US20140146527A1 - Fixtures for large area directional and isotropic solid state lighting panels - Google Patents

Fixtures for large area directional and isotropic solid state lighting panels Download PDF

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Publication number
US20140146527A1
US20140146527A1 US14/020,893 US201314020893A US2014146527A1 US 20140146527 A1 US20140146527 A1 US 20140146527A1 US 201314020893 A US201314020893 A US 201314020893A US 2014146527 A1 US2014146527 A1 US 2014146527A1
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light
light source
wavelength
panel
solid state
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US14/020,893
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Scott M. Zimmerman
Karl W. Beeson
William R. Livesay
Richard L. Ross
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Goldeneye Inc
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Goldeneye Inc
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Assigned to GOLDENEYE, INC. reassignment GOLDENEYE, INC. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: BEESON, KARL W., LIVESAY, WILLIAM R., ROSS, RICHARD L., ZIMMERMAN, SCOTT M.
Publication of US20140146527A1 publication Critical patent/US20140146527A1/en
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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21VFUNCTIONAL FEATURES OR DETAILS OF LIGHTING DEVICES OR SYSTEMS THEREOF; STRUCTURAL COMBINATIONS OF LIGHTING DEVICES WITH OTHER ARTICLES, NOT OTHERWISE PROVIDED FOR
    • F21V13/00Producing particular characteristics or distribution of the light emitted by means of a combination of elements specified in two or more of main groups F21V1/00 - F21V11/00
    • F21V13/02Combinations of only two kinds of elements
    • F21V13/08Combinations of only two kinds of elements the elements being filters or photoluminescent elements and reflectors
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21KNON-ELECTRIC LIGHT SOURCES USING LUMINESCENCE; LIGHT SOURCES USING ELECTROCHEMILUMINESCENCE; LIGHT SOURCES USING CHARGES OF COMBUSTIBLE MATERIAL; LIGHT SOURCES USING SEMICONDUCTOR DEVICES AS LIGHT-GENERATING ELEMENTS; LIGHT SOURCES NOT OTHERWISE PROVIDED FOR
    • F21K9/00Light sources using semiconductor devices as light-generating elements, e.g. using light-emitting diodes [LED] or lasers
    • F21K9/60Optical arrangements integrated in the light source, e.g. for improving the colour rendering index or the light extraction
    • F21K9/64Optical arrangements integrated in the light source, e.g. for improving the colour rendering index or the light extraction using wavelength conversion means distinct or spaced from the light-generating element, e.g. a remote phosphor layer
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21KNON-ELECTRIC LIGHT SOURCES USING LUMINESCENCE; LIGHT SOURCES USING ELECTROCHEMILUMINESCENCE; LIGHT SOURCES USING CHARGES OF COMBUSTIBLE MATERIAL; LIGHT SOURCES USING SEMICONDUCTOR DEVICES AS LIGHT-GENERATING ELEMENTS; LIGHT SOURCES NOT OTHERWISE PROVIDED FOR
    • F21K9/00Light sources using semiconductor devices as light-generating elements, e.g. using light-emitting diodes [LED] or lasers
    • F21K9/60Optical arrangements integrated in the light source, e.g. for improving the colour rendering index or the light extraction
    • F21K9/68Details of reflectors forming part of the light source
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21SNON-PORTABLE LIGHTING DEVICES; SYSTEMS THEREOF; VEHICLE LIGHTING DEVICES SPECIALLY ADAPTED FOR VEHICLE EXTERIORS
    • F21S9/00Lighting devices with a built-in power supply; Systems employing lighting devices with a built-in power supply
    • F21S9/02Lighting devices with a built-in power supply; Systems employing lighting devices with a built-in power supply the power supply being a battery or accumulator
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21SNON-PORTABLE LIGHTING DEVICES; SYSTEMS THEREOF; VEHICLE LIGHTING DEVICES SPECIALLY ADAPTED FOR VEHICLE EXTERIORS
    • F21S9/00Lighting devices with a built-in power supply; Systems employing lighting devices with a built-in power supply
    • F21S9/02Lighting devices with a built-in power supply; Systems employing lighting devices with a built-in power supply the power supply being a battery or accumulator
    • F21S9/03Lighting devices with a built-in power supply; Systems employing lighting devices with a built-in power supply the power supply being a battery or accumulator rechargeable by exposure to light
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21VFUNCTIONAL FEATURES OR DETAILS OF LIGHTING DEVICES OR SYSTEMS THEREOF; STRUCTURAL COMBINATIONS OF LIGHTING DEVICES WITH OTHER ARTICLES, NOT OTHERWISE PROVIDED FOR
    • F21V21/00Supporting, suspending, or attaching arrangements for lighting devices; Hand grips
    • F21V21/08Devices for easy attachment to any desired place, e.g. clip, clamp, magnet
    • F21V21/096Magnetic devices
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21VFUNCTIONAL FEATURES OR DETAILS OF LIGHTING DEVICES OR SYSTEMS THEREOF; STRUCTURAL COMBINATIONS OF LIGHTING DEVICES WITH OTHER ARTICLES, NOT OTHERWISE PROVIDED FOR
    • F21V29/00Protecting lighting devices from thermal damage; Cooling or heating arrangements specially adapted for lighting devices or systems
    • F21V29/50Cooling arrangements
    • F21V29/502Cooling arrangements characterised by the adaptation for cooling of specific components
    • F21V29/505Cooling arrangements characterised by the adaptation for cooling of specific components of reflectors
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21VFUNCTIONAL FEATURES OR DETAILS OF LIGHTING DEVICES OR SYSTEMS THEREOF; STRUCTURAL COMBINATIONS OF LIGHTING DEVICES WITH OTHER ARTICLES, NOT OTHERWISE PROVIDED FOR
    • F21V29/00Protecting lighting devices from thermal damage; Cooling or heating arrangements specially adapted for lighting devices or systems
    • F21V29/50Cooling arrangements
    • F21V29/70Cooling arrangements characterised by passive heat-dissipating elements, e.g. heat-sinks
    • F21V29/83Cooling arrangements characterised by passive heat-dissipating elements, e.g. heat-sinks the elements having apertures, ducts or channels, e.g. heat radiation holes
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21VFUNCTIONAL FEATURES OR DETAILS OF LIGHTING DEVICES OR SYSTEMS THEREOF; STRUCTURAL COMBINATIONS OF LIGHTING DEVICES WITH OTHER ARTICLES, NOT OTHERWISE PROVIDED FOR
    • F21V9/00Elements for modifying spectral properties, polarisation or intensity of the light emitted, e.g. filters
    • F21V9/08Elements for modifying spectral properties, polarisation or intensity of the light emitted, e.g. filters for producing coloured light, e.g. monochromatic; for reducing intensity of light
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01LSEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
    • H01L33/00Semiconductor devices having potential barriers specially adapted for light emission; Processes or apparatus specially adapted for the manufacture or treatment thereof or of parts thereof; Details thereof
    • H01L33/48Semiconductor devices having potential barriers specially adapted for light emission; Processes or apparatus specially adapted for the manufacture or treatment thereof or of parts thereof; Details thereof characterised by the semiconductor body packages
    • H01L33/50Wavelength conversion elements
    • H01L33/507Wavelength conversion elements the elements being in intimate contact with parts other than the semiconductor body or integrated with parts other than the semiconductor body
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21VFUNCTIONAL FEATURES OR DETAILS OF LIGHTING DEVICES OR SYSTEMS THEREOF; STRUCTURAL COMBINATIONS OF LIGHTING DEVICES WITH OTHER ARTICLES, NOT OTHERWISE PROVIDED FOR
    • F21V29/00Protecting lighting devices from thermal damage; Cooling or heating arrangements specially adapted for lighting devices or systems
    • F21V29/50Cooling arrangements
    • F21V29/51Cooling arrangements using condensation or evaporation of a fluid, e.g. heat pipes
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21VFUNCTIONAL FEATURES OR DETAILS OF LIGHTING DEVICES OR SYSTEMS THEREOF; STRUCTURAL COMBINATIONS OF LIGHTING DEVICES WITH OTHER ARTICLES, NOT OTHERWISE PROVIDED FOR
    • F21V29/00Protecting lighting devices from thermal damage; Cooling or heating arrangements specially adapted for lighting devices or systems
    • F21V29/50Cooling arrangements
    • F21V29/54Cooling arrangements using thermoelectric means, e.g. Peltier elements
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01LSEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
    • H01L2924/00Indexing scheme for arrangements or methods for connecting or disconnecting semiconductor or solid-state bodies as covered by H01L24/00
    • H01L2924/0001Technical content checked by a classifier
    • H01L2924/0002Not covered by any one of groups H01L24/00, H01L24/00 and H01L2224/00
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01LSEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
    • H01L33/00Semiconductor devices having potential barriers specially adapted for light emission; Processes or apparatus specially adapted for the manufacture or treatment thereof or of parts thereof; Details thereof
    • H01L33/48Semiconductor devices having potential barriers specially adapted for light emission; Processes or apparatus specially adapted for the manufacture or treatment thereof or of parts thereof; Details thereof characterised by the semiconductor body packages
    • H01L33/58Optical field-shaping elements
    • H01L33/60Reflective elements
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01LSEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
    • H01L33/00Semiconductor devices having potential barriers specially adapted for light emission; Processes or apparatus specially adapted for the manufacture or treatment thereof or of parts thereof; Details thereof
    • H01L33/48Semiconductor devices having potential barriers specially adapted for light emission; Processes or apparatus specially adapted for the manufacture or treatment thereof or of parts thereof; Details thereof characterised by the semiconductor body packages
    • H01L33/64Heat extraction or cooling elements
    • H01L33/642Heat extraction or cooling elements characterized by the shape
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01LSEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
    • H01L33/00Semiconductor devices having potential barriers specially adapted for light emission; Processes or apparatus specially adapted for the manufacture or treatment thereof or of parts thereof; Details thereof
    • H01L33/48Semiconductor devices having potential barriers specially adapted for light emission; Processes or apparatus specially adapted for the manufacture or treatment thereof or of parts thereof; Details thereof characterised by the semiconductor body packages
    • H01L33/64Heat extraction or cooling elements
    • H01L33/648Heat extraction or cooling elements the elements comprising fluids, e.g. heat-pipes
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02BCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B10/00Integration of renewable energy sources in buildings
    • Y02B10/10Photovoltaic [PV]

Definitions

  • Panel light fixtures are typically designed to take into account the light distribution, intensity, and thermal characteristics of the source. Panel light fixtures have historically been incandescent light bulbs or fluorescent light bulbs. A wide range of reflectors and optical devices have been developed over the years to generate a particular output distribution and/or deliver maximum efficiency for an incandescent light bulb.
  • Fluorescent light bulbs work differently than incandescent light bulbs.
  • An incandescent light has electricity pass through a filament, which emits light.
  • a fluorescent light is a gas discharge light where electricity excites mercury vapor, which emits ultraviolet light. The ultraviolet light strikes phosphors in the fluorescent light, which in turn emit visible light.
  • Fluorescent light bulbs have the added need of ballasts or other electronic methods of converting the available power into a useful form. Fluorescent light bulbs use different reflectors and different optical devices from an incandescent light bulb to achieve a similar result of a particular output distribution and/or maximum efficiency for a fluorescent bulb.
  • a new light source based on a distributed array of light emitting diodes (LEDs) within a solid luminescent element has been disclosed by Zimmerman et al. in U.S. Pat. No. 7,285,791, commonly assigned as the present application and herein incorporated by reference. Electricity passes through an active region of semiconductor material to emit light in a light emitting diode.
  • the solid luminescent element is a wavelength conversion chip.
  • a light emitting diode such as those in US Published Patent Applications 20080182353 and 20080258165, commonly assigned as the present application and herein incorporated by reference, will emit light of a first wavelength and that first wavelength light will be converted into light of a second wavelength by the wavelength conversion chip.
  • a panel light source can be made in a variety of shapes and output distributions ranging from directional to isotropic using thermally conductive luminescent elements. Power conditioning and control electronics can also be incorporated into the bulb itself because the thermally conductive luminescent element is a solid. A variety of means can also be used to connect to the available power source. In addition, the distributed nature of the sources allows for cooling via natural convection means as long as sufficient airflow is allowed by the light fixture eliminating or greatly reducing the need for additional heatsinking means. It also provides a substrate for integration of solar and energy storage means.
  • LED light sources are based on high intensity point sources, which required extensive thermal heatsinking to operate and distribute the heat generated in the point sources over a large area.
  • the localized nature of these high intensity point sources dictate that large heatsinks must be used especially in the case of natural convection cooled applications. While 100 lumen/watt performance levels have been demonstrated for bulbs outside the fixture, performance can degrade as much as 50% once this type of solid state light source is used inside the fixture due to airflow restriction and lack of ventilation. This is especially true for the cases where fixtures are surrounded by insulation, as is the case for most residential applications.
  • the heatsinks typically required to cool these high intensity point sources are both heavy and present a hazard especially in overhead lighting applications, where a falling light could severely injure a passerby.
  • the fact that the source is so localized means that some type of distribution or diffusing means must be used to deal with the brightness level generated. This is required from an aesthetic and safety point of view.
  • the small nature of the source means that imaging of the source on the retina of the eye is of great concern. This is especially true for UV and blue sources due to additive photochemical effects.
  • brightness levels greater than 5,000 to 10,000 FtL are uncomfortable for direct viewing especially at night.
  • High intensity point sources can be several orders of magnitude higher brightness than what can be comfortably viewed directly.
  • the localized nature of the heat source generated by these high intensity point sources dictate that high efficiency heat sink designs must be used which are more susceptible to dust and other environmental effects especially in outside applications. This dictates periodic maintenance of the light sources, which is impractical in many cases. The need therefore exists for improved fixtures that can provide directional control, allow cooling of the sources, and safely illuminate our homes and businesses.
  • Panel lights based on thermally conductivity luminescent elements are disclosed which enable new types of light fixtures and are ideally suited for general illumination applications.
  • a solid state light source such as a light emitting diode, an organic light emitting diode, an inorganic light emitting diode, an edge emitter light emitting diode, a vertical cavity surface emitting laser, or a laser diode, and a thermally conductive luminescent element, such as a wavelength conversion element or a phosphor element, with a reflector means will form a panel light fixture.
  • the solid state light source is typically a point light source of a single wavelength but the panel light fixture transmits light of a broader emission spectrum over a large area.
  • the panel light sources disclosed in this invention consist of at least one thermally conductive luminescent element to which at least one solid state light source is attached, and an interconnect means.
  • the at least one thermally conductive luminescent element not only converts at least a portion of the light emitted from the at least one solid state light source into a broader emission spectrum, but it also serves to diffuse/distribute the light generated as well as provide a cooling path for itself and the at least one solid state light source to the surrounding ambient via convection off the surface of the at least one thermally conductive luminescent element. More preferably, the at least one thermally conductive luminescent element enables the formation of panel lights which can be directly viewed with human eye without the need for further diffusion or protective means.
  • FIG. 1 is a side view of a lambertian directional panel light source of the present invention.
  • FIG. 2 is a side view of an isotropic panel light source of the present invention.
  • FIG. 3 is a side view of a wall washer based on a lambertian panel light with induced draft cooling flow of the present invention.
  • FIG. 4 is a side view of a trough light with an isotropic linear panel light source and flow through cooling of the present invention.
  • FIG. 5 is a side view of a light panel for improved reflector design of the present invention.
  • FIG. 6 is a side view of a magnetic connector for lambertian panels for ceiling lighting of the present invention.
  • FIG. 7 is a side view of a panel light source with an energy storage means and solar cell conversion means for a light fixture of the present invention.
  • FIG. 1 depicts a lambertian directional panel light source, which consists of a solid wavelength conversion element 1 on a solid state light source 6 .
  • the light source 6 may be light emitting diode with an active region of a pn junction, single quantum well, multiple quantum wells, single heterojunction or double heterojunction; an organic light emitting diode, an inorganic light emitting diode, an edge emitter light emitting diode, a vertical cavity surface emitting laser, or a laser diode.
  • Electrical interconnect means 2 and 4 including but not limited to, wires, transparent conductive oxides (evaporative and spin-on), thick film conductive pastes, patterned evaporative metals, and conductive epoxies, are positioned on either side of the solid state light source 6 to drive the solid state light source 6 to emit light.
  • the wavelength conversion element 1 is on one surface of the solid state light source 6 .
  • a substantially reflective layer 5 covers the opposite surface of the solid state light source 6 from the wavelength conversion element 1 .
  • the light source 6 is shown as multiple elements and the total emitting area of these elements is much less than the cross-sectional area of the wavelength conversion element 1 to which the light source elements 6 are mounted.
  • the wavelength conversion element is formed from wavelength conversion materials.
  • the wavelength conversion materials absorb light in a first wavelength range and emit light in a second wavelength range, where the light of a second wavelength range has longer wavelengths than the light of a first wavelength range.
  • the wavelength conversion materials may be, for example, phosphor materials or quantum dot materials.
  • the wavelength conversion element may be formed from two or more different wavelength conversion materials.
  • the wavelength conversion element may also include optically inert host materials for the wavelength conversion materials of phosphors or quantum dots. Any optically inert host material must be transparent to ultraviolet and visible light.
  • Phosphor materials are typically optical inorganic materials doped with ions of lanthanide (rare earth) elements or, alternatively, ions such as chromium, titanium, vanadium, cobalt or neodymium.
  • the lanthanide elements are lanthanum, cerium, praseodymium, neodymium, promethium, samarium, europium, gadolinium, terbium, dysprosium, holmium, erbium, thulium, ytterbium and lutetium.
  • Optical inorganic materials include, but are not limited to, sapphire (Al.sub.2(.sub.3), gallium arsenide (GaAs), beryllium aluminum oxide (BeAl.sub.2O.sub.4), magnesium fluoride (MgF.sub.2), indium phosphide (InP), gallium phosphide (GaP), yttrium aluminum garnet (YAG or Y.sub.3Al.sub.5O.sub.12), terbium-containing garnet, yttrium-aluminum-lanthanide oxide compounds, yttrium-aluminum-lanthanide-gallium oxide compounds, yttrium oxide (Y.sub.2O.sub.3), calcium or strontium or barium halophosphates (Ca,Sr,Ba).sub.5(PO.sub.4).sub.3(Cl,F), the compound CeMgAl.sub.11O.sub.19,
  • An exemplary red emitting phosphor is Y.sub.2O.sub.3:Eu.sup.3+.
  • An exemplary yellow emitting phosphor is YAG:Ce.sup.3+.
  • Exemplary green emitting phosphors include CeMgAl.sub.11O.sub.19:Tb.sup.3+, ((lanthanide)PO.sub.4:Ce.sup.3+,Tb.sup.3+) and GdMgB.sub.5O.sub.10:Ce.sup.3+,Tb.sup.3+.
  • Exemplary blue emitting phosphors are BaMgAl.sub.10O.sub.17:Eu.sup.2+ and (Sr,Ba,Ca).sub.5(PO.sub.4).sub.3Cl:Eu.sup.2+.
  • exemplary optical inorganic materials include yttrium aluminum garnet (YAG or Y.sub.3Al.sub.5O.sub.12), terbium-containing garnet, yttrium oxide (Y.sub.2O.sub.3), YVO.sub.4, SrGa.sub.2S.sub.4, (Sr,Mg,Ca,Ba)(Ga,Al,In).sub.2S.sub.4, SrS, and nitridosilicate.
  • YAG or Y.sub.3Al.sub.5O.sub.12 terbium-containing garnet
  • yttrium oxide Y.sub.2O.sub.3
  • YVO.sub.4 SrGa.sub.2S.sub.4, (Sr,Mg,Ca,Ba)(Ga,Al,In).sub.2S.sub.4, SrS, and nitridosilicate.
  • Exemplary phosphors for LED excitation in the 400-450 nm wavelength region include YAG:Ce.sup.3+, YAG:Ho.sup.3+, YAG:Pr.sup.3+, YAG:Tb.sup.3+, YAG:Cr.sup.3+, YAG:Cr.sup.4+, SrGa.sub.2S.sub.4:Eu.sup.2+, SrGa.sub.2S.sub.4:Ce.sup.3+, SrS:Eu.sup.2+ and nitridosilicates doped with Eu.sup.2+.
  • Luminescent materials based on ZnO and its alloys with Mg, Cd, Al are preferred. More preferred are doped luminescent materials of ZnO and its alloys with Mg, Cd, Al which contain rare earths, Bi, Li, Zn, as well as other luminescent dopants. Even more preferred is the use of luminescent elements which are also electrically conductive, such a rare earth doped AlZnO, InZnO, GaZnO, InGaZnO, and other transparent conductive oxides of indium, tin, zinc, cadmium, aluminum, and gallium.
  • Quantum dot materials are small particles of inorganic semiconductors having particle sizes less than about 30 nanometers.
  • Exemplary quantum dot materials include, but are not limited to, small particles of CdS, CdSe, ZnSe, InAs, GaAs and GaN.
  • Quantum dot materials can absorb light at first wavelength and then emit light at a second wavelength, where the second wavelength is longer than the first wavelength. The wavelength of the emitted light depends on the particle size, the particle surface properties, and the inorganic semiconductor material.
  • the transparent and optically inert host materials are especially useful to spatially separate quantum dots.
  • Host materials include polymer materials and inorganic materials.
  • the polymer materials include, but are not limited to, acrylates, polystyrene, polycarbonate, fluoroacrylates, chlorofluoroacrylates, perfluoroacrylates, fluorophosphinate polymers, fluorinated polyimides, polytetrafluoroethylene, fluorosilicones, sol-gels, epoxies, thermoplastics, thermosetting plastics and silicones.
  • Fluorinated polymers are especially useful at ultraviolet wavelengths less than 400 nanometers and infrared wavelengths greater than 700 nanometers owing to their low light absorption in those wavelength ranges.
  • Exemplary inorganic materials include, but are not limited to, silicon dioxide, optical glasses and chalcogenide glasses.
  • the solid state light source is typically a light emitting diode.
  • Light emitting diodes can be fabricated by epitaxially growing multiple layers of semiconductors on a growth substrate.
  • Inorganic light-emitting diodes can be fabricated from GaN-based semiconductor materials containing gallium nitride (GaN), aluminum nitride (AlN), aluminum gallium nitride (AlGaN), indium nitride (InN), indium gallium nitride (InGaN) and aluminum indium gallium nitride (AlInGaN).
  • LEDs include, for example, aluminum gallium indium phosphide (AlGaInP), gallium arsenide (GaAs), indium gallium arsenide (InGaAs), indium gallium arsenide phosphide (InGaAsP), diamond or zinc oxide (ZnO).
  • AlGaInP aluminum gallium indium phosphide
  • GaAs gallium arsenide
  • InGaAs indium gallium arsenide
  • InGaAsP indium gallium arsenide phosphide
  • ZnO zinc oxide
  • GaN-based LEDs that emit light in the ultraviolet, blue, cyan and green regions of the optical spectrum.
  • the growth substrate for GaN-based LEDs is typically sapphire (Al.sub.2O.sub.3), silicon carbide (SiC), bulk gallium nitride or bulk aluminum nitride.
  • a solid state light source can be a blue or ultraviolet emitting LED used in conjunction with one or more wavelength conversion materials such as phosphors or quantum dots that convert at least some of the blue or ultraviolet light to other wavelengths.
  • a yellow phosphor with a blue emitting LED can result in a white light source.
  • the yellow phosphor converts a portion of the blue light into yellow light.
  • Another portion of the blue light bypasses the yellow phosphor.
  • the combination of blue and yellow light appears white to the human eye.
  • combining a green phosphor and a red phosphor with a blue LED can also form a white light source.
  • the green phosphor converts a first portion of the blue light into green light.
  • the red phosphor converts a second portion of the blue light into green light.
  • a third portion of the blue light bypasses the green and red phosphors.
  • the combination of blue, green and red light appears white to the human eye.
  • a third way to produce a white light source is to combine blue, green and red phosphors with an ultraviolet LED.
  • the blue, green and red phosphors convert portions of the ultraviolet light into, respectively, blue, green and red light.
  • the combination of the blue, green and red light appears white to the human eye.
  • a power source (not shown) supplies current through the electrical interconnect means 2 and 4 to the solid state light source 6 , which emits light of a first wavelength.
  • Electrical interconnect means 2 and 4 are transmissive to light of the first wavelength emitted by the solid state light source 6 .
  • the first wavelength light will be emitted through the electrical interconnect means 2 and then through the wavelength conversion element 1 ; or through the electrical interconnect means 4 , reflected from the reflective layer 5 , through the solid state light source 6 , through the electrical interconnect means 2 through and then through the wavelength conversion element 1 .
  • the wavelength conversion element 1 will convert some of the light of a first wavelength into light of a second wavelength.
  • the second wavelength is different from the first wavelength.
  • the light of the second wavelength will be transmitted out of the wavelength conversion element 1 .
  • the remainder of the unconverted light of the first wavelength will also be transmitted out of the wavelength conversion element 1 with the light of the second wavelength.
  • the combination of light of the first wavelength with light of the second wavelength provides a broader emission spectrum of light from the combination of a solid state light source 6 and a solid wavelength conversion element 1 .
  • the combination light is lambertian and directional from the panel light source.
  • Electrical interconnect means 6 is positioned between the solid state light source 6 and the solid wavelength conversion element 1 .
  • the solid wavelength conversion element 1 may be electrically conductive and able to deliver current to the solid state light source 6 .
  • the solid state light source 6 may be a plurality of solid state light sources. This plurality of solid state light sources can be arranged co-planar or vertically for the panel light source. A single solid wavelength conversion element 1 or a plurality of solid wavelength conversion elements can be used with the plurality of solid state light sources.
  • a barrier layer 3 may be used between and parallel to the plurality of solid state light sources between the electrical interconnect means 2 and 4 to isolate interconnect means 2 and 4 .
  • This barrier layer 3 may be used to form environmental and electrically insulative protection for the solid state light sources 6 .
  • the barrier layer includes, but is not limited to, sol-gels, glasses, epoxies and frits.
  • Spectrum, angular, and polarization means such as dichroic films, microoptics, and reflective polarizers, either on or in proximity to the panel light source, may modify the output distribution of the panel light source of FIG. 1 .
  • FIG. 2 depicts a substantially isotropic panel light source which consists of a solid state light source 12 between two solid wavelength conversion elements 8 and 9 .
  • the substantially isotropic panel light source has a first solid wavelength conversion element 8 , a first electrical interconnect means 10 , a solid state light source 12 , a second electrical interconnect means 11 , and a second solid wavelength conversion element 9 .
  • the first solid wavelength conversion element 8 and the second solid wavelength conversion element 10 are formed of the same wavelength conversion material and both convert light of a first wavelength onto light of the same second wavelength.
  • the light source 12 in FIG. 2 is shown as multiple elements and the total emitting area of these elements is much less than the cross-sectional area of either of the wavelength conversion elements 8 and 9 between which the light source elements 12 are mounted.
  • a power source (not shown) supplies current through the electrical interconnect means 10 and 11 to the solid state light source 12 , which emits light of a first wavelength. Electrical interconnect means 10 and 11 are transmissive to light of the first wavelength emitted by the solid state light source 12 .
  • the first wavelength light will be emitted from the solid state light source 12 through the electrical interconnect means 10 to the wavelength conversion element 9 .
  • the first wavelength light will also be emitted from the solid state light source 12 through the electrical interconnect means 10 to the wavelength conversion element 8 .
  • Light 15 and 14 is emitted from both sides of the planar light source of FIG. 2 .
  • the first wavelength light will be emitted from the solid state light source 12 through the electrical interconnect means 11 to the wavelength conversion element 9 .
  • the wavelength conversion element 9 will convert some of the light of a first wavelength into light of a second wavelength.
  • the second wavelength is different from the first wavelength.
  • the light of the second wavelength will be transmitted out of the wavelength conversion element 9 .
  • the remainder of the unconverted light of the first wavelength will also be transmitted out of the wavelength conversion element 9 with the light of the second wavelength.
  • the combination of light of the first wavelength with light of the second wavelength provides a broader emission spectrum of light 15 from the combination of a solid state light source 12 and a solid wavelength conversion element 9 .
  • the first wavelength light will be emitted from the solid state light source 12 through the electrical interconnect means 10 to the wavelength conversion element 8 .
  • the wavelength conversion element 8 will convert some of the light of a first wavelength into light of a second wavelength.
  • the second wavelength is different from the first wavelength.
  • the light of the second wavelength will be transmitted out of the wavelength conversion element 8 .
  • the remainder of the unconverted light of the first wavelength will also be transmitted out of the wavelength conversion element 9 with the light of the second wavelength.
  • the combination of light of the first wavelength with light of the second wavelength provides a broader emission spectrum of light 14 from the combination of a solid state light source 12 and a solid wavelength conversion element 8 .
  • Light is emitted from both sides of the planar light source of FIG. 2 .
  • the combination light from both sides of the planar light source is substantially isotropic from the panel light source. If the output from each side is lambertian, then the light source is an isotropic emitter. If a dichroic, microoptic, polarizer, or photonic crystal structure is added to the luminescent element, the light source will be a directional emitter from one or both sides.
  • the solid state light source 12 may be a plurality of solid state light sources. This plurality of solid state light sources can be arranged co-planar or vertically for the panel light source. A single solid wavelength conversion element 9 or 8 or a plurality of solid wavelength conversion elements can be used with the plurality of solid state light sources.
  • a barrier layer 13 may be used between and parallel to the plurality of solid state light sources between the electrical interconnect means 11 and 10 to isolate interconnect means 11 and 10 .
  • This barrier layer 13 may be used to form environmental and electrically insulative protection for the solid state light sources 12 .
  • the barrier layer includes, but is not limited to, sol-gels, glasses, epoxies and frits.
  • intrinsically electrically conductive solid wavelength conversion elements 8 and/or 9 of FIG. 2 may be used alternately, or in combination with one or both of interconnect means 10 and/or 11 , to deliver power to solid state lighting source 12 .
  • Spectrum, angular, and polarization means such as dichroic films, microoptics, and reflective polarizers, either on or in proximity to the panel light source, may modify the output distribution of the panel light source of FIG. 2 .
  • FIG. 3 depicts a lighting fixture that reflects and directs the light from a directional panel light source 16 substantially down a vertical surface 17 to form a wall washing effect.
  • the directional panel light 16 is positioned on the vertical surface 17 .
  • a curved reflector 18 is spaced from the directional panel light 16 and the vertical surface 17 , starting roughly parallel to the directional panel light 16 and curving outward and down from the directional panel light source.
  • the curved reflector will reflect and direct light emitted from the directional panel light source down the vertical surface.
  • the vertical surface 17 can be a mount or a wall.
  • the curved reflector can be supported by the vertical surface.
  • Airflow 19 is between the vertical surface 17 and the curved reflector 16 past the directional light source 16 and exits through at least one opening in reflector 18 .
  • the airflow is via induced draft effects created by the heat generated by the directional light source 16 and the induced draft structure created by vertical surface 17 and curved reflector 16 .
  • the airflow cools the directional light source 16 .
  • Fixture design creates induced draft cooling channels around or in proximity to the panel light.
  • the thermally conductive luminescent element not only converts at least a portion of the light emitted from the solid state light source into a broader emission spectrum, but it also serves to diffuse/distribute the light generated as well as provide a cooling path for itself and the solid state light source to the surrounding ambient via convection off the surface of the thermally conductive luminescent element.
  • Baffling can be optionally used to prevent light leakage through the opening in the curved reflector 18 .
  • the directional panel light source 16 can emit a portion of light through the opening in the curved reflector 18 to provide up lighting.
  • thermal conduction and additional cooling means such as thermoelectric coolers, heatsinks and heat pipes, can be added to directional panel light source 16 to further cool the directional panel light 16 .
  • the curved reflector can extend upward to direct the light from the light source in an up direction to form a wall washing effect.
  • the reflector can be straight or another geometric shape or non-geometric shape. The only requirement is that the reflector be angled away from the directional panel light source on the vertical surface of the wall or mount.
  • FIG. 4 depicts a light fixture having a substantially isotropic panel light source 20 between two reflectors 21 and 22 .
  • a first support member 25 supports and separates the first reflector 22 from the isotropic panel light source 20 .
  • a second support member 26 supports and separates the isotropic panel light source 20 from a second reflector 21 .
  • the first and second reflectors are curved reflectors, which curve down and outward from the light source. The curves of the first and second reflectors are opposite and mirror images of the other.
  • Reflectors 21 and 22 form a trough reflector for the light emitted by substantially isotropic panel light source 20 to be reflected and directed downward.
  • Reflectors 21 and 22 also form a cooling means allowing airflow 24 and 23 .
  • Airflow 24 is adjacent to the curved first reflector 22 past the isotropic light source 20 and exits past the first support member 25 .
  • Airflow 23 is adjacent to the curved second reflector 21 past the isotropic light source 20 and exits past the second support member 26 .
  • the airflow 24 and 23 are via induced draft effects created by the heat generated by the directional light fixture 21 and the control of airflow by curved first reflector 22 and curved second reflector 21 .
  • induced draft cooling structures can be used to increase the convective cooling coefficient on a heated surface by over an order of magnitude. This approach has typically been used in electronic enclosures such as computer cabinets where a fan is not desired.
  • curved first reflector 22 and curved second reflector 21 can allow for enhanced cooling of isotropic light source 20 as well as be used as a reflector of the light generated by isotropic light source 20 .
  • the airflow cools the isotropic light source 20 on both sides.
  • the isotropic panel light source 20 can emit a portion of light past the first and second support members 25 and 26 to provide up lighting.
  • FIG. 5 depicts a curved panel light source 27 for a light fixture.
  • Light 28 may be emitted on the concave curve of the panel light source 27 and/or light 29 may be emitted on the convex curve of the panel light source 27 .
  • Light 28 and 29 may be emitted from both sides of the panel light source 27 .
  • the panel light source 27 may be lambertian or isotropic. Ceramic and glass based thermally conductive luminescent elements can be easily manufactured in a non-flat shape for curved panel light source 27 .
  • FIG. 6 depicts the use of magnetic elements 36 and 35 to make electrical connection between fixture contacts 33 and 34 and light source contacts 31 and 32 on panel light source 30 for a light fixture.
  • Fixture contacts 33 and 34 are stationary and fixed in position.
  • Light source contacts 31 and 32 and attached panel light source 30 are movable.
  • the panel light source 30 has a small mass and rigid construction.
  • First magnetic element 36 will attract first light source contact 32 until the first light source contact 32 makes physical contact with first fixture contact 34 and stops, remaining in physical contact and electrical connection with first fixture contact 34 .
  • Second magnetic element 35 will attract second light source contact 31 until the second light source contact 31 makes physical contact with second fixture contact 33 and stops, remaining in physical contact and electrical connection with second fixture contact 33 .
  • the first and second magnetic elements 36 and 35 serve to hold the panel light source in position and hold the light source contacts 32 and 31 to the fixture contacts 34 and 31 .
  • FIG. 7 depicts a panel light source 37 with an energy storage means 38 and solar cell conversion means 39 for a light fixture.
  • Sunlight or external light will be incident upon the solar cell conversion means 39 which will convert the sunlight or external light into electricity.
  • the solar cell conversion means 39 can be a standard silicon-based solar cell.
  • the electricity will flow from the solar cell conversion means 39 to the adjacent energy storage means 38 .
  • the energy storage means 38 such as a battery or capacitor will store the electricity.
  • the electricity will flow from the energy storage means 38 to the adjacent panel light source 37 which will emit light.
  • the rigid nature of the thermally conductive luminescent element within the panel light source 37 provides support and cooling means for both the energy storage means 38 and solar conversion element 39 . Using this configuration, a panel light source can be constructed which does not required any external power input other than incident solar energy.
  • Power conditioning and power converting means enable direct connection to residential and commercial DC, pulsed, or AC power sources directly on the at least one thermally conductive luminescent element.
  • the at least one thermally conductive luminescent element becomes the substrate to which the electronic components are mounted and cooled.
  • the electronic components may be active and passive electronic devices.
  • Thermal and light sensors can control and protect the large area panel light source. Anti-parallel interconnects between multiple solid state light sources can be used for direct AC excitation of the panel lights.
  • Thermally conductive structures within the fixture provide additional cooling to the panel light via attachment to edges or at least some portion of the panel light source.
  • a number of optical designs take advantage of the direct view capability of the at least one panel light source.
  • the size of the panel lights are based on allowable surface brightness, required surface cooling area (which is related to the amount of available airflow and/or conduction cooling), and desired total lumens of output. More preferably, isotropic and directive panel lights have surface areas greater than 1 square inch. Even more preferably, directive and isotropic panel lights with surface brightness of between 1000 and 10000 ftl have surface areas greater than 1 sq inch.

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Abstract

Reflector designs for a large area panel light source create induced draft cooling means adjacent to the panel light source. The panel light source has a wavelength conversion element on a solid state light source for emitting light of a first and second wavelength to form a broader emission spectrum of light from the panel light source.

Description

    REFERENCE TO PRIOR APPLICATION
  • This application is a continuation of U.S. application Ser. No. 12/380,439 filed Feb. 27, 2009 which claims the benefit of U.S. Provisional Patent Application Ser. No. 61/067,934, which was filed on Mar. 1, 2008, all commonly assigned as the present application and herein incorporated by reference.
  • BACKGROUND OF THE INVENTION
  • Panel light fixtures are typically designed to take into account the light distribution, intensity, and thermal characteristics of the source. Panel light fixtures have historically been incandescent light bulbs or fluorescent light bulbs. A wide range of reflectors and optical devices have been developed over the years to generate a particular output distribution and/or deliver maximum efficiency for an incandescent light bulb.
  • Fluorescent light bulbs work differently than incandescent light bulbs. An incandescent light has electricity pass through a filament, which emits light. A fluorescent light is a gas discharge light where electricity excites mercury vapor, which emits ultraviolet light. The ultraviolet light strikes phosphors in the fluorescent light, which in turn emit visible light. Fluorescent light bulbs have the added need of ballasts or other electronic methods of converting the available power into a useful form. Fluorescent light bulbs use different reflectors and different optical devices from an incandescent light bulb to achieve a similar result of a particular output distribution and/or maximum efficiency for a fluorescent bulb.
  • A new light source based on a distributed array of light emitting diodes (LEDs) within a solid luminescent element has been disclosed by Zimmerman et al. in U.S. Pat. No. 7,285,791, commonly assigned as the present application and herein incorporated by reference. Electricity passes through an active region of semiconductor material to emit light in a light emitting diode. The solid luminescent element is a wavelength conversion chip. US Published Patent Applications 20080042153 and 20080149166, commonly assigned as the present application and herein incorporated by reference, teach wavelength conversion chips for use with light emitting diodes. A light emitting diode, such as those in US Published Patent Applications 20080182353 and 20080258165, commonly assigned as the present application and herein incorporated by reference, will emit light of a first wavelength and that first wavelength light will be converted into light of a second wavelength by the wavelength conversion chip.
  • A panel light source can be made in a variety of shapes and output distributions ranging from directional to isotropic using thermally conductive luminescent elements. Power conditioning and control electronics can also be incorporated into the bulb itself because the thermally conductive luminescent element is a solid. A variety of means can also be used to connect to the available power source. In addition, the distributed nature of the sources allows for cooling via natural convection means as long as sufficient airflow is allowed by the light fixture eliminating or greatly reducing the need for additional heatsinking means. It also provides a substrate for integration of solar and energy storage means.
  • In most cases, existing LED light sources are based on high intensity point sources, which required extensive thermal heatsinking to operate and distribute the heat generated in the point sources over a large area. The localized nature of these high intensity point sources dictate that large heatsinks must be used especially in the case of natural convection cooled applications. While 100 lumen/watt performance levels have been demonstrated for bulbs outside the fixture, performance can degrade as much as 50% once this type of solid state light source is used inside the fixture due to airflow restriction and lack of ventilation. This is especially true for the cases where fixtures are surrounded by insulation, as is the case for most residential applications. The heatsinks typically required to cool these high intensity point sources are both heavy and present a hazard especially in overhead lighting applications, where a falling light could severely injure a passerby. Additionally, the fact that the source is so localized means that some type of distribution or diffusing means must be used to deal with the brightness level generated. This is required from an aesthetic and safety point of view. The small nature of the source means that imaging of the source on the retina of the eye is of great concern. This is especially true for UV and blue sources due to additive photochemical effects. In general, brightness levels greater than 5,000 to 10,000 FtL are uncomfortable for direct viewing especially at night. High intensity point sources can be several orders of magnitude higher brightness than what can be comfortably viewed directly. Lastly, the localized nature of the heat source generated by these high intensity point sources dictate that high efficiency heat sink designs must be used which are more susceptible to dust and other environmental effects especially in outside applications. This dictates periodic maintenance of the light sources, which is impractical in many cases. The need therefore exists for improved fixtures that can provide directional control, allow cooling of the sources, and safely illuminate our homes and businesses. Panel lights based on thermally conductivity luminescent elements are disclosed which enable new types of light fixtures and are ideally suited for general illumination applications.
  • SUMMARY OF THE INVENTION
  • According to the present invention, a solid state light source, such as a light emitting diode, an organic light emitting diode, an inorganic light emitting diode, an edge emitter light emitting diode, a vertical cavity surface emitting laser, or a laser diode, and a thermally conductive luminescent element, such as a wavelength conversion element or a phosphor element, with a reflector means will form a panel light fixture. The solid state light source is typically a point light source of a single wavelength but the panel light fixture transmits light of a broader emission spectrum over a large area.
  • This disclosure covers a variety of reflector designs for panel light sources and configuration of panel lights containing thermally conductive luminescent elements. The panel light sources disclosed in this invention consist of at least one thermally conductive luminescent element to which at least one solid state light source is attached, and an interconnect means. The at least one thermally conductive luminescent element not only converts at least a portion of the light emitted from the at least one solid state light source into a broader emission spectrum, but it also serves to diffuse/distribute the light generated as well as provide a cooling path for itself and the at least one solid state light source to the surrounding ambient via convection off the surface of the at least one thermally conductive luminescent element. More preferably, the at least one thermally conductive luminescent element enables the formation of panel lights which can be directly viewed with human eye without the need for further diffusion or protective means.
  • The use of freestanding epitaxial chips as the solid state light sources is preferred for both directional and isotropic panel lights. The combination of the panel lights and solar conversion and/or energy storage means is a preferred embodiment of this invention. In this manner, compact light sources can be created which do not require external power sources.
  • The use of at least one of these panel light sources in a fixture is a preferred embodiment of this invention. Both directional (lambertian and narrower angular distribution) and isotropic sources are disclosed in a variety of fixtures. Fixture design can create induced draft cooling channels around or in proximity to the panel light
  • Other aspects of the invention will become apparent from the following more detailed description, taken in conjunction with the accompanying drawings.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 is a side view of a lambertian directional panel light source of the present invention.
  • FIG. 2 is a side view of an isotropic panel light source of the present invention.
  • FIG. 3 is a side view of a wall washer based on a lambertian panel light with induced draft cooling flow of the present invention.
  • FIG. 4 is a side view of a trough light with an isotropic linear panel light source and flow through cooling of the present invention.
  • FIG. 5 is a side view of a light panel for improved reflector design of the present invention.
  • FIG. 6 is a side view of a magnetic connector for lambertian panels for ceiling lighting of the present invention.
  • FIG. 7 is a side view of a panel light source with an energy storage means and solar cell conversion means for a light fixture of the present invention.
  • DETAILED DESCRIPTION OF DRAWINGS
  • FIG. 1 depicts a lambertian directional panel light source, which consists of a solid wavelength conversion element 1 on a solid state light source 6. The light source 6 may be light emitting diode with an active region of a pn junction, single quantum well, multiple quantum wells, single heterojunction or double heterojunction; an organic light emitting diode, an inorganic light emitting diode, an edge emitter light emitting diode, a vertical cavity surface emitting laser, or a laser diode. Electrical interconnect means 2 and 4, including but not limited to, wires, transparent conductive oxides (evaporative and spin-on), thick film conductive pastes, patterned evaporative metals, and conductive epoxies, are positioned on either side of the solid state light source 6 to drive the solid state light source 6 to emit light. The wavelength conversion element 1 is on one surface of the solid state light source 6. A substantially reflective layer 5 covers the opposite surface of the solid state light source 6 from the wavelength conversion element 1. The light source 6 is shown as multiple elements and the total emitting area of these elements is much less than the cross-sectional area of the wavelength conversion element 1 to which the light source elements 6 are mounted.
  • The wavelength conversion element is formed from wavelength conversion materials. The wavelength conversion materials absorb light in a first wavelength range and emit light in a second wavelength range, where the light of a second wavelength range has longer wavelengths than the light of a first wavelength range. The wavelength conversion materials may be, for example, phosphor materials or quantum dot materials. The wavelength conversion element may be formed from two or more different wavelength conversion materials. The wavelength conversion element may also include optically inert host materials for the wavelength conversion materials of phosphors or quantum dots. Any optically inert host material must be transparent to ultraviolet and visible light.
  • Phosphor materials are typically optical inorganic materials doped with ions of lanthanide (rare earth) elements or, alternatively, ions such as chromium, titanium, vanadium, cobalt or neodymium. The lanthanide elements are lanthanum, cerium, praseodymium, neodymium, promethium, samarium, europium, gadolinium, terbium, dysprosium, holmium, erbium, thulium, ytterbium and lutetium. Optical inorganic materials include, but are not limited to, sapphire (Al.sub.2(.sub.3), gallium arsenide (GaAs), beryllium aluminum oxide (BeAl.sub.2O.sub.4), magnesium fluoride (MgF.sub.2), indium phosphide (InP), gallium phosphide (GaP), yttrium aluminum garnet (YAG or Y.sub.3Al.sub.5O.sub.12), terbium-containing garnet, yttrium-aluminum-lanthanide oxide compounds, yttrium-aluminum-lanthanide-gallium oxide compounds, yttrium oxide (Y.sub.2O.sub.3), calcium or strontium or barium halophosphates (Ca,Sr,Ba).sub.5(PO.sub.4).sub.3(Cl,F), the compound CeMgAl.sub.11O.sub.19, lanthanum phosphate (LaPO.sub.4), lanthanide pentaborate materials alanthanide)(Mg,Zn)B.sub.5O.sub.10), the compound BaMgAl.sub.10O.sub.17, the compound SrGa.sub.2S.sub.4, the compounds (Sr,Mg,Ca,Ba)(Ga,Al,In).sub.2S.sub.4, the compound SrS, the compound ZnS and nitridosilicate. There are several exemplary phosphors that can be excited at 250 nm or thereabouts. An exemplary red emitting phosphor is Y.sub.2O.sub.3:Eu.sup.3+. An exemplary yellow emitting phosphor is YAG:Ce.sup.3+. Exemplary green emitting phosphors include CeMgAl.sub.11O.sub.19:Tb.sup.3+, ((lanthanide)PO.sub.4:Ce.sup.3+,Tb.sup.3+) and GdMgB.sub.5O.sub.10:Ce.sup.3+,Tb.sup.3+. Exemplary blue emitting phosphors are BaMgAl.sub.10O.sub.17:Eu.sup.2+ and (Sr,Ba,Ca).sub.5(PO.sub.4).sub.3Cl:Eu.sup.2+. For longer wavelength LED excitation in the 400-450 nm wavelength region or thereabouts, exemplary optical inorganic materials include yttrium aluminum garnet (YAG or Y.sub.3Al.sub.5O.sub.12), terbium-containing garnet, yttrium oxide (Y.sub.2O.sub.3), YVO.sub.4, SrGa.sub.2S.sub.4, (Sr,Mg,Ca,Ba)(Ga,Al,In).sub.2S.sub.4, SrS, and nitridosilicate. Exemplary phosphors for LED excitation in the 400-450 nm wavelength region include YAG:Ce.sup.3+, YAG:Ho.sup.3+, YAG:Pr.sup.3+, YAG:Tb.sup.3+, YAG:Cr.sup.3+, YAG:Cr.sup.4+, SrGa.sub.2S.sub.4:Eu.sup.2+, SrGa.sub.2S.sub.4:Ce.sup.3+, SrS:Eu.sup.2+ and nitridosilicates doped with Eu.sup.2+.
  • Luminescent materials based on ZnO and its alloys with Mg, Cd, Al are preferred. More preferred are doped luminescent materials of ZnO and its alloys with Mg, Cd, Al which contain rare earths, Bi, Li, Zn, as well as other luminescent dopants. Even more preferred is the use of luminescent elements which are also electrically conductive, such a rare earth doped AlZnO, InZnO, GaZnO, InGaZnO, and other transparent conductive oxides of indium, tin, zinc, cadmium, aluminum, and gallium. The use of these transparent conductive oxides, oxynitrides and nitrides which are also luminescent as both interconnect means and/or wavelength conversion means is also an embodiment of this invention. Other phosphor materials not listed here are also within the scope of this invention.
  • Quantum dot materials are small particles of inorganic semiconductors having particle sizes less than about 30 nanometers. Exemplary quantum dot materials include, but are not limited to, small particles of CdS, CdSe, ZnSe, InAs, GaAs and GaN. Quantum dot materials can absorb light at first wavelength and then emit light at a second wavelength, where the second wavelength is longer than the first wavelength. The wavelength of the emitted light depends on the particle size, the particle surface properties, and the inorganic semiconductor material.
  • The transparent and optically inert host materials are especially useful to spatially separate quantum dots. Host materials include polymer materials and inorganic materials. The polymer materials include, but are not limited to, acrylates, polystyrene, polycarbonate, fluoroacrylates, chlorofluoroacrylates, perfluoroacrylates, fluorophosphinate polymers, fluorinated polyimides, polytetrafluoroethylene, fluorosilicones, sol-gels, epoxies, thermoplastics, thermosetting plastics and silicones. Fluorinated polymers are especially useful at ultraviolet wavelengths less than 400 nanometers and infrared wavelengths greater than 700 nanometers owing to their low light absorption in those wavelength ranges. Exemplary inorganic materials include, but are not limited to, silicon dioxide, optical glasses and chalcogenide glasses.
  • The solid state light source is typically a light emitting diode. Light emitting diodes (LEDs) can be fabricated by epitaxially growing multiple layers of semiconductors on a growth substrate. Inorganic light-emitting diodes can be fabricated from GaN-based semiconductor materials containing gallium nitride (GaN), aluminum nitride (AlN), aluminum gallium nitride (AlGaN), indium nitride (InN), indium gallium nitride (InGaN) and aluminum indium gallium nitride (AlInGaN). Other appropriate materials for LEDs include, for example, aluminum gallium indium phosphide (AlGaInP), gallium arsenide (GaAs), indium gallium arsenide (InGaAs), indium gallium arsenide phosphide (InGaAsP), diamond or zinc oxide (ZnO).
  • Especially important LEDs for this invention are GaN-based LEDs that emit light in the ultraviolet, blue, cyan and green regions of the optical spectrum. The growth substrate for GaN-based LEDs is typically sapphire (Al.sub.2O.sub.3), silicon carbide (SiC), bulk gallium nitride or bulk aluminum nitride.
  • A solid state light source can be a blue or ultraviolet emitting LED used in conjunction with one or more wavelength conversion materials such as phosphors or quantum dots that convert at least some of the blue or ultraviolet light to other wavelengths. For example, combining a yellow phosphor with a blue emitting LED can result in a white light source. The yellow phosphor converts a portion of the blue light into yellow light. Another portion of the blue light bypasses the yellow phosphor. The combination of blue and yellow light appears white to the human eye. Alternatively, combining a green phosphor and a red phosphor with a blue LED can also form a white light source. The green phosphor converts a first portion of the blue light into green light. The red phosphor converts a second portion of the blue light into green light. A third portion of the blue light bypasses the green and red phosphors. The combination of blue, green and red light appears white to the human eye. A third way to produce a white light source is to combine blue, green and red phosphors with an ultraviolet LED. The blue, green and red phosphors convert portions of the ultraviolet light into, respectively, blue, green and red light. The combination of the blue, green and red light appears white to the human eye.
  • A power source (not shown) supplies current through the electrical interconnect means 2 and 4 to the solid state light source 6, which emits light of a first wavelength. Electrical interconnect means 2 and 4 are transmissive to light of the first wavelength emitted by the solid state light source 6. The first wavelength light will be emitted through the electrical interconnect means 2 and then through the wavelength conversion element 1; or through the electrical interconnect means 4, reflected from the reflective layer 5, through the solid state light source 6, through the electrical interconnect means 2 through and then through the wavelength conversion element 1. The wavelength conversion element 1 will convert some of the light of a first wavelength into light of a second wavelength. The second wavelength is different from the first wavelength. The light of the second wavelength will be transmitted out of the wavelength conversion element 1. The remainder of the unconverted light of the first wavelength will also be transmitted out of the wavelength conversion element 1 with the light of the second wavelength. The combination of light of the first wavelength with light of the second wavelength provides a broader emission spectrum of light from the combination of a solid state light source 6 and a solid wavelength conversion element 1. The combination light is lambertian and directional from the panel light source.
  • Electrical interconnect means 6 is positioned between the solid state light source 6 and the solid wavelength conversion element 1. Alternately, the solid wavelength conversion element 1 may be electrically conductive and able to deliver current to the solid state light source 6.
  • The solid state light source 6 may be a plurality of solid state light sources. This plurality of solid state light sources can be arranged co-planar or vertically for the panel light source. A single solid wavelength conversion element 1 or a plurality of solid wavelength conversion elements can be used with the plurality of solid state light sources.
  • A barrier layer 3 may be used between and parallel to the plurality of solid state light sources between the electrical interconnect means 2 and 4 to isolate interconnect means 2 and 4. This barrier layer 3 may be used to form environmental and electrically insulative protection for the solid state light sources 6. The barrier layer includes, but is not limited to, sol-gels, glasses, epoxies and frits.
  • Spectrum, angular, and polarization means such as dichroic films, microoptics, and reflective polarizers, either on or in proximity to the panel light source, may modify the output distribution of the panel light source of FIG. 1.
  • FIG. 2 depicts a substantially isotropic panel light source which consists of a solid state light source 12 between two solid wavelength conversion elements 8 and 9. The substantially isotropic panel light source has a first solid wavelength conversion element 8, a first electrical interconnect means 10, a solid state light source 12, a second electrical interconnect means 11, and a second solid wavelength conversion element 9. The first solid wavelength conversion element 8 and the second solid wavelength conversion element 10 are formed of the same wavelength conversion material and both convert light of a first wavelength onto light of the same second wavelength. As in the FIG. 1 structure, the light source 12 in FIG. 2 is shown as multiple elements and the total emitting area of these elements is much less than the cross-sectional area of either of the wavelength conversion elements 8 and 9 between which the light source elements 12 are mounted.
  • A power source (not shown) supplies current through the electrical interconnect means 10 and 11 to the solid state light source 12, which emits light of a first wavelength. Electrical interconnect means 10 and 11 are transmissive to light of the first wavelength emitted by the solid state light source 12.
  • The first wavelength light will be emitted from the solid state light source 12 through the electrical interconnect means 10 to the wavelength conversion element 9. The first wavelength light will also be emitted from the solid state light source 12 through the electrical interconnect means 10 to the wavelength conversion element 8. Light 15 and 14 is emitted from both sides of the planar light source of FIG. 2.
  • The first wavelength light will be emitted from the solid state light source 12 through the electrical interconnect means 11 to the wavelength conversion element 9. The wavelength conversion element 9 will convert some of the light of a first wavelength into light of a second wavelength. The second wavelength is different from the first wavelength. The light of the second wavelength will be transmitted out of the wavelength conversion element 9. The remainder of the unconverted light of the first wavelength will also be transmitted out of the wavelength conversion element 9 with the light of the second wavelength. The combination of light of the first wavelength with light of the second wavelength provides a broader emission spectrum of light 15 from the combination of a solid state light source 12 and a solid wavelength conversion element 9.
  • At the same time, the first wavelength light will be emitted from the solid state light source 12 through the electrical interconnect means 10 to the wavelength conversion element 8. The wavelength conversion element 8 will convert some of the light of a first wavelength into light of a second wavelength. The second wavelength is different from the first wavelength. The light of the second wavelength will be transmitted out of the wavelength conversion element 8. The remainder of the unconverted light of the first wavelength will also be transmitted out of the wavelength conversion element 9 with the light of the second wavelength. The combination of light of the first wavelength with light of the second wavelength provides a broader emission spectrum of light 14 from the combination of a solid state light source 12 and a solid wavelength conversion element 8.
  • Light is emitted from both sides of the planar light source of FIG. 2. The combination light from both sides of the planar light source is substantially isotropic from the panel light source. If the output from each side is lambertian, then the light source is an isotropic emitter. If a dichroic, microoptic, polarizer, or photonic crystal structure is added to the luminescent element, the light source will be a directional emitter from one or both sides.
  • The solid state light source 12 may be a plurality of solid state light sources. This plurality of solid state light sources can be arranged co-planar or vertically for the panel light source. A single solid wavelength conversion element 9 or 8 or a plurality of solid wavelength conversion elements can be used with the plurality of solid state light sources.
  • A barrier layer 13 may be used between and parallel to the plurality of solid state light sources between the electrical interconnect means 11 and 10 to isolate interconnect means 11 and 10. This barrier layer 13 may be used to form environmental and electrically insulative protection for the solid state light sources 12. The barrier layer includes, but is not limited to, sol-gels, glasses, epoxies and frits.
  • As in FIG. 1, intrinsically electrically conductive solid wavelength conversion elements 8 and/or 9 of FIG. 2 may be used alternately, or in combination with one or both of interconnect means 10 and/or 11, to deliver power to solid state lighting source 12. The use of freestanding epitaxial chips, which emit substantially isotropical light, are a preferred solid state light source.
  • Spectrum, angular, and polarization means such as dichroic films, microoptics, and reflective polarizers, either on or in proximity to the panel light source, may modify the output distribution of the panel light source of FIG. 2.
  • FIG. 3 depicts a lighting fixture that reflects and directs the light from a directional panel light source 16 substantially down a vertical surface 17 to form a wall washing effect. The directional panel light 16 is positioned on the vertical surface 17. A curved reflector 18 is spaced from the directional panel light 16 and the vertical surface 17, starting roughly parallel to the directional panel light 16 and curving outward and down from the directional panel light source. The curved reflector will reflect and direct light emitted from the directional panel light source down the vertical surface. The vertical surface 17 can be a mount or a wall. The curved reflector can be supported by the vertical surface.
  • Airflow 19 is between the vertical surface 17 and the curved reflector 16 past the directional light source 16 and exits through at least one opening in reflector 18. The airflow is via induced draft effects created by the heat generated by the directional light source 16 and the induced draft structure created by vertical surface 17 and curved reflector 16. The airflow cools the directional light source 16. Fixture design creates induced draft cooling channels around or in proximity to the panel light. The thermally conductive luminescent element not only converts at least a portion of the light emitted from the solid state light source into a broader emission spectrum, but it also serves to diffuse/distribute the light generated as well as provide a cooling path for itself and the solid state light source to the surrounding ambient via convection off the surface of the thermally conductive luminescent element.
  • Baffling can be optionally used to prevent light leakage through the opening in the curved reflector 18. Also alternately, the directional panel light source 16 can emit a portion of light through the opening in the curved reflector 18 to provide up lighting.
  • Optionally, thermal conduction and additional cooling means, such as thermoelectric coolers, heatsinks and heat pipes, can be added to directional panel light source 16 to further cool the directional panel light 16.
  • Alternately, the curved reflector can extend upward to direct the light from the light source in an up direction to form a wall washing effect. Also, alternately, the reflector can be straight or another geometric shape or non-geometric shape. The only requirement is that the reflector be angled away from the directional panel light source on the vertical surface of the wall or mount.
  • FIG. 4 depicts a light fixture having a substantially isotropic panel light source 20 between two reflectors 21 and 22. A first support member 25 supports and separates the first reflector 22 from the isotropic panel light source 20. A second support member 26 supports and separates the isotropic panel light source 20 from a second reflector 21. The first and second reflectors are curved reflectors, which curve down and outward from the light source. The curves of the first and second reflectors are opposite and mirror images of the other. Reflectors 21 and 22 form a trough reflector for the light emitted by substantially isotropic panel light source 20 to be reflected and directed downward.
  • Reflectors 21 and 22 also form a cooling means allowing airflow 24 and 23. Airflow 24 is adjacent to the curved first reflector 22 past the isotropic light source 20 and exits past the first support member 25. Airflow 23 is adjacent to the curved second reflector 21 past the isotropic light source 20 and exits past the second support member 26. The airflow 24 and 23 are via induced draft effects created by the heat generated by the directional light fixture 21 and the control of airflow by curved first reflector 22 and curved second reflector 21. As known in the art, induced draft cooling structures can be used to increase the convective cooling coefficient on a heated surface by over an order of magnitude. This approach has typically been used in electronic enclosures such as computer cabinets where a fan is not desired. The proper design of curved first reflector 22 and curved second reflector 21 can allow for enhanced cooling of isotropic light source 20 as well as be used as a reflector of the light generated by isotropic light source 20. The airflow cools the isotropic light source 20 on both sides.
  • Again, baffling can be optionally used to prevent light leakage through the first and second support members 25 and 26. Also alternately, the isotropic panel light source 20 can emit a portion of light past the first and second support members 25 and 26 to provide up lighting.
  • FIG. 5 depicts a curved panel light source 27 for a light fixture. Light 28 may be emitted on the concave curve of the panel light source 27 and/or light 29 may be emitted on the convex curve of the panel light source 27. Light 28 and 29 may be emitted from both sides of the panel light source 27. The panel light source 27 may be lambertian or isotropic. Ceramic and glass based thermally conductive luminescent elements can be easily manufactured in a non-flat shape for curved panel light source 27.
  • FIG. 6 depicts the use of magnetic elements 36 and 35 to make electrical connection between fixture contacts 33 and 34 and light source contacts 31 and 32 on panel light source 30 for a light fixture. Fixture contacts 33 and 34 are stationary and fixed in position. Light source contacts 31 and 32 and attached panel light source 30 are movable. The panel light source 30 has a small mass and rigid construction. First magnetic element 36 will attract first light source contact 32 until the first light source contact 32 makes physical contact with first fixture contact 34 and stops, remaining in physical contact and electrical connection with first fixture contact 34. Second magnetic element 35 will attract second light source contact 31 until the second light source contact 31 makes physical contact with second fixture contact 33 and stops, remaining in physical contact and electrical connection with second fixture contact 33. The first and second magnetic elements 36 and 35 serve to hold the panel light source in position and hold the light source contacts 32 and 31 to the fixture contacts 34 and 31.
  • FIG. 7 depicts a panel light source 37 with an energy storage means 38 and solar cell conversion means 39 for a light fixture. Sunlight or external light will be incident upon the solar cell conversion means 39 which will convert the sunlight or external light into electricity. The solar cell conversion means 39 can be a standard silicon-based solar cell. The electricity will flow from the solar cell conversion means 39 to the adjacent energy storage means 38. The energy storage means 38, such as a battery or capacitor will store the electricity. The electricity will flow from the energy storage means 38 to the adjacent panel light source 37 which will emit light. The rigid nature of the thermally conductive luminescent element within the panel light source 37 provides support and cooling means for both the energy storage means 38 and solar conversion element 39. Using this configuration, a panel light source can be constructed which does not required any external power input other than incident solar energy.
  • Power conditioning and power converting means enable direct connection to residential and commercial DC, pulsed, or AC power sources directly on the at least one thermally conductive luminescent element. In this case, the at least one thermally conductive luminescent element becomes the substrate to which the electronic components are mounted and cooled. The electronic components may be active and passive electronic devices. Thermal and light sensors can control and protect the large area panel light source. Anti-parallel interconnects between multiple solid state light sources can be used for direct AC excitation of the panel lights.
  • Thermally conductive structures within the fixture provide additional cooling to the panel light via attachment to edges or at least some portion of the panel light source. A number of optical designs take advantage of the direct view capability of the at least one panel light source. The size of the panel lights are based on allowable surface brightness, required surface cooling area (which is related to the amount of available airflow and/or conduction cooling), and desired total lumens of output. More preferably, isotropic and directive panel lights have surface areas greater than 1 square inch. Even more preferably, directive and isotropic panel lights with surface brightness of between 1000 and 10000 ftl have surface areas greater than 1 sq inch.
  • While the invention has been described with the inclusion of specific embodiments and examples, it is evident to those skilled in the art that many alternatives, modifications and variations will be evident in light of the foregoing descriptions. Accordingly, the invention is intended to embrace all such alternatives, modifications and variations that fall within the spirit and scope of the appended claims.

Claims (2)

1. A light source for a light fixture comprising:
a solar cell conversion means for converting sunlight or external light into electricity;
an energy storage means, said solar conversion means being on said energy storage means, said energy storage means for storing said electricity from said solar cell conversion means, and
a panel light source, said energy storage means being on said panel light source, said panel light source receiving electricity from said energy storage means and emitting light.
2. The light source for a light fixture of claim 1 wherein said panel light source has at least one solid wavelength conversion element on a solid state light source, such that said solid state light source emits light of a first wavelength through said at least one solid wavelength conversion element, said at least one solid wavelength conversion element converting a portion of said light of a first wavelength into light of a second wavelength, said second wavelength being different from said first wavelength, said light of a first wavelength and said light of a second wavelength being transmitted from said at least one solid wavelength conversion element to form a broader emission spectrum of light from said panel light source.
US14/020,893 2008-03-01 2013-09-08 Fixtures for large area directional and isotropic solid state lighting panels Abandoned US20140146527A1 (en)

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Families Citing this family (156)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CA2592055A1 (en) 2004-12-27 2006-07-06 Quantum Paper, Inc. Addressable and printable emissive display
US9412926B2 (en) 2005-06-10 2016-08-09 Cree, Inc. High power solid-state lamp
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
US9343593B2 (en) 2007-05-31 2016-05-17 Nthdegree Technologies Worldwide Inc Printable composition of a liquid or gel suspension of diodes
US8456393B2 (en) 2007-05-31 2013-06-04 Nthdegree Technologies Worldwide Inc Method of manufacturing a light emitting, photovoltaic or other electronic apparatus and system
US8415879B2 (en) 2007-05-31 2013-04-09 Nthdegree Technologies Worldwide Inc Diode for a printable composition
US9425357B2 (en) 2007-05-31 2016-08-23 Nthdegree Technologies Worldwide Inc. Diode for a printable composition
US9419179B2 (en) 2007-05-31 2016-08-16 Nthdegree Technologies Worldwide Inc Diode for a printable composition
US8846457B2 (en) 2007-05-31 2014-09-30 Nthdegree Technologies Worldwide Inc Printable composition of a liquid or gel suspension of diodes
US9018833B2 (en) 2007-05-31 2015-04-28 Nthdegree Technologies Worldwide Inc Apparatus with light emitting or absorbing diodes
US8809126B2 (en) 2007-05-31 2014-08-19 Nthdegree Technologies Worldwide Inc Printable composition of a liquid or gel suspension of diodes
US9534772B2 (en) 2007-05-31 2017-01-03 Nthdegree Technologies Worldwide Inc Apparatus with light emitting diodes
US8877101B2 (en) 2007-05-31 2014-11-04 Nthdegree Technologies Worldwide Inc Method of manufacturing a light emitting, power generating or other electronic apparatus
US8133768B2 (en) 2007-05-31 2012-03-13 Nthdegree Technologies Worldwide Inc Method of manufacturing a light emitting, photovoltaic or other electronic apparatus and system
US8674593B2 (en) 2007-05-31 2014-03-18 Nthdegree Technologies Worldwide Inc Diode for a printable composition
US8889216B2 (en) 2007-05-31 2014-11-18 Nthdegree Technologies Worldwide Inc Method of manufacturing addressable and static electronic displays
US10121950B2 (en) 2008-03-01 2018-11-06 Goldeneye, Inc. Lightweight solid state light source with common light emitting and heat dissipating surface
US10125931B2 (en) 2008-03-01 2018-11-13 Goldeneye, Inc. Barrier with integrated self cooling solid state light sources
US8127477B2 (en) 2008-05-13 2012-03-06 Nthdegree Technologies Worldwide Inc Illuminating display systems
US7992332B2 (en) 2008-05-13 2011-08-09 Nthdegree Technologies Worldwide Inc. Apparatuses for providing power for illumination of a display object
US9024517B2 (en) * 2010-03-03 2015-05-05 Cree, Inc. LED lamp with remote phosphor and diffuser configuration utilizing red emitters
US8632196B2 (en) 2010-03-03 2014-01-21 Cree, Inc. LED lamp incorporating remote phosphor and diffuser with heat dissipation features
US8931933B2 (en) * 2010-03-03 2015-01-13 Cree, Inc. LED lamp with active cooling element
US9316361B2 (en) 2010-03-03 2016-04-19 Cree, Inc. LED lamp with remote phosphor and diffuser configuration
US9500325B2 (en) * 2010-03-03 2016-11-22 Cree, Inc. LED lamp incorporating remote phosphor with heat dissipation features
US9310030B2 (en) * 2010-03-03 2016-04-12 Cree, Inc. Non-uniform diffuser to scatter light into uniform emission pattern
US9275979B2 (en) 2010-03-03 2016-03-01 Cree, Inc. Enhanced color rendering index emitter through phosphor separation
US9625105B2 (en) * 2010-03-03 2017-04-18 Cree, Inc. LED lamp with active cooling element
US9062830B2 (en) 2010-03-03 2015-06-23 Cree, Inc. High efficiency solid state lamp and bulb
US9057511B2 (en) 2010-03-03 2015-06-16 Cree, Inc. High efficiency solid state lamp and bulb
US8562161B2 (en) 2010-03-03 2013-10-22 Cree, Inc. LED based pedestal-type lighting structure
US8882284B2 (en) 2010-03-03 2014-11-11 Cree, Inc. LED lamp or bulb with remote phosphor and diffuser configuration with enhanced scattering properties
US10359151B2 (en) 2010-03-03 2019-07-23 Ideal Industries Lighting Llc Solid state lamp with thermal spreading elements and light directing optics
US10451251B2 (en) 2010-08-02 2019-10-22 Ideal Industries Lighting, LLC Solid state lamp with light directing optics and diffuser
US9234655B2 (en) 2011-02-07 2016-01-12 Cree, Inc. Lamp with remote LED light source and heat dissipating elements
US9068701B2 (en) 2012-01-26 2015-06-30 Cree, Inc. Lamp structure with remote LED light source
US11251164B2 (en) 2011-02-16 2022-02-15 Creeled, Inc. Multi-layer conversion material for down conversion in solid state lighting
KR101843501B1 (en) 2011-03-30 2018-03-29 서울반도체 주식회사 Lighting apparatus
US8704262B2 (en) 2011-08-11 2014-04-22 Goldeneye, Inc. Solid state light sources with common luminescent and heat dissipating surfaces
US10008631B2 (en) 2011-11-22 2018-06-26 Samsung Electronics Co., Ltd. Coated semiconductor nanocrystals and products including same
WO2013078249A1 (en) 2011-11-22 2013-05-30 Qd Vision Inc. Method of making quantum dots
WO2013078247A1 (en) * 2011-11-22 2013-05-30 Qd Vision, Inc. Methods of coating semiconductor nanocrystals, semiconductor nanocrystals, and products including same
WO2013078245A1 (en) 2011-11-22 2013-05-30 Qd Vision, Inc. Method of making quantum dots
WO2013078242A1 (en) 2011-11-22 2013-05-30 Qd Vision, Inc. Methods for coating semiconductor nanocrystals
CN104205368B (en) 2012-02-05 2018-08-07 三星电子株式会社 Semiconductor nanocrystal, preparation method, composition and product
US9488359B2 (en) 2012-03-26 2016-11-08 Cree, Inc. Passive phase change radiators for LED lamps and fixtures
US20140268698A1 (en) * 2013-03-14 2014-09-18 Scott M. Zimmerman Self cooling, magnetically connected fixtures for large area directional and isotropic solid state lighting panels
US9617472B2 (en) 2013-03-15 2017-04-11 Samsung Electronics Co., Ltd. Semiconductor nanocrystals, a method for coating semiconductor nanocrystals, and products including same
US10400978B2 (en) 2013-11-21 2019-09-03 Ford Global Technologies, Llc Photoluminescent lighting apparatus for vehicles
US9810401B2 (en) 2013-11-21 2017-11-07 Ford Global Technologies, Llc Luminescent trim light assembly
US9931991B2 (en) 2013-11-21 2018-04-03 Ford Global Technologies, Llc Rotating garment hook
US10363867B2 (en) 2013-11-21 2019-07-30 Ford Global Technologies, Llc Printed LED trim panel lamp
US9902320B2 (en) 2013-11-21 2018-02-27 Ford Global Technologies, Llc Photoluminescent color changing dome map lamp
US9905743B2 (en) 2013-11-21 2018-02-27 Ford Global Technologies, Llc Printed LED heat sink double lock
US10041650B2 (en) 2013-11-21 2018-08-07 Ford Global Technologies, Llc Illuminated instrument panel storage compartment
US9539940B2 (en) 2013-11-21 2017-01-10 Ford Global Technologies, Llc Illuminated indicator
US9989216B2 (en) 2013-11-21 2018-06-05 Ford Global Technologies, Llc Interior exterior moving designs
US9950658B2 (en) 2013-11-21 2018-04-24 Ford Global Technologies, Llc Privacy window system
US9961745B2 (en) 2013-11-21 2018-05-01 Ford Global Technologies, Llc Printed LED rylene dye welcome/farewell lighting
US10064256B2 (en) 2013-11-21 2018-08-28 Ford Global Technologies, Llc System and method for remote activation of vehicle lighting
CN105829797B (en) * 2013-12-20 2021-01-22 昕诺飞控股有限公司 Light emitting device
US9360188B2 (en) 2014-02-20 2016-06-07 Cree, Inc. Remote phosphor element filled with transparent material and method for forming multisection optical elements
US9328876B2 (en) * 2014-03-19 2016-05-03 Cree, Inc. High efficiency LED lamp
WO2016199243A1 (en) * 2015-06-10 2016-12-15 オリンパス株式会社 Lighting device
US10168039B2 (en) 2015-08-10 2019-01-01 Ford Global Technologies, Llc Illuminated badge for a vehicle
US9889791B2 (en) 2015-12-01 2018-02-13 Ford Global Technologies, Llc Illuminated badge for a vehicle
US10023100B2 (en) 2015-12-14 2018-07-17 Ford Global Technologies, Llc Illuminated trim assembly
US10501007B2 (en) 2016-01-12 2019-12-10 Ford Global Technologies, Llc Fuel port illumination device
US10300843B2 (en) 2016-01-12 2019-05-28 Ford Global Technologies, Llc Vehicle illumination assembly
US10235911B2 (en) 2016-01-12 2019-03-19 Ford Global Technologies, Llc Illuminating badge for a vehicle
US10011219B2 (en) 2016-01-18 2018-07-03 Ford Global Technologies, Llc Illuminated badge
US9927114B2 (en) 2016-01-21 2018-03-27 Ford Global Technologies, Llc Illumination apparatus utilizing conductive polymers
US10189401B2 (en) 2016-02-09 2019-01-29 Ford Global Technologies, Llc Vehicle light strip with optical element
US10501025B2 (en) 2016-03-04 2019-12-10 Ford Global Technologies, Llc Vehicle badge
US10118568B2 (en) 2016-03-09 2018-11-06 Ford Global Technologies, Llc Vehicle badge having discretely illuminated portions
US9963001B2 (en) 2016-03-24 2018-05-08 Ford Global Technologies, Llc Vehicle wheel illumination assembly using photoluminescent material
US10081296B2 (en) 2016-04-06 2018-09-25 Ford Global Technologies, Llc Illuminated exterior strip with photoluminescent structure and retroreflective layer
US9902315B2 (en) 2016-04-15 2018-02-27 Ford Global Technologies, Llc Photoluminescent lighting apparatus for vehicles
US10064259B2 (en) 2016-05-11 2018-08-28 Ford Global Technologies, Llc Illuminated vehicle badge
US10420189B2 (en) 2016-05-11 2019-09-17 Ford Global Technologies, Llc Vehicle lighting assembly
US10631373B2 (en) 2016-05-12 2020-04-21 Ford Global Technologies, Llc Heated windshield indicator
US9896020B2 (en) 2016-05-23 2018-02-20 Ford Global Technologies, Llc Vehicle lighting assembly
US9994144B2 (en) 2016-05-23 2018-06-12 Ford Global Technologies, Llc Illuminated automotive glazings
US9925917B2 (en) 2016-05-26 2018-03-27 Ford Global Technologies, Llc Concealed lighting for vehicles
US9937855B2 (en) 2016-06-02 2018-04-10 Ford Global Technologies, Llc Automotive window glazings
US10343622B2 (en) 2016-06-09 2019-07-09 Ford Global Technologies, Llc Interior and exterior iridescent vehicle appliques
US10205338B2 (en) 2016-06-13 2019-02-12 Ford Global Technologies, Llc Illuminated vehicle charging assembly
US10131237B2 (en) 2016-06-22 2018-11-20 Ford Global Technologies, Llc Illuminated vehicle charging system
US9855888B1 (en) * 2016-06-29 2018-01-02 Ford Global Technologies, Llc Photoluminescent vehicle appliques
US9840191B1 (en) 2016-07-12 2017-12-12 Ford Global Technologies, Llc Vehicle lamp assembly
US9855797B1 (en) 2016-07-13 2018-01-02 Ford Global Technologies, Llc Illuminated system for a vehicle
US9889801B2 (en) 2016-07-14 2018-02-13 Ford Global Technologies, Llc Vehicle lighting assembly
US9840193B1 (en) 2016-07-15 2017-12-12 Ford Global Technologies, Llc Vehicle lighting assembly
US9845047B1 (en) 2016-08-08 2017-12-19 Ford Global Technologies, Llc Light system
US9827903B1 (en) 2016-08-18 2017-11-28 Ford Global Technologies, Llc Illuminated trim panel
US10173604B2 (en) 2016-08-24 2019-01-08 Ford Global Technologies, Llc Illuminated vehicle console
US10047659B2 (en) 2016-08-31 2018-08-14 Ford Global Technologies, Llc Photoluminescent engine indicium
US10047911B2 (en) 2016-08-31 2018-08-14 Ford Global Technologies, Llc Photoluminescent emission system
US10308175B2 (en) 2016-09-08 2019-06-04 Ford Global Technologies, Llc Illumination apparatus for vehicle accessory
US10075013B2 (en) 2016-09-08 2018-09-11 Ford Global Technologies, Llc Vehicle apparatus for charging photoluminescent utilities
US9863171B1 (en) 2016-09-28 2018-01-09 Ford Global Technologies, Llc Vehicle compartment
US10046688B2 (en) 2016-10-06 2018-08-14 Ford Global Technologies, Llc Vehicle containing sales bins
US9914390B1 (en) 2016-10-19 2018-03-13 Ford Global Technologies, Llc Vehicle shade assembly
US10086700B2 (en) 2016-10-20 2018-10-02 Ford Global Technologies, Llc Illuminated switch
US10035473B2 (en) 2016-11-04 2018-07-31 Ford Global Technologies, Llc Vehicle trim components
US9902314B1 (en) 2016-11-17 2018-02-27 Ford Global Technologies, Llc Vehicle light system
US9994089B1 (en) 2016-11-29 2018-06-12 Ford Global Technologies, Llc Vehicle curtain
US10220784B2 (en) 2016-11-29 2019-03-05 Ford Global Technologies, Llc Luminescent windshield display
US10106074B2 (en) 2016-12-07 2018-10-23 Ford Global Technologies, Llc Vehicle lamp system
US10118538B2 (en) 2016-12-07 2018-11-06 Ford Global Technologies, Llc Illuminated rack
US10422501B2 (en) 2016-12-14 2019-09-24 Ford Global Technologies, Llc Vehicle lighting assembly
US10144365B2 (en) 2017-01-10 2018-12-04 Ford Global Technologies, Llc Vehicle badge
US9815402B1 (en) 2017-01-16 2017-11-14 Ford Global Technologies, Llc Tailgate and cargo box illumination
US10173582B2 (en) 2017-01-26 2019-01-08 Ford Global Technologies, Llc Light system
US10053006B1 (en) 2017-01-31 2018-08-21 Ford Global Technologies, Llc Illuminated assembly
US9896023B1 (en) 2017-02-09 2018-02-20 Ford Global Technologies, Llc Vehicle rear lighting assembly
US10427593B2 (en) 2017-02-09 2019-10-01 Ford Global Technologies, Llc Vehicle light assembly
US9849829B1 (en) 2017-03-02 2017-12-26 Ford Global Technologies, Llc Vehicle light system
US10240737B2 (en) 2017-03-06 2019-03-26 Ford Global Technologies, Llc Vehicle light assembly
US10195985B2 (en) 2017-03-08 2019-02-05 Ford Global Technologies, Llc Vehicle light system
US10150396B2 (en) 2017-03-08 2018-12-11 Ford Global Technologies, Llc Vehicle cup holder assembly with photoluminescent accessory for increasing the number of available cup holders
US10399483B2 (en) 2017-03-08 2019-09-03 Ford Global Technologies, Llc Vehicle illumination assembly
US10611298B2 (en) 2017-03-13 2020-04-07 Ford Global Technologies, Llc Illuminated cargo carrier
US10166913B2 (en) 2017-03-15 2019-01-01 Ford Global Technologies, Llc Side marker illumination
US10483678B2 (en) 2017-03-29 2019-11-19 Ford Global Technologies, Llc Vehicle electrical connector
US10569696B2 (en) 2017-04-03 2020-02-25 Ford Global Technologies, Llc Vehicle illuminated airflow control device
US10399486B2 (en) 2017-05-10 2019-09-03 Ford Global Technologies, Llc Vehicle door removal and storage
US10035463B1 (en) 2017-05-10 2018-07-31 Ford Global Technologies, Llc Door retention system
US9963066B1 (en) 2017-05-15 2018-05-08 Ford Global Technologies, Llc Vehicle running board that provides light excitation
US10059238B1 (en) 2017-05-30 2018-08-28 Ford Global Technologies, Llc Vehicle seating assembly
US10144337B1 (en) 2017-06-02 2018-12-04 Ford Global Technologies, Llc Vehicle light assembly
US10493904B2 (en) 2017-07-17 2019-12-03 Ford Global Technologies, Llc Vehicle light assembly
US10502690B2 (en) 2017-07-18 2019-12-10 Ford Global Technologies, Llc Indicator system for vehicle wear components
US10137831B1 (en) 2017-07-19 2018-11-27 Ford Global Technologies, Llc Vehicle seal assembly
KR102391610B1 (en) 2017-08-04 2022-04-28 쑤저우 레킨 세미컨덕터 컴퍼니 리미티드 Semiconductor device package and lighting source unit
US10160405B1 (en) 2017-08-22 2018-12-25 Ford Global Technologies, Llc Vehicle decal assembly
US10186177B1 (en) 2017-09-13 2019-01-22 Ford Global Technologies, Llc Vehicle windshield lighting assembly
US10137825B1 (en) 2017-10-02 2018-11-27 Ford Global Technologies, Llc Vehicle lamp assembly
US10391943B2 (en) 2017-10-09 2019-08-27 Ford Global Technologies, Llc Vehicle lamp assembly
US10207636B1 (en) 2017-10-18 2019-02-19 Ford Global Technologies, Llc Seatbelt stowage assembly
US10189414B1 (en) 2017-10-26 2019-01-29 Ford Global Technologies, Llc Vehicle storage assembly
US10723258B2 (en) 2018-01-04 2020-07-28 Ford Global Technologies, Llc Vehicle lamp assembly
US10723257B2 (en) 2018-02-14 2020-07-28 Ford Global Technologies, Llc Multi-color luminescent grille for a vehicle
US10627092B2 (en) 2018-03-05 2020-04-21 Ford Global Technologies, Llc Vehicle grille assembly
US10281113B1 (en) 2018-03-05 2019-05-07 Ford Global Technologies, Llc Vehicle grille
US10457196B1 (en) 2018-04-11 2019-10-29 Ford Global Technologies, Llc Vehicle light assembly
US10703263B2 (en) 2018-04-11 2020-07-07 Ford Global Technologies, Llc Vehicle light system
US10778223B2 (en) 2018-04-23 2020-09-15 Ford Global Technologies, Llc Hidden switch assembly
CN108730855A (en) * 2018-08-31 2018-11-02 李文星 High-voltage LED panel light
US10576893B1 (en) 2018-10-08 2020-03-03 Ford Global Technologies, Llc Vehicle light assembly
JP7457657B2 (en) 2018-12-27 2024-03-28 デンカ株式会社 Light emitting board and lighting device
CN113228315A (en) 2018-12-27 2021-08-06 电化株式会社 Phosphor substrate, light-emitting substrate, and lighting device
US12107196B2 (en) 2018-12-27 2024-10-01 Denka Company Limited Phosphor substrate, light emitting substrate, and lighting device
US12040436B2 (en) 2018-12-27 2024-07-16 Denka Company Limited Phosphor substrate, light emitting substrate, and lighting device
US12027652B2 (en) 2018-12-27 2024-07-02 Denka Company Limited Phosphor substrate, light emitting substrate, and lighting device
US10720551B1 (en) 2019-01-03 2020-07-21 Ford Global Technologies, Llc Vehicle lamps

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050174762A1 (en) * 2004-02-09 2005-08-11 Fogerlie Sivert G. Light box having a solar panel cover
US20060232193A1 (en) * 2005-04-15 2006-10-19 Patent-Treuhand-Gesellschaft Fur Elektrische Gluhlamplen Mbh Blue to yellow-orange emitting phosphor, and light source having such a phosphor

Family Cites Families (12)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE3609660A1 (en) * 1986-03-21 1987-10-01 Bernhard Bartel ELECTRICAL DEVICE WITH AT LEAST ONE ELECTRICAL CONSUMER UNIT LOCATED ON A SURFACE
CH680013A5 (en) * 1988-09-19 1992-05-29 Mathias Och
TWI263008B (en) * 2004-06-30 2006-10-01 Ind Tech Res Inst LED lamp
EP1779153B1 (en) * 2004-07-27 2011-09-21 Dolby Laboratories Licensing Corporation Diffuser for light from light source array and displays incorporating same
US7658510B2 (en) * 2004-08-18 2010-02-09 Remco Solid State Lighting Inc. System and method for power control in a LED luminaire
ATE537564T1 (en) * 2004-10-13 2011-12-15 Panasonic Corp LUMINESCENT LIGHT SOURCE, METHOD FOR PRODUCING SAME AND LIGHT EMITTING DEVICE
CA2611755C (en) * 2005-06-30 2011-03-22 David Didur Rotatable magnetic electrical connector
US7795600B2 (en) 2006-03-24 2010-09-14 Goldeneye, Inc. Wavelength conversion chip for use with light emitting diodes and method for making same
US7285791B2 (en) 2006-03-24 2007-10-23 Goldeneye, Inc. Wavelength conversion chip for use in solid-state lighting and method for making same
US20080149166A1 (en) 2006-12-21 2008-06-26 Goldeneye, Inc. Compact light conversion device and light source with high thermal conductivity wavelength conversion material
US7727790B2 (en) 2007-01-30 2010-06-01 Goldeneye, Inc. Method for fabricating light emitting diodes
US20080258165A1 (en) 2007-04-23 2008-10-23 Goldeneye, Inc. Light emitting diode chip

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050174762A1 (en) * 2004-02-09 2005-08-11 Fogerlie Sivert G. Light box having a solar panel cover
US20060232193A1 (en) * 2005-04-15 2006-10-19 Patent-Treuhand-Gesellschaft Fur Elektrische Gluhlamplen Mbh Blue to yellow-orange emitting phosphor, and light source having such a phosphor

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US9243782B2 (en) 2016-01-26
US20140153227A1 (en) 2014-06-05
US20140036493A1 (en) 2014-02-06
US9267668B2 (en) 2016-02-23
US8558438B2 (en) 2013-10-15
US20090217970A1 (en) 2009-09-03

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