present technology. Figure 3A is a partially schematic top view of the SST device 300. The SST device 300 includes a die 310 having a first surface 321 with first contacts 320 and corresponding bond pads 322 having an arrangement generally similar to that discussed above with reference to Figure 2B. Figure 3B is a partially schematic bottom view of a second surface 331 of the SST device 300 illustrating corresponding second contacts 330 that are configured generally according to the size and shape of the first contacts 320 (Figure 3A) at the first surface 321 of the die 310.
[0043] Figure 3C is a partially schematic cross-sectional view of the SST device 300 taken generally along line 3C-3C of Figure 3 A. The device 300 can include separately controllable electrical pathways 350a, 350b for corresponding regions 323a, 323b of the die 310, defined by the placement and position of the first contacts 320 at the first surface 321 of the die 310 and the second contacts 330 at the second surface 331. The second contacts 330 are discrete, e.g., spaced apart from each other, and accordingly, this arrangement can further isolate the electrical pathways 350a, 350b when compared to the electrical pathways 250a, 250b described above with reference to Figures 2B-2E. Conversely, an advantage of the single second contact 230 shown in Figures 2B-2E is that it can be simpler and/or cheaper to manufacture.
[0044] Figure 3D is a partially schematic top view of an SST device 300 that forms part of a package which also includes a substrate 340. The substrate 340 can include first substrate contacts 342, which can be connected via wirebonds 346 or other structures to the bond pads 322 at the first side 321 of the die 310. The substrate 340 can also include second substrate contacts 344 that are electrically isolated from one another at the substrate 340 and are connected to the corresponding second contacts 330 at the second side 331 of the die 310.
[0045] Figure 4A is a partially schematic top view of an SST device 400 having a lateral configuration in accordance with further embodiments of the present technology. The SST device 400 can include a die 410 having a first side 421, e.g., a light emitting surface, with several first contacts 420 (four are shown in Figure 4A). The die 410 can also include one or more second contacts 430 (one is shown in Figure 4 A), also on the first side 421 of the
die 410. This configuration is generally referred to as a lateral configuration because electrical pathways 450 can be established laterally through corresponding regions 423 of the die 410 located between the first contacts 420 and the second contact 430. The second contact 430 can be a single contact, as shown in Figure 4 A, or it can be one of a plurality of separate contacts. The second contact(s) 430 can have the general form of narrow traces of conductive material that extend between the regions 423 of the die 410. In some embodiments, the shape of the second contact(s) 430 can generally conform to the shape and positioning of the first contacts 420. For example, the single second contact 430 shown in Figure 4A can have a cross or cruciform shape to be positioned between four first contacts 420. The first contacts 420 can each include a bond pad 422 or other external electrical connection element. For each region 423 of the die 410, a different electric pathway 450 passes through the corresponding region of the die 410 as defined by the first contacts 420. The pathway 450 for any individual region 423 can include any portion of that region 423 between the first contact 420 of that region and the corresponding second contact(s) 430. The second contact 430 can extend partially to the edge of the device 400 to partially isolate neighboring regions 423, or it can extend completely to the edge to fully isolate the regions 423.
[0046] Figure 4B is a partially schematic top view of the SST device 400 forming part of a package that also includes a substrate 440. Because the contacts for the SST device 400 in the illustrated embodiment are all on the first side 421 of the die 410, the substrate 440 includes first substrate contacts 442 that are laterally spaced apart from the die 410 and are connected with wire bonds 446 or other suitable conductive structures to the bond pads 422. A second substrate contact 444 is connected to the second contacts 430.
[0047] Figures 5A-5C are partially schematic views of an SST device 500 having a lateral flip configuration in accordance with further embodiments of the present technology. In a lateral flip configuration, the device has laterally spaced apart n-type and p-type contacts, but (unlike the arrangement described above with reference to Figures 4A-4C), the contacts are at the second or non-lighting surface of the device. As shown in Figure 5A, the SST device 500 includes a die 510 having a downwardly facing, light emitting first surface 521 and an upwardly facing non-lighting second surface 531. The die 510 includes multiple spaced-apart first contacts 520 and one or more second contact(s) 530. The first contacts 520 and the second contact(s) 530 can define multiple lighting regions 523 of the die 510. The first contacts 520 and the second contact(s) 530 can have a pattern generally similar to that
described above with reference to Figures 4A-4B (or another suitable pattern), but because the light from the die 510 is emitted from the downwardly-facing first surface 521, the device is inverted for packaging. In addition, the first contacts 520 and/or the second contact(s) 530 can be made of non-translucent material.
[0048] Figure 5B is a partially schematic top view of a substrate 540 that can be used to package, carry or support the die 510 shown in Figure 5 A. The substrate 540 can include first substrate contacts 542 that correspond generally in shape, size and/or position to the first contacts 520 shown in Figure 5A, and second substrate contacts 544 that correspond generally in shape, size and/or position to the second contact(s) 530 shown in Figure 5A. As discussed above, these contacts can be used to separately address the individual regions 523 of the die 510. The die 510 is placed on the substrate 540 with the second surface 531 facing downwardly toward the first and second substrate contracts 542, 544.
[0049] Figure 5C is a partially schematic cross-sectional view taken generally along line 5C-5C in Figure 5A, showing a first electrical pathway 550a and second electrical pathway 550b between the first contacts 520 and the second contact(s) 530 according to embodiments of the present technology. As shown in Figure 5C, the electrical pathways 550a, 550b and current lines form arcuate patterns between the second contact(s) 530 and the first contacts 520.
[0050] Figures 6A-6C illustrate still further embodiments of a lateral flip SST device 600 having separate n-type and p-type contacts configured in accordance with embodiments of the present technology. Figure 6 A is a partially schematic bottom view of the SST device 600 including a die 610 having first contacts 620, and second contacts 630. Individual second contacts 630 can be positioned with an annular opening of a corresponding first contact 620 to prevent the contacts from shorting. Each pair of first and second contacts 620, 630 can establish an independent electrical pathway through a region or cell 623 of the die 610. Accordingly, individual regions 623 of the die 610 can be addressed with corresponding individual inputs. The first contacts 620 can be n-type contacts and the second contacts 630 can be p-type contacts, or vice versa.
[0051] Figure 6B is a partially schematic cross-sectional view taken generally along line 6B-6B of Figure 6A. The active light emitting region of the die 610 can be formed on a growth substrate 611. The second contacts 630 can be recessed from an outwardly facing surface of the die 610. The first contacts 620 can be located at or proximate to the outwardly
facing surface of the die 610. To electrically isolate individual first contacts 620 from corresponding individual second contacts 630, a dielectric material 612 can be deposited on the die 610 and in a well, trench or other recess 635 between neighboring regions 623. Accordingly, the dielectric material can form a physical separation between the neighboring regions 623.
[0052] Figure 6C is a partially schematic top view of a substrate 640 for packaging and supporting the die 610 described above with reference to Figures 6A and 6B, in accordance with particular embodiments of the present technology. The substrate 640 can include first substrate contacts 642 and second substrate contacts 644 that can receive the die 610 with the bottom or non-lighting side of the die 610 contacting the substrate 640. The first substrate contacts 642 connect to corresponding first contacts 620 of the die 610, and the second substrate contacts 644 connect to corresponding second contacts 630 of the die 610.
[0053] Figures 7A-7C illustrate SST devices that include a die 702 having independently controlled regions defined at least in part by lighting surface contacts in accordance with a further embodiment of the present technology. The size, shape, and position of the contacts and corresponding regions of the die can be selected in accordance with the design constraints presented by any of a variety of applications. Figure 7A is a partially schematic top view of a device 700a having a die 702 with multiple, individually addressable regions. The regions can include a first region 710 comprising a peripheral section of the die 702, an annular or intermediate second region 720, and a third, generally circular region 730 at or near the center of the die 702. The second and third regions 720, 730 can be generally concentric; however, in other embodiments, these regions can have other shapes and/or configurations. As described above, the die 702 can comprise a generally continuous, uniform or monolithic lighting structure, such as an LED having a continuous active region, and the regions 710, 720, and 730 can be defined at least in part by contacts (not shown) that are patterned or otherwise formed on the surface of the die 702, in a manner generally similar to that described above. The regions 710, 720, and 730 can be separately controlled to adjust the light output from the SST device 700a, and/or to manage a heat load on the SST device 700a, and/or for other suitable reasons. For example, the central third region 730 can receive more power than the first and/or second regions 710, 720 to create a spotlight effect.
[0054] The function provided by separately controlling different regions of the die 702 can be enhanced by adding a lens or other passive element to the die 702. Figure 7B
illustrates a partially schematic side view of a device 700b in which the die 702 carries a lens 741 that produces or enhances a spotlight pattern obtained by separately controlling the regions 710, 720, 730. The lens 741 can include first lens portion 742 at the center of the SST device 700b and a second lens portion 740 toward a periphery of the SST device 700b. The lens portions 740, 742 can be positioned to further focus the high intensity light emitted by the third region 730 at the center of the die 702 and/or can focus the lower intensity light from the first and second regions 710, 720.
[0055] Figure 7C illustrates another embodiment of an SST device 700c that produces a wide angle light pattern using a lens 744, e.g., in combination with independently controlling the light emitted from different regions of the die 702. In this embodiment, the first region 710 can be operated at a relatively high intensity, the second region 720 can be operated at a moderate intensity, and the third region 730 can be operated at a low intensity, with the wide angle lens 744 further diffusing the light. In other embodiments, SST devices can include other types or shapes of lenses, and the regions of the die 702 can be formed and/or selected to produce a different target light output when combined with the appropriate lens.
[0056] Figures 8A and 8B are partially schematic top and side views, respectively, of an SST device 800a that includes a die 802 carried by a substrate 840 and having multiple lighting regions, each operated at the same input power. Figures 8C and 8D are partially schematic top and side views, respectively, of an SST device 800c that includes a die 802 having multiple lighting regions operated at different input powers according to embodiments of the present technology. The SST devices 800a, 800c can include separately controlled lighting regions to manage heat and/or light produced by the SST devices 800a, 800c. The SST device 800a can include a first region 810, a second region 820, and a third region 830, generally similar to the embodiment shown in Figures 7A-C. By operating the regions of the SST device 800a at the same power, the output approximates what would occur without the benefit of the individually controlled regions. In particular, the heat builds up in the SST device 800a, and if the heat reaches a certain level, the entire SST device 800a may need to be turned off to avoid damaging the SST device 800a. In contrast, the regions of the device 800c can be operated at different levels according to the heat produced at each region to avoid shutting the device 800c down.
[0057] In general, when a single, monolithic SST device is operated, the heat is dissipated more easily from the periphery of the SST device due to its proximity to the external environment and/or heat-sinks, whereas the center of the die 802 will tend to heat
more quickly because its surrounded by the lighting structure material and there are fewer heat-sinks or other heat dissipating media nearby. Accordingly, the first region 810 can be operated at a higher power/intensity than the second region 820, which can in turn be operated at a higher power/intensity than the third region 830 to generate less heat in the third region 830, due to that region's relative inability to dissipate heat. It is to be understood that in other embodiments, the shape, size, number and/or positioning of the regions will vary, e.g., because different heat-sinks and other configurations create different heat transfer patterns at various regions of the SST device. Accordingly, the contacts at individual regions of the die 802 can be shaped according to the available heat-sink capacity in a variety of suitable patterns.
[0058] In some embodiments, the die can be used with a system that monitors heat at various regions within or outside the die and controls the input to individual regions in accordance with a measured temperature at or corresponding to the individual regions. For example, the intensity of light produced at individual regions can be raised or lowered according to the heat output of the region in a time-varying manner. The number of regions for each die can be selected to provide a target level of control over where the heat is generated and how it is dissipated.
[0059] Figure 8E is a partially schematic illustration of an overall SST system 800e that includes a light 801 in which is positioned at least one die 802 having multiple, separately controllable regions configured in accordance with any of the foregoing embodiments. In a particular embodiment shown in Figure 8E, the regions include the concentric first, second, and third regions 810, 820, 830 described above with reference to Figures 8A-8D.
[0060] The system 800e can further include a detector 880 that receives an input corresponding to an operational characteristic of the die 802, as indicated by arrow A. For example, the detector 880 can include one or more photodetection elements that receive light from the die 802 and can output a signal indicative of a characteristic of the light, for example, an intensity of the light. In other embodiments, the detector 880 can include one or more heat sensors that provide an output signal corresponding to the heat generated by the die 802. In any of these embodiments, the output signals from the detector 880 can be directed to a controller 890 that in turn processes the signal and, based at least in part upon the information conveyed by the signal, can issue directions to the die 802, as indicated by arrow B. For example, the controller 890 can include a processor programmed with instructions that, when executed, control the amount of power provided to each of the multiple regions of
the die 802. Accordingly, the controller, e.g., the processor, can include automatically executed instructions that perform any of the foregoing tasks. In particular embodiments, an individual detector can perform multiple, different, functions, and/or can be one of multiple detectors that together perform similar or different functions.
[0061] Figures 9A-9D illustrate an SST device array 900 operating in accordance with a prior art technique to account for a characteristic of red SST devices used in the context of a larger SST device array. Existing red SST devices tend to lose efficiency, and therefore intensity, once they reach a steady state temperature. To account for this effect, red SST devices are selected to have a relatively higher color intensity to offset the anticipated loss of efficiency after start up. As a result, when an SST array is started, but before the array reaches a steady sate temperature, the light produced by the array will tend to be more red than desired. One existing approach to account for this is described below with respect to Figures 9A-D.
[0062] Figure 9 A illustrates an SST device array 900 that, for purposes of explanation, has six dies. The array 900 includes two red SST devices 910 and four non-red SST devices 920 which together, at steady state temperature, produce a desired light output, such as a white light output. As shown in Figure 9A, before the array 900 reaches a steady state temperature, the red SST devices 910 emit light at a greater intensity than is suitable for producing a target output color or chromaticity.
[0063] Figure 9B shows the array 900 after reaching a steady state temperature at which point the red SST devices 910 have lost some efficiency and have reached the desired color intensity to achieve the target overall chromaticity for the array 900. One prior art solution is shown in Figure 9C. At initiation, rather than powering both of the red SST devices 910, a first red SST device 910a can be powered while a second red SST device 910b is not. The other non-red SST devices 920 can be powered and the array 900 will begin warming up. By leaving the second red SST device 910b switched off, the red component of the overall light output is provided only by the first red SST device 910a and, accordingly, the red component of the overall light output is lower and therefore closer to the desired overall chromaticity. After some time period, but before reaching the steady state temperature, the second red SST device 910b is powered. Figure 9D illustrates the array 900 after it reaches the steady state temperature and after all the SST devices are operating at their steady state levels. While this approach produces the target chromaticity, the resolution with which it adjusts the light output is low.
[0064] Figures 1 OA- IOC illustrate an array 1000 of SST devices having independently controlled lighting regions operated in accordance with particular embodiments of the present technology. The array 1000 includes a first SST device 1010a, a second red SST device 1010b, and four non-red SST devices 1020. Each of the red SST devices 1010a, 1010b can include a plurality of separately controlled regions, e.g., four as shown in Figure 10A. The non-red SST devices 1020 may or may not have separately controllable regions, according to the design requirements of a given application.
[0065] When the array 1000 is first powered up, fewer than all the available red regions are activated. Accordingly, the array 1000 includes active red regions 1012, e.g., two such regions, and inactive red regions 1014, e.g., six such regions. By operating fewer than all the red regions, e.g., less than an entire red SST device, the amount of red light produced by the red SST devices 1010a and 1010b can be less than is produced by operating the same red SST devices at their full operating capacity. The number of initially active red lighting regions 1012 and inactive regions 1014 can be selected based on the desired output chromaticity of the array 1000. The non-red SST devices 1020 can be powered at this time, or at a slightly earlier or later time. The total light output from the array 1000, including the relatively high output from the active red lighting regions 1012, can more closely match a desired overall chromaticity than would result by powering the entire first and/or second red SST device 1010a, 1010b as described above with respect to Figures 9A-9D. Accordingly, the separately or individually controllable regions of the red SST devices 1010a and 1010b offer improved color over a range of brightness levels. Unlike a dimmer-controlled incandescent light, SST devices in general have a minimum power below which they do not produce light. Selectively turning on and off particular regions of the device can provide an acceptable dimmer function despite this characteristic of SST devices.
[0066] Figure 10B shows the array 1000 after the initially powered red lighting regions have begun reducing output due to increased temperatures. Such regions are indicated by lighter hatching in Figure 10B. Additional lighting regions have accordingly been activated to account for the foregoing reduction. Figure IOC illustrates the SST device array 1000 after reaching the steady state operating temperature. At this point, all or substantially all the lighting regions of the red SST devices 1010a, 1010b are powered and have undergone thermally induced output reduction. At any given point during the foregoing process, a sufficient number of active red lighting regions 1012 are activated to produce, in combination with the non-red SST devices 1020, an output chromaticity approximately equal to a target
steady state output chromaticity. As each independently controlled lighting region of a red SST device 1010a, 1010b reaches the steady state operating temperature, its intensity drops and more independently controlled lighting regions are activated. The SST devices can include any suitable number of separately controllable regions, so the control over the output chromaticity can be fine-tuned to a desired, e.g., high, resolution. Accordingly, the overall output chromaticity from the array 1000 can more closely match a desired output chromaticity even before the array 1000 reaches the steady state temperature.
[0067] In some embodiments, the separately controlled regions can be adjacent to each other, as shown in Figures lOA-lOC. In other embodiments, regions can be distributed in other manners. For example, these initially powered lighting regions can be surrounded by initially unpowered lighting regions so the heat generated at the powered lighting regions will at least partially warm the as-yet unpowered lighting regions. In other embodiments, different regions can be turned on and off multiple times in a random or deliberate process to gradually increase the number of powered regions until the lighting structure approaches the steady state temperature. At each point in time, the number of powered lighting regions is chosen to closely match the desired output chromaticity taking into consideration the artificially high output from red SST devices that have not yet reached the steady state temperature.
[0068] From the foregoing it will be appreciated that specific embodiments of the disclosed technology have been described herein for purposes of illustration, but that various modifications may be made without deviating from the disclosure. For example, the shape, size, and positioning of the independently controlled regions can vary depending on the particular application. Additionally, different materials may be used in place of those described herein, or additional components may be added or removed. Connections between elements can be made with structures other than those described above, e.g., other than wire bonds, in other embodiments. Certain arrangements described above in the context of a single die can apply to multiple die in other embodiments. Moreover, while various advantages and features associated with certain embodiments have been described above in the context of those embodiments, other embodiments may also exhibit such advantages and/or features, and not all embodiments need necessarily exhibit such advantages and/or features to fall within the scope of the technology. Accordingly, the disclosure and associated technology can encompass other embodiments not expressly shown or described herein.
Claims
1. A solid state transducer device, comprising:
a transducer structure having:
a first semiconductor material;
a second semiconductor material; and
an active region between the first and second semiconductor materials, the active region including a continuous portion having a first region and a second region;
a first contact electrically connected to the first semiconductor material to direct a first electrical input to the first region along a first path;
a second contact electrically spaced apart from the first contact and connected to the first semiconductor material to direct a second electrical input to the second region along a second path different than the first path; and
a third electrical contact electrically connected to the second semiconductor material.
2. The device of claim 1 wherein the transducer structure is a single singulated die.
3. The device of claim 1, further comprising a substrate carrying the transducer structure.
4. The device of claim 1, further comprising a controller coupled to the first and second contacts, the controller being programmed to direct signals separately to each of the first and second contacts.
5. The device of claim 4 wherein the controller is programmed with instructions for directing signals to one of the first and second regions based at least in part on an output characteristic of the other of the first and second regions.
6. The device of claim 5 wherein the output characteristic includes an indication of heat produced by at least one of the first and second regions.
7. The device of claim 5 wherein the output characteristic includes an indication of light intensity by at least one of the first and second regions.
8. The device of claim 1 wherein the third electrical contact is electrically coupled to both the first and second regions to receive electrical current along both the first and second pathways.
9. The device of claim 1 wherein the third electrical contact is electrically coupled to the first region to receive electrical current along the first pathway, and wherein the device further comprises a fourth electrical contact connected to the second semiconductor material and spaced apart from the third electrical contact to receive electrical current along the second pathway.
10. The device of claim 1 wherein the transducer structure forms at least a portion of an LED die, and wherein the first semiconductor material includes one of an n-GaN material and a p-GaN material, the second semiconductor material includes the other of the n- GaN material and the p-GaN material, and the active region includes multiple quantum wells that in turn include GaN.
11. The device of claim 1 wherein at least one of the first and second regions at least partially surrounds the other.
12. The device of claim 1 wherein the transducer structure has a first side and a second side facing away from the first side, and wherein the first and second contacts are positioned at one of the first and second sides, and the third contact is positioned at the other of the first and second sides.
13. The device of claim 1 wherein the transducer structure has a first side and a second side facing away from the first side, and wherein the first, second, and third contacts are positioned at one of the first and second sides.
14. A solid state LED system, comprising
a singulated LED die having:
a first semiconductor material;
a second semiconductor material;
a light-emitting active region between the first and second semiconductor materials, the active region including a first region and a second region;
a first contact electrically connected to the first semiconductor material to direct a first electrical input to the first region along a first path;
a second contact electrically spaced apart from the first contact and connected to the first semiconductor material to direct a second electrical input to the second region along a second path different than the first path; and a third electrical contact electrically connected to the second semiconductor material.
15. The system of claim 14 wherein the active region includes a continuous portion having the first and second regions.
16. The system of claim 14, further comprising:
a detector positioned to receive at least one of radiation and heat emitted by the die; and
a processor coupled between the detector and the first and second contacts, the processor being programmed with instructions that, when executed:
receive a signal from the detector corresponding to an operational characteristic of the LED die; and
at least in response to the signal, direct a first electrical input to the first contact at a first power level and direct a second electrical input to the second contact at a second power level different than the first.
17. A method for operating a solid state transducer, comprising:
directing a first electrical input to a first region of a solid state transducer at a first power; and directing no electrical input or a second electrical input to a second region of the solid state transducer concurrently with the first electrical input, the second electrical input being at a second power different than the first power, wherein the first and second regions of the solid state transducer together form a continuous active region of the solid state transducer.
18. The method of claim 17, further comprising:
receiving an input corresponding to a operational characteristic of at least one of the first and second regions; and
based at least in part on the input, changing a value of at least one of the first and second powers.
19. The method of claim 18 wherein the input corresponds to a characteristic of light emitted by the active region.
20. The method of claim 18 wherein the input corresponds to a characteristic of heat emitted by the active region.
21. The method of claim 17 wherein directing the first and second electrical inputs includes directing the first and second electrical inputs to first and second regions of a single LED die.
22. The method of claim 17 wherein the first and second regions produce red light and wherein directing no electrical input or a second electrical input to a second region of the solid state transducer includes directing no electrical input while a light output from the first region is decreasing.
23. A method for manufacturing a solid state transducer, comprising:
coupling a first electrical contact to a first region of a solid state transducer die;
coupling a second electrical contact to a second region of the solid state transducer die, with the first and second contacts positioned apart from each other; and forming a first electrical pathway and a second electrical pathway through the second region, by coupling at least one additional electrical contact to the die, the first and second electrical pathways being separately addressable.
24. The method of claim 23 wherein the at least one additional electrical contact is a single electrical contact common to both the first and second regions.
25. The method of claim 23 wherein the at least one additional electrical contact includes a third electrical contact coupled to the first region of the solid state transducer die and a fourth electrical contact coupled to the second region of the solid state transducer die, and wherein the first electrical pathway extends between the first and third contacts, and the second electrical pathway extends between the second and fourth contacts.
26. The method of claim 23, further comprising coupling a controller to the first and second electrical contacts to control delivery of the first and second electrical inputs.
27. The method of claim 26, further comprising:
coupling a detector between the controller and the first and second contacts; and programming the controller to direct the first and second electrical inputs at least in part in response to a signal received from the detector, the signal corresponding to a characteristic of an output from the die.
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US13/308,656 | 2011-12-01 | ||
| US13/308,656 US9847372B2 (en) | 2011-12-01 | 2011-12-01 | Solid state transducer devices with separately controlled regions, and associated systems and methods |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2013081972A1 true WO2013081972A1 (en) | 2013-06-06 |
Family
ID=48523491
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2012/066535 Ceased WO2013081972A1 (en) | 2011-12-01 | 2012-11-26 | Solid state transducer devices with separately controlled regions, and associated systems and methods |
Country Status (3)
| Country | Link |
|---|---|
| US (4) | US9847372B2 (en) |
| TW (1) | TWI575777B (en) |
| WO (1) | WO2013081972A1 (en) |
Families Citing this family (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US9847372B2 (en) * | 2011-12-01 | 2017-12-19 | Micron Technology, Inc. | Solid state transducer devices with separately controlled regions, and associated systems and methods |
| US9653647B2 (en) * | 2013-06-14 | 2017-05-16 | Micron Technology, Inc. | Ultrathin solid state dies and methods of manufacturing the same |
| US20170271548A1 (en) * | 2013-06-26 | 2017-09-21 | Epistar Corporation | Light-emitting device and manufacturing method thereof |
| KR102099439B1 (en) * | 2013-10-08 | 2020-04-09 | 엘지이노텍 주식회사 | Light emitting Device, and package including the deivce |
Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2001177152A (en) * | 1999-12-16 | 2001-06-29 | New Japan Radio Co Ltd | Optical semiconductor device |
| US7528417B2 (en) * | 2003-02-10 | 2009-05-05 | Showa Denko K.K. | Light-emitting diode device and production method thereof |
| US20090273003A1 (en) * | 2008-04-30 | 2009-11-05 | Hyung Jo Park | Light emitting device and method for manufacturing the same |
| WO2011038422A2 (en) * | 2009-05-21 | 2011-03-31 | Tshwane University Of Technology | Wavelength specific silicon light emitting structure |
| US20110079813A1 (en) * | 2006-08-23 | 2011-04-07 | Samsung Electro-Mechanics Co., Ltd. | Vertical gallium nitride-based light emitting diode and method of manufacturing the same |
Family Cites Families (124)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPS6055678A (en) * | 1983-09-06 | 1985-03-30 | Nec Corp | light emitting diode |
| JPH04101485A (en) * | 1990-08-21 | 1992-04-02 | Hitachi Ltd | Beam spreading angle variable semiconductor laser and information processor using the same |
| US5491712A (en) * | 1994-10-31 | 1996-02-13 | Lin; Hong | Integration of surface emitting laser and photodiode for monitoring power output of surface emitting laser |
| US5574744A (en) * | 1995-02-03 | 1996-11-12 | Motorola | Optical coupler |
| KR970004181A (en) * | 1995-06-16 | 1997-01-29 | Surface-emitting semiconductor laser diode and manufacturing method thereof | |
| US5963568A (en) * | 1996-07-01 | 1999-10-05 | Xerox Corporation | Multiple wavelength, surface emitting laser with broad bandwidth distributed Bragg reflectors |
| US5892786A (en) * | 1997-03-26 | 1999-04-06 | The United States Of America As Represented By The Secretary Of The Air Force | Output control of vertical microcavity light emitting device |
| JPH11340576A (en) * | 1998-05-28 | 1999-12-10 | Sumitomo Electric Ind Ltd | Gallium nitride based semiconductor devices |
| US6277651B1 (en) * | 1998-07-09 | 2001-08-21 | Calspan Srl Corporation | Diode laser electrochemical sensor for detecting chemical and biological analytes |
| US6577658B1 (en) * | 1999-09-20 | 2003-06-10 | E20 Corporation, Inc. | Method and apparatus for planar index guided vertical cavity surface emitting lasers |
| US6556607B1 (en) * | 2000-06-23 | 2003-04-29 | Picolight, Incorporated | Temperature compensated lasers |
| US6658040B1 (en) * | 2000-07-28 | 2003-12-02 | Agilent Technologies, Inc. | High speed VCSEL |
| US6445007B1 (en) * | 2001-03-19 | 2002-09-03 | Uni Light Technology Inc. | Light emitting diodes with spreading and improving light emitting area |
| TW564584B (en) * | 2001-06-25 | 2003-12-01 | Toshiba Corp | Semiconductor light emitting device |
| TWI313069B (en) * | 2002-11-08 | 2009-08-01 | Epistar Corporatio | Light emitting diode and method of making the same |
| US6995035B2 (en) * | 2003-06-16 | 2006-02-07 | Eastman Kodak Company | Method of making a top-emitting OLED device having improved power distribution |
| US7020004B1 (en) * | 2003-08-29 | 2006-03-28 | Micron Technology, Inc. | Double density MRAM with planar processing |
| KR100533635B1 (en) * | 2003-11-20 | 2005-12-06 | 삼성전기주식회사 | Led package |
| KR100576853B1 (en) * | 2003-12-18 | 2006-05-10 | 삼성전기주식회사 | Nitride semiconductor light emitting device |
| EP1709694B1 (en) * | 2004-01-26 | 2017-03-15 | OSRAM Opto Semiconductors GmbH | Thin-film led comprising a current-dispersing structure |
| JP4136988B2 (en) * | 2004-03-31 | 2008-08-20 | 松下電器産業株式会社 | Semiconductor laser device |
| KR100590775B1 (en) * | 2004-12-08 | 2006-06-19 | 한국전자통신연구원 | Silicon-based light emitting diode |
| US7335920B2 (en) * | 2005-01-24 | 2008-02-26 | Cree, Inc. | LED with current confinement structure and surface roughening |
| KR100665120B1 (en) * | 2005-02-28 | 2007-01-09 | 삼성전기주식회사 | Vertical structure nitride semiconductor light emitting device |
| TW200633333A (en) * | 2005-03-08 | 2006-09-16 | Phenitec Semiconductor Corp | Laser diode chip, laser diode, and method for manufacturing laser diode chip |
| US7326971B2 (en) * | 2005-06-08 | 2008-02-05 | Cree, Inc. | Gallium nitride based high-electron mobility devices |
| KR100616693B1 (en) * | 2005-08-09 | 2006-08-28 | 삼성전기주식회사 | Nitride semiconductor light emitting device |
| CN100375303C (en) * | 2005-10-27 | 2008-03-12 | 晶能光电(江西)有限公司 | Ohmic electrode containing gold germanium and nickel, indium gallium aluminum nitrogen semiconductor light-emitting element and manufacturing method |
| TWI291246B (en) * | 2005-10-20 | 2007-12-11 | Epistar Corp | Light emitting device and method of forming the same |
| US7944567B2 (en) * | 2005-12-05 | 2011-05-17 | Fujifilm Corporation | Semiconductor light emitting element, light source using the semiconductor light emitting element, and optical tomography imaging apparatus |
| TWI331406B (en) | 2005-12-14 | 2010-10-01 | Advanced Optoelectronic Tech | Single chip with multi-led |
| US8008670B2 (en) * | 2006-02-21 | 2011-08-30 | Semiconductor Energy Laboratory Co., Ltd. | Light emitting device |
| ITTO20060226A1 (en) * | 2006-03-27 | 2007-09-28 | Silicon Biosystem S P A | METHOD AND APPARATUS FOR PROCESSING AND OR ANALYSIS AND OR SELECTION OF PARTICLES, IN PARTICULAR BIOLOGICAL PARTICLES |
| US7683475B2 (en) * | 2006-03-31 | 2010-03-23 | Dicon Fiberoptics, Inc. | LED chip array module |
| US7910385B2 (en) * | 2006-05-12 | 2011-03-22 | Micron Technology, Inc. | Method of fabricating microelectronic devices |
| JP2008047871A (en) * | 2006-07-18 | 2008-02-28 | Mitsubishi Electric Corp | Semiconductor light emitting diode |
| JP4581062B2 (en) * | 2006-10-20 | 2010-11-17 | 日本化薬株式会社 | Field effect transistor, ink for manufacturing semiconductor device, method for producing field effect transistor, and organic heterocyclic compound |
| KR100845856B1 (en) * | 2006-12-21 | 2008-07-14 | 엘지전자 주식회사 | Light emitting device package and its manufacturing method |
| JP5228363B2 (en) * | 2007-04-18 | 2013-07-03 | ソニー株式会社 | Light emitting element |
| US8852467B2 (en) * | 2007-05-31 | 2014-10-07 | Nthdegree Technologies Worldwide Inc | Method of manufacturing a printable composition of a liquid or gel suspension of diodes |
| JP2008311320A (en) * | 2007-06-13 | 2008-12-25 | Ushio Inc | Laser diode chip and manufacturing method thereof |
| US7642580B2 (en) * | 2007-06-20 | 2010-01-05 | Apitina Imaging Corporation | Imager pixel structure and circuit |
| KR101226296B1 (en) * | 2007-09-13 | 2013-01-24 | 가부시키가이샤 리코 | Novel arylamine polymer, method for producing the same, ink composition, film, electronic device, organic thin-film transistor, and display device |
| US9172012B2 (en) * | 2007-10-31 | 2015-10-27 | Cree, Inc. | Multi-chip light emitter packages and related methods |
| KR101449005B1 (en) * | 2007-11-26 | 2014-10-08 | 엘지이노텍 주식회사 | Semiconductor light emitting device and manufacturing method thereof |
| RU2436195C1 (en) * | 2007-12-28 | 2011-12-10 | Нития Корпорейшн | Semiconductor light-emitting instrument and method for its manufacturing |
| WO2009108397A1 (en) * | 2008-01-07 | 2009-09-03 | The Johns Hopkins University | Devices having high dielectric-constant, ionically-polarizable materials |
| US7906786B2 (en) * | 2008-01-11 | 2011-03-15 | Industrial Technology Research Institute | Light emitting device |
| US20110120554A1 (en) * | 2008-03-27 | 2011-05-26 | Rensselaer Polytechnic Institute | Ultra-low reflectance broadband omni-directional anti-reflection coating |
| US7781780B2 (en) * | 2008-03-31 | 2010-08-24 | Bridgelux, Inc. | Light emitting diodes with smooth surface for reflective electrode |
| KR20100072163A (en) * | 2008-05-20 | 2010-06-30 | 파나소닉 주식회사 | Semiconductor light-emitting device as well as light source device and lighting system including the same |
| US8988011B2 (en) | 2008-05-21 | 2015-03-24 | Manufacturing Resources International, Inc. | System and method for managing backlight luminance variations |
| CN104538507B (en) * | 2008-06-02 | 2017-08-15 | Lg伊诺特有限公司 | Method for preparing semiconductor light-emitting apparatus |
| US9190810B2 (en) * | 2008-07-28 | 2015-11-17 | Avago Technologies General Ip (Singapore) Pte. Ltd. | Three-terminal vertical cavity surface emitting laser (VCSEL) and a method for operating a three-terminal VCSEL |
| JP5305790B2 (en) * | 2008-08-28 | 2013-10-02 | 株式会社東芝 | Semiconductor light emitting device |
| JP5282503B2 (en) * | 2008-09-19 | 2013-09-04 | 日亜化学工業株式会社 | Semiconductor light emitting device |
| US7960743B2 (en) | 2008-12-05 | 2011-06-14 | Jds Uniphase Corporation | Multi-electrode light emitting device |
| JP2010177153A (en) | 2009-02-02 | 2010-08-12 | Sony Corp | Surface light source and display device |
| KR101007130B1 (en) * | 2009-02-18 | 2011-01-10 | 엘지이노텍 주식회사 | Light emitting device and manufacturing method |
| KR101007128B1 (en) * | 2009-02-19 | 2011-01-10 | 엘지이노텍 주식회사 | Light emitting device and manufacturing method |
| US8384097B2 (en) * | 2009-04-08 | 2013-02-26 | Ledengin, Inc. | Package for multiple light emitting diodes |
| US7977132B2 (en) | 2009-05-06 | 2011-07-12 | Koninklijke Philips Electronics N.V. | Extension of contact pads to the die edge via electrical isolation |
| US7956546B2 (en) | 2009-05-15 | 2011-06-07 | Bridgelux, Inc. | Modular LED light bulb |
| US8587017B2 (en) * | 2009-07-05 | 2013-11-19 | Industrial Technology Research Institute | Light emitting device and method of fabricating a light emitting device |
| WO2010003386A2 (en) * | 2009-07-10 | 2010-01-14 | 财团法人工业技术研究院 | Light-emitting device and packaging structure thereof |
| EP2460191A2 (en) | 2009-07-30 | 2012-06-06 | 3M Innovative Properties Company | Pixelated led |
| KR101114047B1 (en) * | 2009-10-22 | 2012-03-09 | 엘지이노텍 주식회사 | Light emitting device and method for fabricating the same |
| TWI412161B (en) * | 2009-11-06 | 2013-10-11 | Semileds Optoelectronics Co | Light-emitting diode device |
| DE102009052653B4 (en) | 2009-11-11 | 2011-12-29 | Fraunhofer-Gesellschaft zur Förderung der angewandten Forschung e.V. | Autostereoscopic display |
| EP2333852B1 (en) * | 2009-12-09 | 2019-03-27 | LG Innotek Co., Ltd. | Light emitting device and light emitting package |
| EP2513998B1 (en) | 2009-12-18 | 2017-07-05 | Novaled GmbH | Large area light emitting device comprising organic light emitting diodes |
| EP2519967B1 (en) * | 2009-12-30 | 2014-12-10 | Solexel, Inc. | Mobile electrostatic carriers for thin wafer processing |
| US20110062482A1 (en) * | 2010-01-20 | 2011-03-17 | Bridgelux, Inc. | Apparatus And Method For Enhancing Connectability In LED Array Using Metal Traces |
| KR100993094B1 (en) * | 2010-02-01 | 2010-11-08 | 엘지이노텍 주식회사 | Light emitting device, and light emitting device package |
| US8860077B2 (en) * | 2010-02-12 | 2014-10-14 | Lg Innotek Co., Ltd. | Light emitting device and light emitting device package including the same |
| EP2367203A1 (en) * | 2010-02-26 | 2011-09-21 | Samsung LED Co., Ltd. | Semiconductor light emitting device having multi-cell array and method for manufacturing the same |
| KR101014155B1 (en) * | 2010-03-10 | 2011-02-10 | 엘지이노텍 주식회사 | Light emitting device, light emitting device manufacturing method and light emitting device package |
| US8552438B2 (en) * | 2010-03-25 | 2013-10-08 | Micron Technology, Inc. | Multi-lens solid state lighting devices |
| US8492777B2 (en) * | 2010-04-09 | 2013-07-23 | Everlight Electronics Co., Ltd. | Light emitting diode package, lighting device and light emitting diode package substrate |
| KR101064020B1 (en) * | 2010-04-23 | 2011-09-08 | 엘지이노텍 주식회사 | Light emitting device and manufacturing method |
| KR101039939B1 (en) * | 2010-04-28 | 2011-06-09 | 엘지이노텍 주식회사 | Light emitting device, method of manufacturing light emitting device, light emitting device package and lighting system including same |
| CN101859860B (en) * | 2010-05-04 | 2013-04-10 | 厦门市三安光电科技有限公司 | Method for preparing AlGaInP-series light-emitting diode with double reflecting layers |
| TWI489652B (en) * | 2010-05-12 | 2015-06-21 | 晶元光電股份有限公司 | Semiconductor epitaxial structure and device thereof |
| US20150179857A1 (en) * | 2010-05-12 | 2015-06-25 | Epistar Corporation | Semiconductor epitaxial structures and semiconductor optoelectronic devices comprising the same |
| US20120003762A1 (en) * | 2010-06-30 | 2012-01-05 | Liann-Be Chang | Method to Protect Compound Semiconductor from Electrostatic Discharge Damage |
| WO2012016377A1 (en) * | 2010-08-03 | 2012-02-09 | Industrial Technology Research Institute | Light emitting diode chip, light emitting diode package structure, and method for forming the same |
| JP5095785B2 (en) * | 2010-08-09 | 2012-12-12 | 株式会社東芝 | Semiconductor light emitting device and manufacturing method thereof |
| US8410515B2 (en) * | 2010-08-31 | 2013-04-02 | Micron Technology, Inc. | Solid state lighting devices with point contacts and associated methods of manufacturing |
| TWI452730B (en) * | 2010-09-14 | 2014-09-11 | Formosa Epitaxy Inc | Light-emitting diode |
| US8696159B2 (en) * | 2010-09-20 | 2014-04-15 | Cree, Inc. | Multi-chip LED devices |
| EP2439793B1 (en) * | 2010-10-11 | 2016-03-16 | LG Innotek Co., Ltd. | Light emitting device and lighting instrument including the same |
| JP5631692B2 (en) * | 2010-10-22 | 2014-11-26 | ソニー株式会社 | Semiconductor laser device assembly |
| EP2445019B1 (en) * | 2010-10-25 | 2018-01-24 | LG Innotek Co., Ltd. | Electrode configuration for a light emitting diode |
| KR20120081506A (en) * | 2011-01-11 | 2012-07-19 | 삼성전자주식회사 | Vertical light emitting device |
| USD660257S1 (en) * | 2011-01-31 | 2012-05-22 | Cree, Inc. | Emitter package |
| JP5727271B2 (en) * | 2011-03-24 | 2015-06-03 | スタンレー電気株式会社 | Semiconductor light emitting device |
| US8921875B2 (en) * | 2011-05-10 | 2014-12-30 | Cree, Inc. | Recipient luminophoric mediums having narrow spectrum luminescent materials and related semiconductor light emitting devices and methods |
| TWI411136B (en) * | 2011-05-10 | 2013-10-01 | Lextar Electronics Corp | Semiconductor light emitting structure |
| US9765934B2 (en) * | 2011-05-16 | 2017-09-19 | The Board Of Trustees Of The University Of Illinois | Thermally managed LED arrays assembled by printing |
| TW201248945A (en) * | 2011-05-31 | 2012-12-01 | Chi Mei Lighting Tech Corp | Light-emitting diode device and method for manufacturing the same |
| US8686429B2 (en) * | 2011-06-24 | 2014-04-01 | Cree, Inc. | LED structure with enhanced mirror reflectivity |
| TWI441140B (en) * | 2011-07-18 | 2014-06-11 | Ampower Technology Co Ltd | Led driving system and display device using the same |
| JP2013026451A (en) * | 2011-07-21 | 2013-02-04 | Stanley Electric Co Ltd | Semiconductor light-emitting device |
| US9142743B2 (en) * | 2011-08-02 | 2015-09-22 | Kabushiki Kaisha Toshiba | High temperature gold-free wafer bonding for light emitting diodes |
| US20130032810A1 (en) * | 2011-08-03 | 2013-02-07 | Bridgelux, Inc. | Led on silicon substrate using zinc-sulfide as buffer layer |
| US8946788B2 (en) * | 2011-08-04 | 2015-02-03 | Avogy, Inc. | Method and system for doping control in gallium nitride based devices |
| JP5829453B2 (en) * | 2011-08-09 | 2015-12-09 | スタンレー電気株式会社 | Semiconductor light emitting device |
| US9299742B2 (en) * | 2011-08-15 | 2016-03-29 | Micron Technology, Inc. | High-voltage solid-state transducers and associated systems and methods |
| CN103078040B (en) * | 2011-08-22 | 2016-12-21 | Lg伊诺特有限公司 | Light emitting device package and light device |
| US8497146B2 (en) * | 2011-08-25 | 2013-07-30 | Micron Technology, Inc. | Vertical solid-state transducers having backside terminals and associated systems and methods |
| US9490239B2 (en) * | 2011-08-31 | 2016-11-08 | Micron Technology, Inc. | Solid state transducers with state detection, and associated systems and methods |
| US8809897B2 (en) * | 2011-08-31 | 2014-08-19 | Micron Technology, Inc. | Solid state transducer devices, including devices having integrated electrostatic discharge protection, and associated systems and methods |
| US20130134838A1 (en) * | 2011-11-28 | 2013-05-30 | Qualcomm Mems Technologies, Inc. | Piezoelectric mems transformer |
| US8569153B2 (en) * | 2011-11-30 | 2013-10-29 | Avogy, Inc. | Method and system for carbon doping control in gallium nitride based devices |
| US9847372B2 (en) * | 2011-12-01 | 2017-12-19 | Micron Technology, Inc. | Solid state transducer devices with separately controlled regions, and associated systems and methods |
| US8598611B2 (en) * | 2012-01-09 | 2013-12-03 | Micron Technology, Inc. | Vertical solid-state transducers and solid-state transducer arrays having backside terminals and associated systems and methods |
| JP5992695B2 (en) * | 2012-02-29 | 2016-09-14 | スタンレー電気株式会社 | Semiconductor light emitting element array and vehicle lamp |
| KR101286210B1 (en) * | 2012-03-12 | 2013-07-15 | 고려대학교 산학협력단 | Light emitting device and method fabricating the same |
| US9450152B2 (en) * | 2012-05-29 | 2016-09-20 | Micron Technology, Inc. | Solid state transducer dies having reflective features over contacts and associated systems and methods |
| EP2713138B1 (en) * | 2012-09-28 | 2015-07-15 | Canon Kabushiki Kaisha | Light source and optical coherence tomography apparatus using the same |
| US8963121B2 (en) * | 2012-12-07 | 2015-02-24 | Micron Technology, Inc. | Vertical solid-state transducers and high voltage solid-state transducers having buried contacts and associated systems and methods |
| US9433040B2 (en) * | 2013-06-14 | 2016-08-30 | Micron Technology, Inc. | Light-emitting metal-oxide-semiconductor devices and associated systems, devices, and methods |
| US10366923B2 (en) * | 2016-06-02 | 2019-07-30 | Semiconductor Components Industries, Llc | Method of separating electronic devices having a back layer and apparatus |
| JP6717324B2 (en) * | 2018-02-27 | 2020-07-01 | 日亜化学工業株式会社 | Light emitting element |
-
2011
- 2011-12-01 US US13/308,656 patent/US9847372B2/en active Active
-
2012
- 2012-11-26 WO PCT/US2012/066535 patent/WO2013081972A1/en not_active Ceased
- 2012-11-30 TW TW101145128A patent/TWI575777B/en active
-
2017
- 2017-08-29 US US15/690,081 patent/US10825859B2/en active Active
-
2020
- 2020-10-21 US US17/076,557 patent/US12205975B2/en active Active
-
2025
- 2025-01-17 US US19/030,871 patent/US20250169262A1/en active Pending
Patent Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2001177152A (en) * | 1999-12-16 | 2001-06-29 | New Japan Radio Co Ltd | Optical semiconductor device |
| US7528417B2 (en) * | 2003-02-10 | 2009-05-05 | Showa Denko K.K. | Light-emitting diode device and production method thereof |
| US20110079813A1 (en) * | 2006-08-23 | 2011-04-07 | Samsung Electro-Mechanics Co., Ltd. | Vertical gallium nitride-based light emitting diode and method of manufacturing the same |
| US20090273003A1 (en) * | 2008-04-30 | 2009-11-05 | Hyung Jo Park | Light emitting device and method for manufacturing the same |
| WO2011038422A2 (en) * | 2009-05-21 | 2011-03-31 | Tshwane University Of Technology | Wavelength specific silicon light emitting structure |
Also Published As
| Publication number | Publication date |
|---|---|
| US20210036052A1 (en) | 2021-02-04 |
| US12205975B2 (en) | 2025-01-21 |
| US9847372B2 (en) | 2017-12-19 |
| TWI575777B (en) | 2017-03-21 |
| US20250169262A1 (en) | 2025-05-22 |
| US10825859B2 (en) | 2020-11-03 |
| US20180006084A1 (en) | 2018-01-04 |
| TW201332159A (en) | 2013-08-01 |
| US20130140994A1 (en) | 2013-06-06 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| US20250169262A1 (en) | Solid state transducer devices with separately controlled regions, and associated systems and methods | |
| JP6880148B2 (en) | Backlight unit using multi-cell light emitting diode | |
| US9392666B2 (en) | Monolithic LED chip in an integrated control module with active circuitry | |
| US10088123B2 (en) | Light emitting device, LED light bulb, spot lighting device, lighting device, and lighting equipment | |
| TWI495145B (en) | Light-emitting diode lamp using blue and cyan LEDs and phosphors | |
| US8436371B2 (en) | Microscale optoelectronic device packages | |
| TWI575775B (en) | Light-emitting device and light-emitting device package | |
| CN106068677B (en) | Backlight module with MJT LED and the back light unit including it | |
| KR20110059788A (en) | Light-emitting device comprising independently electrically addressable compartments | |
| KR20080054402A (en) | Variable color light emitting devices, lighting systems comprising them, lighting system networks and assemblies, and controllers and control methods therefor | |
| CN108352423B (en) | Semiconductor device | |
| WO2009028869A2 (en) | Light emitting device package and lighting apparatus using the same | |
| KR20220094291A (en) | Light emitting diode module and lighting apparatus | |
| CN102763490A (en) | Color control of light emitting devices | |
| US12260806B2 (en) | Micro light-emitting diode display panel | |
| EP3732724A1 (en) | High density interconnect for segmented leds | |
| US8461599B2 (en) | Light emitting diode with a stable color temperature | |
| WO2012021338A2 (en) | Solid state lights with thermal control elements | |
| TWI781689B (en) | Micro light emitting diode display panel | |
| US11990570B2 (en) | White light emitting device and lighting apparatus | |
| KR102631075B1 (en) | Smeiconductor device |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| 121 | Ep: the epo has been informed by wipo that ep was designated in this application |
Ref document number: 12854006 Country of ref document: EP Kind code of ref document: A1 |
|
| NENP | Non-entry into the national phase |
Ref country code: DE |
|
| 122 | Ep: pct application non-entry in european phase |
Ref document number: 12854006 Country of ref document: EP Kind code of ref document: A1 |