WO2014128676A1 - A coated luminescent particle, a luminescent converter element, a light source, a luminaire and a method of manufacturing a coated luminescent particle - Google Patents

A coated luminescent particle, a luminescent converter element, a light source, a luminaire and a method of manufacturing a coated luminescent particle Download PDF

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Publication number
WO2014128676A1
WO2014128676A1 PCT/IB2014/059228 IB2014059228W WO2014128676A1 WO 2014128676 A1 WO2014128676 A1 WO 2014128676A1 IB 2014059228 W IB2014059228 W IB 2014059228W WO 2014128676 A1 WO2014128676 A1 WO 2014128676A1
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WIPO (PCT)
Prior art keywords
luminescent
coating layer
light
coated
particle
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Ceased
Application number
PCT/IB2014/059228
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French (fr)
Inventor
Ties Van Bommel
Peter Josef Schmidt
Martinus Petrus Joseph PEETERS
René Theodorus WEGH
Gerardus Wilhelmus Gerbe VAN DREUMEL
René Jan HENDRIKS
Christoph Gerard August HOELEN
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Philips GmbH
Koninklijke Philips NV
Original Assignee
Philips Deutschland GmbH
Koninklijke Philips NV
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Publication date
Application filed by Philips Deutschland GmbH, Koninklijke Philips NV filed Critical Philips Deutschland GmbH
Priority to CN201480010358.0A priority Critical patent/CN105073946A/en
Priority to RU2015140756A priority patent/RU2674135C2/en
Priority to US14/763,861 priority patent/US10875005B2/en
Priority to JP2015558595A priority patent/JP2016515145A/en
Priority to EP14710391.5A priority patent/EP2958974B1/en
Priority to KR1020157026576A priority patent/KR20150123887A/en
Publication of WO2014128676A1 publication Critical patent/WO2014128676A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J13/00Colloid chemistry, e.g. the production of colloidal materials or their solutions, not otherwise provided for; Making microcapsules or microballoons
    • B01J13/02Making microcapsules or microballoons
    • B01J13/20After-treatment of capsule walls, e.g. hardening
    • B01J13/22Coating
    • CCHEMISTRY; METALLURGY
    • C09DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
    • C09KMATERIALS FOR MISCELLANEOUS APPLICATIONS, NOT PROVIDED FOR ELSEWHERE
    • C09K11/00Luminescent materials, e.g. electroluminescent or chemiluminescent
    • C09K11/02Use of particular materials as binders, particle coatings or suspension media therefor
    • C09K11/025Use of particular materials as binders, particle coatings or suspension media therefor non-luminescent particle coatings or suspension media
    • CCHEMISTRY; METALLURGY
    • C09DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
    • C09KMATERIALS FOR MISCELLANEOUS APPLICATIONS, NOT PROVIDED FOR ELSEWHERE
    • C09K11/00Luminescent materials, e.g. electroluminescent or chemiluminescent
    • C09K11/08Luminescent materials, e.g. electroluminescent or chemiluminescent containing inorganic luminescent materials
    • CCHEMISTRY; METALLURGY
    • C23COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; CHEMICAL SURFACE TREATMENT; DIFFUSION TREATMENT OF METALLIC MATERIAL; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL
    • C23CCOATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; SURFACE TREATMENT OF METALLIC MATERIAL BY DIFFUSION INTO THE SURFACE, BY CHEMICAL CONVERSION OR SUBSTITUTION; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL
    • C23C16/00Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes
    • C23C16/22Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes characterised by the deposition of inorganic material, other than metallic material
    • C23C16/30Deposition of compounds, mixtures or solid solutions, e.g. borides, carbides, nitrides
    • C23C16/40Oxides
    • C23C16/403Oxides of aluminium, magnesium or beryllium
    • CCHEMISTRY; METALLURGY
    • C23COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; CHEMICAL SURFACE TREATMENT; DIFFUSION TREATMENT OF METALLIC MATERIAL; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL
    • C23CCOATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; SURFACE TREATMENT OF METALLIC MATERIAL BY DIFFUSION INTO THE SURFACE, BY CHEMICAL CONVERSION OR SUBSTITUTION; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL
    • C23C16/00Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes
    • C23C16/44Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes characterised by the method of coating
    • C23C16/455Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes characterised by the method of coating characterised by the method used for introducing gases into reaction chamber or for modifying gas flows in reaction chamber
    • C23C16/45523Pulsed gas flow or change of composition over time
    • C23C16/45525Atomic layer deposition [ALD]
    • C23C16/45555Atomic layer deposition [ALD] applied in non-semiconductor technology
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F21LIGHTING
    • F21SNON-PORTABLE LIGHTING DEVICES; SYSTEMS THEREOF; VEHICLE LIGHTING DEVICES SPECIALLY ADAPTED FOR VEHICLE EXTERIORS
    • F21S13/00Non-electric lighting devices or systems employing a point-like light source; Non-electric lighting devices or systems employing a light source of unspecified shape

Definitions

  • the invention relates to luminescent particles which are coated.
  • the invention further relates to a method of manufacturing coated luminescent particles.
  • luminescent materials are sensitive for water, which means that the luminescent material reacts with water such that other materials are formed. This may dramatically decrease the performance of a light conversion element which comprises the luminescent material, it may also result in the creation of hazardous and/or toxic fluids or solid materials.
  • Sulfide based phosphors such as calcium sulfide (CaS), strontium sulfide (SrS), calcium selenide sulfide (CaSeS) doped by europium (Eu) are potential candidates to be used for this purpose.
  • these sulfide-based phosphors are particularly sensitive to water and may react to form calcium or strontium hydroxide and sulfide gas.
  • the release of H 2 S is also a problem because it is a toxic, flammable and foul- smelling gas.
  • phosphors based on Ca(Se,S) may upon reaction with water also release small amounts of H 2 Se gas, which is highly toxic. It is therefore needed to protect the phosphor with a coating.
  • a first aspect of the invention provides a coated luminescent particle.
  • a second aspect of the invention provides a luminescent converter element.
  • a third aspect of the invention provides a light source.
  • a fourth aspect of the invention provides a luminaire.
  • a fifth aspect of the invention provides a method of manufacturing coated luminescent particles.
  • a coated luminescent particle in accordance with the first aspect of the invention comprises a luminescent particle, a first coating layer and a second coating layer.
  • the luminescent particle comprises luminescent material which is configured to absorb light in a first spectral range and to convert a portion of the absorbed light towards light of a second spectral range.
  • the luminescent material may be sensitive for water.
  • the first coating layer forms a first barrier for water (around the luminescent particle) and comprises a metal oxide or a nitride, phosphide, sulfide based coating.
  • the second coating layer forms a second barrier for water (around the luminescent particle with the first coating layer) and comprises a silicon based polymer or comprises a continuous layer of one of the materials from the group of AIPO 4 , S1O 2 , AI 2 O 3 , and LaPC
  • the first coating layer and the second coating layer are light transmitting.
  • the first coating layer encapsulates the luminescent particle and the second coating layer encapsulates the luminescent particle with the first coating layer.
  • the luminescent particle is coated with a hybrid coating which comprises at least two layers which both form a barrier for water.
  • the combination of the two layers provide a good barrier for water and the luminescent material does not deteriorate because of chemical reactions with water and also, during use, the barrier remains its properties because the second coating is relatively scratch resistant.
  • the layer of metaloxide (or a coating based on a nitride, phosphide or sulfide) must be relatively thick, which leads to relatively high costs.
  • the useable coating technologies are not limited to layer deposition techniques.
  • a hybrid coating which comprises two different layers and which may be provided with two different coating technologies, a water barrier of a high quality may be manufactured around a luminescent particle while the manufacturing costs are kept within acceptable limits and specific disadvantages of a single metal oxide layer are overcome.
  • the coated luminescent particles comprise the first thin coating layer of a metal oxide which protects the luminescent material enough for water such that the second coating layer may be
  • the second coating layer according to the invention is manufactured with, for example, a sol-gel technology.
  • the luminescent material may be sensitive for water. In the context of this document it means that the luminescent material reacts with water such that the luminescent material gets inferior (luminescent) characteristics and/or deteriorates. In general, when the luminescent material reacts with water, new materials are formed and in specific situations such materials may be hazardous or toxic.
  • the term encapsulate is used in the context of the first coating layer and the second coating layer.
  • the first coating layer encapsulates the luminescent particles
  • the luminescent particle is surrounded by the first coating layer, or, the first coating layer encloses the luminescent particle.
  • the first coating layer is in direct contact with the luminescent material.
  • Other layers may be provided in between the luminescent particle and the first coating layer.
  • the second coating layer encapsulates the luminescent particles that are provided with the first coating layer.
  • the second coating layer encloses the first coating layer and the luminescent particle.
  • the second coating layer is directly applied on top of the first coating layer and other layers may be in between the first coating layer and the second coating layer.
  • the first coating layer and the second coating layer form a barrier for water which means that substantially no water can penetrate through the coating layers. In practical embodiments, it means that it is relatively difficult for water to get through the first coating layer and/or the second coating layer. At least the combination of first coating layer and the second coating layer cannot be penetrated by water. It is to be noted that this relates to the first coating layer and the second coating layer when being in a good condition, which means, when not being damaged. When the respective layers are locally damaged, it is not excluded that the respective layer allows some water to penetrate locally through the respective layers.
  • the first coating layer and the second coating layer are light transmitting which means that at least a portion of the light, which impinges on the respective layers, is transmitted through the respective layer.
  • the first layer and the second layer may be fully or partially transparent, or may be translucent. In an embodiment, more than 90% of the light which impinges on the coating layers is transmitted through the coating layers.
  • the first coating layer and/or the second coating layer may be light transmitting because of characteristics of the materials of which the coating layers are made.
  • the coating layer may be made from a material which is transparent, even if the layer is relatively thick.
  • the first coating layer and/or the second coating layer is thin enough such that the respective layer becomes light transmitting while the material of which the layer is manufactured is not transparent or translucent when manufactured in relatively thick layers.
  • Examples of metal oxides used in the first coating layer are ZnO, Ti0 2 , A1 2 0 or Zr0 2 .
  • Examples of transparent nitrides, phosphides and sulfides used in the first coating layer are TiN, Si 3 N 4 , Hf 3 N 4 , Zr 3 N 4 , InP, GaP or ZnS.
  • the luminescent material comprises sulfide (S) or comprises selenide (Se).
  • S sulfide
  • Se selenide
  • luminescent materials available which have a light emission spectrum in the green or orange/red spectral range which comprises sulfide and selenide. These materials are often sensitive for water and especially when, during chemical reactions, gasses are formed which comprises sulfide or selenide, toxic and/or hazardous gasses may be formed such as H 2 S or H 2 Se gas.
  • the use of the hybrid coating according to invention prevents that these reactions can occur.
  • the luminescent material may also be selected from the groups of orthosilicates or thiogallates. These materials may also react with water which, at least, resulting in a deteriorated luminescent material.
  • the luminescent material comprises at least one of the materials calcium sulfide (CaS), strontium sulfide (SrS), calcium selenide sulfide (CaSeS). These materials are often doped with europium (Eu) to obtain their luminescent character.
  • the materials of this optional embodiment have a light emission spectrum the in the red spectral range and have a light emission spectrum which is relatively narrow (Full Width Half Maximum value of light emission spectrum smaller than 100 nanometer, and optionally, smaller than 60 nanometer). These materials are advantageous to use obtain high quality white light with a relatively high conversion efficiency.
  • a diameter of the luminescent particle is smaller than 200 micrometer. If the luminescent particle is small enough, it has a relatively large surface area and, thus, a relatively large area on which light may impinge and, thus, a relatively large amount of light may be absorbed for conversion towards light of the second spectral range.
  • the diameter of the particle is defined as the maximum of all intersectional distances of the all possible imaginary lines that intersect with the particle.
  • a thickness of the first coating layer is within the range from 5 to 30 nanometer, and, in another optional embodiment, the thickness of the first coating layers is within the range from 10 to 20 nanometer. If the first coating layer has such a thickness it forms an effective barrier for water and a relatively small amount of material and/or processing time is required to manufacture the layer. The thickness is measured along a line that is oriented perpendicular to the first coating layer.
  • a thickness of the second coating layer is within the range from 30 to 80 nanometer, and, in another optional embodiment, the thickness of the second coating layer is within the range from 40 to 60 nanometer. If the second coating layer has such a thickness it forms an effective barrier for water and a relatively small amount of material and/or processing time is required to manufacture the layer. The thickness is measured along a line that is oriented perpendicular to the second coating layer.
  • the coated luminescent particle further comprises a third coating layer being interposed between the first coating layer and the second coating layer.
  • the third coating layer is one of a metal oxide layer, a layer of a silicone based polymer, or a continuous layer of one of the materials form the group of A1P0 4 , Si0 2 , A1 2 0 , and LaP04.
  • the third coating layer is light transmitting and forms a barrier for water.
  • the hybrid coating around the luminescent particles comprises an additional coating layer which has characteristics that are similar to the first coating layer and/or the second coating layer.
  • the invention is not limited to hybrid coatings with two or three layer also more than three layers may be used.
  • the third coating layer is in between the first coating layer and the second coating layer, but is not necessarily in direct contact with the first coating layer and/or the second coating layer. More layers may be in between the first coating layer and the second coating layer, and, thus, in between the first coating layer and the third coating layer and/or in between the second coating layer and the third coating layer.
  • the coated luminescent particles of this optional embodiment are better protected against water by means of the three coating layers.
  • the Silicon based polymer is obtained from a material from a
  • Rl, R2 and R3 are hydrolysable alkoxy groups and R4 is selected from the group of C1-C6 linear alkyl groups, hydrolysable alkoxy groups and a phenyl group, or b) Rl, R2 andR3 are individually selected from -OCH 3 and -OC 2 H 5 and R4 is selected from -C3 ⁇ 4, -C 2 H 5 , -OCH 3 , -OC 2 H 5 and a phenyl group.
  • a good water barrier may be manufactured as a relatively thin layer around the luminescent particle which comprises already the first coating layer.
  • the second coating layer is manufactured by a sol-gel based technology, which is a relatively efficient and effective solution or manufacturing a coating layer based on the above discussed materials.
  • the silicone based polymer is obtained from a material from the group of:
  • the materials of this optional embodiment are advantageous materials to manufacture a good water barrier in a relatively thin layer around a particle with a sol-gel based technology.
  • a luminescent converter which comprises coated luminescent particles according to the first aspect of the invention and comprises a binder for binding the coated luminescent particles in the luminescent converter element.
  • the binder is, for example, matrix polymer such as, for example, polymethyl methacrylate (PMMA), polyethylene terephthalate (PET), polyethylene naphthalate (PEN), polycarbonate (PC) , a silicone material or a glass material.
  • the luminescent converter according to the second aspect of the invention provides the same benefits as the coated luminescent particle according to the first aspect of the invention and has similar embodiments with similar effects as the corresponding embodiments of the coated luminescent particle.
  • a light source which comprises a light emitter for emitting a light emission.
  • the light emission at least comprises light in the first spectral range.
  • the light source further comprises a luminescent converter element according to the second aspect of the invention.
  • the luminescent converter element is arranged in the light source such that it receives, light emitted by the light emitter.
  • the luminescent converter element may be provided directly on top of a light emitting surface of the light emitter (when the light emitter is in operation). In other embodiments a gap filled with a light transmitting material may be presented in between a surface of the light emitter, which emits the light in operation, and the luminescent converter element.
  • the gap may have a thickness of one or two millimeters and the gap may have a thickness in the order of one or more centimeters.
  • the first configuration is termed the vicinity configuration in which the luminescent converter element is in the vicinity of the light emitting element, and the second configuration is termed the remote configuration.
  • the thickness of the gap is measured along the shortest line from the light emitting surface of the light emitter towards the luminescent converter element. It is further noted that the light rays emitted by the light emitter may also follow a non-straight optical path towards the luminescent converter element and the optical path may be bended by, for example, light guides, lenses, etc., and the light rays may be reflected by, for example, mirrors, etc.
  • the light source according to the third aspect of the invention provides the same benefits as the luminescent converter element according to the second aspect of the invention or as the coated luminescent particle according to the first aspect of the invention and has similar embodiments with similar effects as the corresponding embodiments of the particle or the element.
  • a luminaire which comprises coated luminescent particles according to the first aspect of the invention, or a luminescent converter according to the second aspect of the invention or a light source according to the third aspect of the invention.
  • the luminaire according to the fourth aspect of the invention provides the same benefits as the light source, the luminescent converter element, and the coated luminescent particle according to the other aspect of the invention and has similar embodiments with similar effects as the corresponding embodiments of the particle, the element or the light source.
  • a method of manufacturing coated luminescent particles comprises the stages of: i) providing luminescent particles of a luminescent material, the luminescent particles are configured to absorb light in a first spectral range and to convert a portion of the absorbed light towards light of a second spectral range, the luminescent material is water sensitive, b) depositing a first coating layer of a metal oxide around the luminescent particles, c) manufacturing a second coating layer around the luminescent particles with the first coating layer by means of a sol-gel technology or with a nanoparticle suspension technology.
  • the basis of the sol-gel comprises a silicic acid ester (which is a material with a central Silicon atom).
  • the nanoparticles suspension technology uses a suspension of A1P0 4 , Si0 2 , A1 2 0 , and LaP0 4 in a liquid.
  • the second coating layer around the luminescent particles which comprises the first coating layer a better water resistant luminescent particles is provide which is scratch resistant and which is manufactured at relatively low manufacturing costs.
  • the method according to the fifth aspect of the invention provides the same benefits as the coated luminescent particle according to the first aspect of the invention and has similar embodiments with similar effects as the corresponding embodiments of the particle.
  • the stage of depositing a first coating layer of a metal oxide around the luminescent particles may be executed by means of a chemical vapor deposition, a physical vapor deposition or an atomic layer deposition technology.
  • the stage of manufacturing a second coating layer comprises the stage of obtaining a solution of a first material in water.
  • the first material is one of a group of compounds formed by
  • Rl, R2 andR3 are hydrolysable alkoxy groups and R4 is selected from the group of C1-C6 linear alkyl groups, hydrolysable alkoxy groups and a phenyl group, or b) Rl, R2 and R3 are individually selected from -OCH 3 and -OC 2 H 5 and R4 is selected from -CH 3 , - C 2 H 5 , -OCH 3 , -OC 2 H 5 and a phenyl group.
  • Fig. 1 schematically shows an embodiment of a coated luminescent particle
  • Fig. 2 schematically shows another embodiment of a coated luminescent particle
  • Fig. 3a schematically shows an embodiment of a luminescent element
  • Fig. 3b schematically shows three embodiments of light sources
  • Fig. 4a schematically shows another embodiment of a light source
  • Fig. 4b schematically shows an embodiment of a luminaire
  • Fig. 5 schematically shows an embodiment of a method of manufacturing coated luminescent particles.
  • FIG. 1 schematically shows an embodiment of a coated luminescent particle 100.
  • the coated luminescent particle 100 comprises a luminescent particle 102 which is enclosed by a first coating layer 104 and the combination of the luminescent particle 102 and the first coating layer 104 is enclosed by a second coating layer 106.
  • the luminescent particle 102 comprises luminescent material.
  • the luminescent material is configured to absorb light in a first spectral range and converts a portion of the absorbed light towards light of a second spectral range.
  • the luminescent material is sensitive for water which means that the luminescent material reacts with water such that other compounds are formed and the luminescent material deteriorates and/or disappears.
  • the luminescent particles has, for example, a light emission spectrum in the green or in the red spectral range and has a light absorption spectrum of which the mean wavelength is lower than the mean wavelength of the light emission spectrum.
  • the Full Width Half Maximum (FWHM) value of the light emission spectrum is smaller than 100 nanometers.
  • the FWHM value of the light emission spectrum is smaller than 60 nanometer.
  • the luminescent material comprises sulfide and/or selenide, and/or the luminescent material may comprises at least one of the materials calciumsulfide, strontiumsulfide, calcium selenide sulfide, or a luminescent material of the groups of orthosilicates or thiogallates.
  • the materials calciumsulfide, strontiumsulfide, calcium selenide sulfide, or a luminescent material of the groups of orthosilicates or thiogallates.
  • the materials calciumsulfide, strontiumsulfide, calcium selenide
  • calciumsulfide, strontiumsulfide, calciumselenidesulfide have a light emission spectrum in the orange/red spectral range.
  • the luminescent particle 102 has a particular diameter d.
  • the diameter d of the luminescent particle is smaller than 200 micrometer. In another embodiment, the diameter d of the luminescent particle is smaller than 100 micrometer.
  • the first coating layer 104 is of a metal oxide and the first coating layer 104 is water resistant and forms a barrier for water.
  • the first coating layer 104 may also be a coating based on a nitride, phosphide or sulfide.
  • the material of the first coating layer 104 is, for example, A1 2 0 , Zr0 2 , ZnO, or Ti0 2 .
  • the first coating layer 104 is at least light transmitting which means that, when light impinges on the first coating layer 104 at least a portion of the light is transmitted through the first coating layer 104. As indicated Fig. 1, the first coating layer 104 has a particular thickness thl.
  • the thickness thl of the first coating layer 104 is within a range from 5 nanometer to 30 nanometer. In another embodiment, the thickness thl of the first coating layer 104 is within a range from 10 nanometer to 20 nanometer. In an embodiment, the first coating layer 104 is manufactured by means of a layer deposition technology, such as, for example, atomic layer deposition, chemical vapor deposition or physical vapor deposition.
  • the second coating layer 106 comprises a Silicon based polymer or the second layer comprises a continuous layer of one of the material from the group of A1P0 4 , Si0 2 , A1 2 0 , and LaP0 4 .
  • the second coating layer 106 is light transmitting and forms a barrier for water such, when the second coating layer 106 is not damaged and fully covers the luminescent particle (with first coating layer 104), no water is able to penetrate through the second coating layer 106 towards the first coating layer 104.
  • the second coating layer 106 has a particular thickness th2.
  • the thickness th2 of the second coating layer 106 is within a range from 30 nanometer to 80 nanometer.
  • the thickness thl of the first coating layer 104 is within a range from 40 nanometer to 60 nanometer.
  • the second coating layer 106 when the second coating layer 106 comprises one of the material from the group of AIPO 4 , Si0 2 , A1 2 0 , and LaP0 4 , the second coating layer 106 is a continuous layer of one of these materials and is obtained from nanoparticles of one of these materials. Forming such a layer from nanoparticle is often performed by forming a suspension of these nanoparticles and mixing the luminescent particle 102 with the first coating layer 104 in such a suspension. Subsequently the mixture is dried and subsequently annealed.
  • the luminescent particle 102 with the first coating layer 104 may be coated with A1P0 4 nanoparticles in such a process or a similar process.
  • the Silicon based polymer is obtained from a material from a group of
  • Rl, R2 and R3 are hydrolysable alkoxy groups and R4 is selected from the group of C1-C6 linear alkyl groups, hydrolysable alkoxy groups and a phenyl group
  • orRl, R2 and R3 are individually selected from -OCH 3 and -OC 2 H 5 and R4 is selected from -C3 ⁇ 4, -C 2 H 5 , -OCH 3 , -OC 2 H 5 and a phenyl group.
  • the Silicon based polymer is obtained from one of the
  • the above discussed materials which form the basis of the Silicon based polymer of the second coating layer 106 are suitable for use in the sol-gel technology.
  • the sol-gel process is a wet-chemical technique which is used to manufacture materials starting for a colloidal solution (sol) that acts as the precursor of an integrated network (gel) of network polymers.
  • a Silicon based polymer layer which is manufactured from tetraethoxysilane, is manufactured with the subsequent process: 100 g luminescent particles (with the first coating layer 104) powder is stirred in 1000 ml ethanol (EtOH) with 1 ml tetramethoxysilane for 10 min in a 21 3-neck flask. Then, 150 ml concentrated ammonia ( H3) solution is added. The adding of ammonia results in the forming of water. After ammonia addition, 75 ml tetraethoxysilane in 500 ml EtOH is added trop-wise within 1 hour in the closed system while stirring. Every 15 min the suspension is sonicated for 10 sec.
  • EtOH ml ethanol
  • H3 concentrated ammonia
  • the suspension is filtered and the luminescent particles (with the first and the second coating layer 104, 106) is washed with EtOH and dried at 200°C for 24 hrs.
  • the tetramethoxysilane (TMOS) acts as a primer, the amount added may be in the range from 0.5 - 10 ml.
  • the amount of tetraethoxysilane (TEOS) added determines the thickness of the second coating layer 106 (which is also a function of the surface area of the luminescent particle 102 with the first coating layer 104).
  • the range for TEOS can be in the range 10 ml to 150 ml (all related to 100 g of luminescent particles powder, 10 wt% EtOH suspension). The sonication process prevents the
  • luminescent particles 102 with first coating layer 104 from agglomeration during the hydrolysis reaction.
  • the stirring time is not critical in the sense that longer stirring times do not lead to inferior products. If the luminescent particle 102 powder with first coating layer 104 is sensitive towards hydrolysis it may be an option to first add a smaller amount of ammonia and later on the remaining amount.
  • the total amount of ammonia may be in the range 50 - 350 ml (all related to 100 g 100 g of luminescent particles powder, 10 wt% EtOH suspension). It may be an option to increase the reaction speed by heating the suspension during the reaction. As a rule of thumb, 10 Kelvin temperature increase should lead to a doubling of the reaction speed.
  • Another option may be to replace part of the ethanol by other alcohols like methanol or iso-propanol. The same holds for silane ester where part of the ethoxy groups may be replaced by methoxy or e.g.propoxy groups.
  • the first coating layer 104 of A1 2 0 is manufactured around the luminescent particles 102 by means of atomic layer deposition. In a plurality of cycles the first coating layer 104 is manufactured until the first coating layer has a required thickness.
  • the luminescent particles 102 are brought into a reactor.
  • the temperature of the reactor is in the range from 50 to 250 degrees Celcius and the temperature of the luminescent particles is kept in the range from 150 to 300 degrees Celcius.
  • a typical value for the reactor temperature is 95 degrees Celcius and a typical temperature at which the luminescent particles are kept is 200 degrees Celcius.
  • the pressure within the reactor is in the range from 10 "6 to 10 "2 Pascal and has a typical value of 10 "4 Pascal.
  • One cycle of the atomic layer deposition comprises TMA (trimethylaluminum) in the reactor for 2 second, followed by 5 seconds of exhaustion, followed by 5 seconds of H 2 0 in the reactor, followed by 10 seconds of exhaustion.
  • the total number of required cycles depends on the required thickness of the first coating layer 102.
  • the contact with water must be as short as possible and, thus, the period of time with H 2 0 in the reactor may be shortened. Instead of H 2 0, ozone may be used.
  • Fig. 2 schematically shows another embodiment of a coated luminescent particle 200.
  • the coated luminescent particle comprises a luminescent particle 102, which has the same characteristics and embodiments as the luminescent particle 102 of Fig.
  • the third coating layer 202 is arranged in between the first coating layer 104 and the second coating layer 106.
  • the third coating layer 202 may comprise a silicone based polymers, or may be a metal oxide layer, or may be continuous layer of one of the materials from the group of AIPO4, S1O2, AI2O3, and LaP0 4 . Possible embodiments of such layers are already discussed in the context of Fig. 1.
  • Fig. 3a schematically shows an embodiment of a luminescent element 300.
  • a luminescent element comprises a binder material 302 and coated luminescent particles 100.
  • the binder material is, for example, a matrix polymer such as, for example, polymethyl methacrylate (PMMA), Polyethylene terephthalate (PET), Polyethylene naphthalate (PEN) polycarbonate (PC), a silicone based materials, co-polymers, a glass based materials, or combinations thereof.
  • PMMA polymethyl methacrylate
  • PET Polyethylene terephthalate
  • PEN Polyethylene naphthalate
  • PC polycarbonate
  • silicone based materials co-polymers
  • glass based materials or combinations thereof.
  • the function of the binder is to keep the coated luminescent particles 100 together and to give a specific shape to the luminescent element 300.
  • the luminescent element may also comprise other luminescent particles or luminescent materials.
  • luminescent particles or luminescent materials when used, they may also be mixed in the binder material, or the luminescent element is subdivided in separate volumes which only comprise one specific luminescent material, in other words, the different luminescent materials are separated in space.
  • Fig. 3b schematically shows three embodiments of light sources 350, 370, 390.
  • the light source 350, 370, 390 each comprise a light emitter 354, which is for example a Light Emitting Diode (LED), an Organic Light Emitting diode (OED) or a laser diode, and comprise a luminescent element 352 in accordance with embodiments of the luminescent element 300 of Fig. 3a.
  • the light emitters emit, for example, blue light
  • the coated luminescent particles of the luminescent element 352 absorb a portion of the blue light and convert a portion of the absorbed light into green light, or orange light, or red light.
  • Another portion of the blue light may be transmitted through the luminescent element 352 and may be emitted together with the light emitted by the coated luminescent particles into the ambient of the light sources 350, 370, 390.
  • the luminescent element 352 is directly applied on a light emitting surface of the light emitter 354.
  • the gap is filled with a light transmitting material, such as a gas, a liquid or, for example, a transparent resin.
  • the luminescent element 352 is arranged in the vicinity of the light emitter 354 and the gap is only a few millimeters thick.
  • the luminescent element 352 is arranged remote configuration, which means that there is a relatively large distance between the light emitter 354 and the luminescent element 352.
  • the gap 392 has, for example, at least a depth of 1 centimeter. The depth of the gap is measured along the shortest line between the light emitter 354 and the luminescent element 352.
  • Fig. 4a schematically shows another embodiment of a light source 400.
  • the light source 400 is a retrofit light bulb which comprises a light emitter with a luminescent element 402.
  • the luminescent element 402 has characteristics and embodiments similar to the luminescent element 300 of Fig. 3a.
  • a retrofit light (discharge) tube (not shown) may be provided with light emitters and luminescent elements which comprise the coated luminescent particles according to the first aspect of the invention.
  • coated luminescent particles is not limited to the use in light sources and/or luminaires.
  • the coated luminescent particles may be used in display devices, in sensors, or in detectors.
  • Fig. 4b schematically shows an embodiment of a luminaire 450 which comprises coated luminescent particles (not shown) according to the first aspect of the invention, a luminescent element (not shown) according to the second aspect of the invention, or a light source (not shown) according to the third aspect of the invention.
  • Fig. 5 schematically shows an embodiment of a method 500 of manufacturing coated luminescent particles.
  • the method 500 comprises the steps of: i) providing 502 luminescent particles of a luminescent material, the luminescent particles being configured to absorb light in a first spectral range and to convert a portion of the absorbed light towards light of a second spectral range, the luminescent material is water sensitive, ii) depositing 504 a first coating layer of a metal oxide around the luminescent particles, and iii) manufacturing 506, 510 a second coating layer around the luminescent particles with the first coating layer.
  • the manufacturing of the second coating layer may comprises manufacturing 506 the second coating layer on basis of a sol-gel technology or may alternatively comprise manufacturing 510 the second coating layer with a nanoparticle suspension technology.
  • the basis for the sol-gel of the sol-gel technology is a material which comprises a central Silicon atom (a silicic acid ester).
  • the nanoparticles suspension technology uses a suspension of AIPO 4 , S1O2, AI2O3, or LaP0 4 in a liquid.
  • the stage of manufacturing 506 the second coating on basis of the sol-gel technology may comprise the stage of obtaining a solution of a first material in water.
  • the first material is one of a group of compounds formed by
  • Rl, R2 and R3 are hydrolysable alkoxy groups and R4 is selected from the group of C1-C6 linear alkyl groups, hydrolysable alkoxy groups and a phenyl group, or Rl, R2 and R3 are individually selected from -OCH 3 and -OC 2 H 5 and R4 is selected from -CH 3 , -C 2 H 5 , - OCH 3 , -OC 2 H 5 and a phenyl group.
  • any reference signs placed between parentheses shall not be construed as limiting the claim.
  • Use of the verb "comprise” and its conjugations does not exclude the presence of elements or steps other than those stated in a claim.
  • the article “a” or “an” preceding an element does not exclude the presence of a plurality of such elements.
  • several of these means may be embodied by one and the same item or being distributed over several items. The mere fact that certain measures are recited in mutually different dependent claims does not indicate that a combination of these measures cannot be used to advantage.

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Abstract

A coated luminescent particle 100, a luminescent converter element, a light source, a luminaire and a method of manufacturing coating luminescent particles are provided. The coated luminescent particle 100 comprises a luminescent particle 102, a first coating layer 104 and a second coating layer 106. The luminescent particle 102 comprises luminescent material for absorbing light in a first spectral range and for converting the absorbed light towards light of a second spectral range. The luminescent material is sensitive for water. The first coating layer 104 forms a first barrier for water and comprises a metal oxide or a nitride, phosphide, sulfide based coating. The second coating layer 106 forms a second barrier for water and comprises a silicon based polymer or comprises a continuous layer of one of the materials AlPO4, SiO2, Al2O3, and LaPO4. The first coating layer 104 and the second coating layer 106 are light transmitting. The first coating layer 104 encapsulates the luminescent particle and the second coating layer 106 encapsulates the luminescent particle 102 with the first coating layer 104.

Description

A COATED LUMINESCENT PARTICLE, A LUMINESCENT CONVERTER ELEMENT, A LIGHT SOURCE, A LUMINAIRE AND A METHOD OF MANUFACTURING A COATED LUMINESCENT PARTICLE
FIELD OF THE INVENTION
The invention relates to luminescent particles which are coated.
The invention further relates to a method of manufacturing coated luminescent particles.
BACKGROUND OF THE INVENTION
Particular luminescent materials are sensitive for water, which means that the luminescent material reacts with water such that other materials are formed. This may dramatically decrease the performance of a light conversion element which comprises the luminescent material, it may also result in the creation of hazardous and/or toxic fluids or solid materials.
Particular luminescent materials are often used as narrow band light emitters to obtain high quality white light with a relatively high conversion efficiency. Sulfide based phosphors such as calcium sulfide (CaS), strontium sulfide (SrS), calcium selenide sulfide (CaSeS) doped by europium (Eu) are potential candidates to be used for this purpose.
However, these sulfide-based phosphors are particularly sensitive to water and may react to form calcium or strontium hydroxide and sulfide gas. In addition to the decrease in phosphor performance, the release of H2S is also a problem because it is a toxic, flammable and foul- smelling gas. Furthermore, phosphors based on Ca(Se,S) may upon reaction with water also release small amounts of H2Se gas, which is highly toxic. It is therefore needed to protect the phosphor with a coating.
SUMMARY OF THE INVENTION
It is an object of the invention to provide coated luminescent particles comprising a water sensitive luminescent material which are well-protected against the influences of water and which may be manufactured in a relatively efficient way.
A first aspect of the invention provides a coated luminescent particle. A second aspect of the invention provides a luminescent converter element. A third aspect of the invention provides a light source. A fourth aspect of the invention provides a luminaire. A fifth aspect of the invention provides a method of manufacturing coated luminescent particles. Advantageous embodiments are defined in the dependent claims.
A coated luminescent particle in accordance with the first aspect of the invention comprises a luminescent particle, a first coating layer and a second coating layer. The luminescent particle comprises luminescent material which is configured to absorb light in a first spectral range and to convert a portion of the absorbed light towards light of a second spectral range. The luminescent material may be sensitive for water. The first coating layer forms a first barrier for water (around the luminescent particle) and comprises a metal oxide or a nitride, phosphide, sulfide based coating. The second coating layer forms a second barrier for water (around the luminescent particle with the first coating layer) and comprises a silicon based polymer or comprises a continuous layer of one of the materials from the group of AIPO4, S1O2, AI2O3, and LaPC The first coating layer and the second coating layer are light transmitting. The first coating layer encapsulates the luminescent particle and the second coating layer encapsulates the luminescent particle with the first coating layer.
In other words, the luminescent particle is coated with a hybrid coating which comprises at least two layers which both form a barrier for water. In particular, the combination of the two layers provide a good barrier for water and the luminescent material does not deteriorate because of chemical reactions with water and also, during use, the barrier remains its properties because the second coating is relatively scratch resistant.
Because of the water sensitivity of the luminescent particles, it seems to be logical to use coating technologies which do not expose the luminescent material to water or which expose the luminescent material to a very limited degree to water in the coating process. In the field of coating technologies layer deposition techniques (such as atomic layer deposition, chemical vapor deposition or physical vapor deposition) have been suggested to create a water resistant layer of a metal oxide around a water sensitive particle. However, these thin layers of metal oxides (or a coating based on a nitride, phosphide or sulfide) usually have poor scratch resistance such that the luminescent particle coating might be damaged e.g. during production of the phosphor elements or during use. Thus, in order to manufacture a relatively reliable water barrier with such a technology, the layer of metaloxide (or a coating based on a nitride, phosphide or sulfide) must be relatively thick, which leads to relatively high costs.
The inventors have realized that, although the luminescent material is water sensitive, the useable coating technologies are not limited to layer deposition techniques. With a hybrid coating, which comprises two different layers and which may be provided with two different coating technologies, a water barrier of a high quality may be manufactured around a luminescent particle while the manufacturing costs are kept within acceptable limits and specific disadvantages of a single metal oxide layer are overcome. The coated luminescent particles comprise the first thin coating layer of a metal oxide which protects the luminescent material enough for water such that the second coating layer may be
manufactured with a coating technique in which water or other liquids is involved. Such coating techniques in which water is involved are, in general, much cheaper and they provide possibilities to manufacture a mechanically stable coating layer at the outside of the coated luminescent particle. Especially such a mechanically stable coating layer is scratch resistance. The second coating layer according to the invention is manufactured with, for example, a sol-gel technology.
The luminescent material may be sensitive for water. In the context of this document it means that the luminescent material reacts with water such that the luminescent material gets inferior (luminescent) characteristics and/or deteriorates. In general, when the luminescent material reacts with water, new materials are formed and in specific situations such materials may be hazardous or toxic.
The term encapsulate is used in the context of the first coating layer and the second coating layer. When the first coating layer encapsulates the luminescent particles, it means in the context of the invention that the luminescent particle is surrounded by the first coating layer, or, the first coating layer encloses the luminescent particle. However, it is not necessary that the first coating layer is in direct contact with the luminescent material. Other layers may be provided in between the luminescent particle and the first coating layer. The second coating layer encapsulates the luminescent particles that are provided with the first coating layer. Thus, as well as the luminescent particle and the first coating layer are surrounded by or the second coating layer - in other words, the second coating layer encloses the first coating layer and the luminescent particle. However, it is not necessary that the second coating layer is directly applied on top of the first coating layer and other layers may be in between the first coating layer and the second coating layer.
The first coating layer and the second coating layer form a barrier for water which means that substantially no water can penetrate through the coating layers. In practical embodiments, it means that it is relatively difficult for water to get through the first coating layer and/or the second coating layer. At least the combination of first coating layer and the second coating layer cannot be penetrated by water. It is to be noted that this relates to the first coating layer and the second coating layer when being in a good condition, which means, when not being damaged. When the respective layers are locally damaged, it is not excluded that the respective layer allows some water to penetrate locally through the respective layers.
The first coating layer and the second coating layer are light transmitting which means that at least a portion of the light, which impinges on the respective layers, is transmitted through the respective layer. Thus, the first layer and the second layer may be fully or partially transparent, or may be translucent. In an embodiment, more than 90% of the light which impinges on the coating layers is transmitted through the coating layers. The first coating layer and/or the second coating layer may be light transmitting because of characteristics of the materials of which the coating layers are made. For example, the coating layer may be made from a material which is transparent, even if the layer is relatively thick. In another embodiment, the first coating layer and/or the second coating layer is thin enough such that the respective layer becomes light transmitting while the material of which the layer is manufactured is not transparent or translucent when manufactured in relatively thick layers.
Examples of metal oxides used in the first coating layer are ZnO, Ti02, A120 or Zr02. Examples of transparent nitrides, phosphides and sulfides used in the first coating layer are TiN, Si3N4, Hf3N4, Zr3N4, InP, GaP or ZnS.
Optionally, the luminescent material comprises sulfide (S) or comprises selenide (Se). There are luminescent materials available which have a light emission spectrum in the green or orange/red spectral range which comprises sulfide and selenide. These materials are often sensitive for water and especially when, during chemical reactions, gasses are formed which comprises sulfide or selenide, toxic and/or hazardous gasses may be formed such as H2S or H2Se gas. The use of the hybrid coating according to invention prevents that these reactions can occur. The luminescent material may also be selected from the groups of orthosilicates or thiogallates. These materials may also react with water which, at least, resulting in a deteriorated luminescent material.
Optionally, the luminescent material comprises at least one of the materials calcium sulfide (CaS), strontium sulfide (SrS), calcium selenide sulfide (CaSeS). These materials are often doped with europium (Eu) to obtain their luminescent character. The materials of this optional embodiment have a light emission spectrum the in the red spectral range and have a light emission spectrum which is relatively narrow (Full Width Half Maximum value of light emission spectrum smaller than 100 nanometer, and optionally, smaller than 60 nanometer). These materials are advantageous to use obtain high quality white light with a relatively high conversion efficiency.
Optionally, a diameter of the luminescent particle is smaller than 200 micrometer. If the luminescent particle is small enough, it has a relatively large surface area and, thus, a relatively large area on which light may impinge and, thus, a relatively large amount of light may be absorbed for conversion towards light of the second spectral range. The diameter of the particle is defined as the maximum of all intersectional distances of the all possible imaginary lines that intersect with the particle. In other specific embodiments, it might be advantageous to have a luminescent particle that is large enough such that the light of the first spectral range (which is the light that is absorbed by the luminescent particle) is not able to partially transmit through the luminescent particle, which means that, in use, less light of the first spectral rang is transmitted through a layer which comprises the coated luminescent particles.
Optionally, a thickness of the first coating layer is within the range from 5 to 30 nanometer, and, in another optional embodiment, the thickness of the first coating layers is within the range from 10 to 20 nanometer. If the first coating layer has such a thickness it forms an effective barrier for water and a relatively small amount of material and/or processing time is required to manufacture the layer. The thickness is measured along a line that is oriented perpendicular to the first coating layer.
Optionally, a thickness of the second coating layer is within the range from 30 to 80 nanometer, and, in another optional embodiment, the thickness of the second coating layer is within the range from 40 to 60 nanometer. If the second coating layer has such a thickness it forms an effective barrier for water and a relatively small amount of material and/or processing time is required to manufacture the layer. The thickness is measured along a line that is oriented perpendicular to the second coating layer.
Optionally, the coated luminescent particle further comprises a third coating layer being interposed between the first coating layer and the second coating layer. The third coating layer is one of a metal oxide layer, a layer of a silicone based polymer, or a continuous layer of one of the materials form the group of A1P04, Si02, A120 , and LaP04. The third coating layer is light transmitting and forms a barrier for water. Thus, in other words, the hybrid coating around the luminescent particles comprises an additional coating layer which has characteristics that are similar to the first coating layer and/or the second coating layer. The invention is not limited to hybrid coatings with two or three layer also more than three layers may be used. Furthermore, the third coating layer is in between the first coating layer and the second coating layer, but is not necessarily in direct contact with the first coating layer and/or the second coating layer. More layers may be in between the first coating layer and the second coating layer, and, thus, in between the first coating layer and the third coating layer and/or in between the second coating layer and the third coating layer. The coated luminescent particles of this optional embodiment are better protected against water by means of the three coating layers.
Optionally, the Silicon based polymer is obtained from a material from a
group of compounds that is formed by
Figure imgf000008_0001
, wherein a) Rl, R2 and R3 are hydrolysable alkoxy groups and R4 is selected from the group of C1-C6 linear alkyl groups, hydrolysable alkoxy groups and a phenyl group, or b) Rl, R2 andR3 are individually selected from -OCH3 and -OC2H5 and R4 is selected from -C¾, -C2H5, -OCH3, -OC2H5 and a phenyl group. When the Silicon based polymer is obtained from these materials, a good water barrier may be manufactured as a relatively thin layer around the luminescent particle which comprises already the first coating layer.
Optionally, the second coating layer is manufactured by a sol-gel based technology, which is a relatively efficient and effective solution or manufacturing a coating layer based on the above discussed materials.
Optionally, the silicone based polymer is obtained from a material from the group of:
Tetramethoxysilane
Figure imgf000008_0002
Tetraethoxysilane:
OCH3
HSC— " Si—™»OCH3 trimethoxy(methyl)silane: GC H5 HgC Si 0¾Hs triethoxy(methyl)silane: » f¾
The materials of this optional embodiment are advantageous materials to manufacture a good water barrier in a relatively thin layer around a particle with a sol-gel based technology.
According to a second aspect of the invention, a luminescent converter is provided which comprises coated luminescent particles according to the first aspect of the invention and comprises a binder for binding the coated luminescent particles in the luminescent converter element. The binder is, for example, matrix polymer such as, for example, polymethyl methacrylate (PMMA), polyethylene terephthalate (PET), polyethylene naphthalate (PEN), polycarbonate (PC) , a silicone material or a glass material.
The luminescent converter according to the second aspect of the invention provides the same benefits as the coated luminescent particle according to the first aspect of the invention and has similar embodiments with similar effects as the corresponding embodiments of the coated luminescent particle.
According to a third aspect of the invention, a light source is provided which comprises a light emitter for emitting a light emission. The light emission at least comprises light in the first spectral range. The light source further comprises a luminescent converter element according to the second aspect of the invention. The luminescent converter element is arranged in the light source such that it receives, light emitted by the light emitter. The luminescent converter element may be provided directly on top of a light emitting surface of the light emitter (when the light emitter is in operation). In other embodiments a gap filled with a light transmitting material may be presented in between a surface of the light emitter, which emits the light in operation, and the luminescent converter element. The gap may have a thickness of one or two millimeters and the gap may have a thickness in the order of one or more centimeters. The first configuration is termed the vicinity configuration in which the luminescent converter element is in the vicinity of the light emitting element, and the second configuration is termed the remote configuration. The thickness of the gap is measured along the shortest line from the light emitting surface of the light emitter towards the luminescent converter element. It is further noted that the light rays emitted by the light emitter may also follow a non-straight optical path towards the luminescent converter element and the optical path may be bended by, for example, light guides, lenses, etc., and the light rays may be reflected by, for example, mirrors, etc.
The light source according to the third aspect of the invention provides the same benefits as the luminescent converter element according to the second aspect of the invention or as the coated luminescent particle according to the first aspect of the invention and has similar embodiments with similar effects as the corresponding embodiments of the particle or the element.
According to a fourth aspect of the invention, a luminaire is provided which comprises coated luminescent particles according to the first aspect of the invention, or a luminescent converter according to the second aspect of the invention or a light source according to the third aspect of the invention. The luminaire according to the fourth aspect of the invention provides the same benefits as the light source, the luminescent converter element, and the coated luminescent particle according to the other aspect of the invention and has similar embodiments with similar effects as the corresponding embodiments of the particle, the element or the light source.
According to a fifth aspect of the invention, a method of manufacturing coated luminescent particles is provided. The method comprises the stages of: i) providing luminescent particles of a luminescent material, the luminescent particles are configured to absorb light in a first spectral range and to convert a portion of the absorbed light towards light of a second spectral range, the luminescent material is water sensitive, b) depositing a first coating layer of a metal oxide around the luminescent particles, c) manufacturing a second coating layer around the luminescent particles with the first coating layer by means of a sol-gel technology or with a nanoparticle suspension technology. The basis of the sol-gel comprises a silicic acid ester (which is a material with a central Silicon atom). The nanoparticles suspension technology uses a suspension of A1P04, Si02, A120 , and LaP04 in a liquid.
In particular, by manufacturing the second coating layer around the luminescent particles which comprises the first coating layer, a better water resistant luminescent particles is provide which is scratch resistant and which is manufactured at relatively low manufacturing costs.
The method according to the fifth aspect of the invention provides the same benefits as the coated luminescent particle according to the first aspect of the invention and has similar embodiments with similar effects as the corresponding embodiments of the particle. Optionally, the stage of depositing a first coating layer of a metal oxide around the luminescent particles may be executed by means of a chemical vapor deposition, a physical vapor deposition or an atomic layer deposition technology.
Optionally, the stage of manufacturing a second coating layer comprises the stage of obtaining a solution of a first material in water. The first material is one of a group of compounds formed by
Figure imgf000011_0001
wherein a) Rl, R2 andR3 are hydrolysable alkoxy groups and R4 is selected from the group of C1-C6 linear alkyl groups, hydrolysable alkoxy groups and a phenyl group, or b) Rl, R2 and R3 are individually selected from -OCH3 and -OC2H5 and R4 is selected from -CH3, - C2H5, -OCH3, -OC2H5 and a phenyl group.
These and other aspects of the invention are apparent from and will be elucidated with reference to the embodiments described hereinafter.
It will be appreciated by those skilled in the art that two or more of the above- mentioned options, implementations, and/or aspects of the invention may be combined in any way deemed useful.
Modifications and variations of the coated luminescent particles, the luminescent conversion element, the light source, the luminaire and/or the manufacturing method, which correspond to the described modifications and variations of the luminescent coated particle, can be carried out by a person skilled in the art on the basis of the present description.
BRIEF DESCRIPTION OF THE DRAWINGS
In the drawings:
Fig. 1 schematically shows an embodiment of a coated luminescent particle, Fig. 2 schematically shows another embodiment of a coated luminescent particle,
Fig. 3a schematically shows an embodiment of a luminescent element, Fig. 3b schematically shows three embodiments of light sources, Fig. 4a schematically shows another embodiment of a light source,
Fig. 4b schematically shows an embodiment of a luminaire, and Fig. 5 schematically shows an embodiment of a method of manufacturing coated luminescent particles.
It should be noted that items denoted by the same reference numerals in different Figures have the same structural features and the same functions. Where the function and/or structure of such an item have been explained, there is no necessity for repeated explanation thereof in the detailed description.
The Figures are purely diagrammatic and not drawn to scale. Particularly for clarity, some dimensions are exaggerated strongly. DETAILED DESCRIPTION
A first embodiment is shown in Fig. 1. Fig. 1 schematically shows an embodiment of a coated luminescent particle 100. The coated luminescent particle 100 comprises a luminescent particle 102 which is enclosed by a first coating layer 104 and the combination of the luminescent particle 102 and the first coating layer 104 is enclosed by a second coating layer 106.
The luminescent particle 102 comprises luminescent material. The luminescent material is configured to absorb light in a first spectral range and converts a portion of the absorbed light towards light of a second spectral range. In particular, in the context of this invention, the luminescent material is sensitive for water which means that the luminescent material reacts with water such that other compounds are formed and the luminescent material deteriorates and/or disappears.
The luminescent particles has, for example, a light emission spectrum in the green or in the red spectral range and has a light absorption spectrum of which the mean wavelength is lower than the mean wavelength of the light emission spectrum. In an embodiment, the Full Width Half Maximum (FWHM) value of the light emission spectrum is smaller than 100 nanometers. In another embodiment, the FWHM value of the light emission spectrum is smaller than 60 nanometer. In an embodiment, the luminescent material comprises sulfide and/or selenide, and/or the luminescent material may comprises at least one of the materials calciumsulfide, strontiumsulfide, calcium selenide sulfide, or a luminescent material of the groups of orthosilicates or thiogallates. In particular the materials
calciumsulfide, strontiumsulfide, calciumselenidesulfide have a light emission spectrum in the orange/red spectral range.
As shown in Fig. 1, the luminescent particle 102 has a particular diameter d. In an embodiment, the diameter d of the luminescent particle is smaller than 200 micrometer. In another embodiment, the diameter d of the luminescent particle is smaller than 100 micrometer.
The first coating layer 104 is of a metal oxide and the first coating layer 104 is water resistant and forms a barrier for water. The first coating layer 104 may also be a coating based on a nitride, phosphide or sulfide. The material of the first coating layer 104 is, for example, A120 , Zr02, ZnO, or Ti02. The first coating layer 104 is at least light transmitting which means that, when light impinges on the first coating layer 104 at least a portion of the light is transmitted through the first coating layer 104. As indicated Fig. 1, the first coating layer 104 has a particular thickness thl. In an embodiment, the thickness thl of the first coating layer 104 is within a range from 5 nanometer to 30 nanometer. In another embodiment, the thickness thl of the first coating layer 104 is within a range from 10 nanometer to 20 nanometer. In an embodiment, the first coating layer 104 is manufactured by means of a layer deposition technology, such as, for example, atomic layer deposition, chemical vapor deposition or physical vapor deposition.
The second coating layer 106 comprises a Silicon based polymer or the second layer comprises a continuous layer of one of the material from the group of A1P04, Si02, A120 , and LaP04. The second coating layer 106 is light transmitting and forms a barrier for water such, when the second coating layer 106 is not damaged and fully covers the luminescent particle (with first coating layer 104), no water is able to penetrate through the second coating layer 106 towards the first coating layer 104.
As indicated Fig. 1, the second coating layer 106 has a particular thickness th2. In an embodiment, the thickness th2 of the second coating layer 106 is within a range from 30 nanometer to 80 nanometer. In another embodiment, the thickness thl of the first coating layer 104 is within a range from 40 nanometer to 60 nanometer.
In an embodiment, when the second coating layer 106 comprises one of the material from the group of AIPO4, Si02, A120 , and LaP04, the second coating layer 106 is a continuous layer of one of these materials and is obtained from nanoparticles of one of these materials. Forming such a layer from nanoparticle is often performed by forming a suspension of these nanoparticles and mixing the luminescent particle 102 with the first coating layer 104 in such a suspension. Subsequently the mixture is dried and subsequently annealed. In an article "Control of AlP04-nanoparticle coating on LiCo02 by using water or ethanol" of J. Cho et. al, Electrochimica Acta, Volume 50, Issue 20, 25 July 2005, p 4182- 4187, an method is discussed to coat LiCo02 particles with a layer of A1P04. The luminescent particle 102 with the first coating layer 104 may be coated with A1P04 nanoparticles in such a process or a similar process.
In an embodiment, when the second coating layer 106 comprises a Silicon based polymer, the Silicon based polymer is obtained from a material from a group of
compounds having the basis structure of
Figure imgf000014_0001
and wherein Rl, R2 and R3 are hydrolysable alkoxy groups and R4 is selected from the group of C1-C6 linear alkyl groups, hydrolysable alkoxy groups and a phenyl group, orRl, R2 and R3 are individually selected from -OCH3 and -OC2H5 and R4 is selected from -C¾, -C2H5, -OCH3, -OC2H5 and a phenyl group. In another embodiment, the Silicon based polymer is obtained from one of the
following materials:
Figure imgf000014_0002
Figure imgf000014_0003
. These materials are, respectively, named tetramethoxysilane, tetraethoxysilane, trimethoxy(methyl)silane, and triethoxy(methyl)silane.
The above discussed materials which form the basis of the Silicon based polymer of the second coating layer 106 are suitable for use in the sol-gel technology. The sol-gel process is a wet-chemical technique which is used to manufacture materials starting for a colloidal solution (sol) that acts as the precursor of an integrated network (gel) of network polymers.
In one specific optional embodiment, a Silicon based polymer layer, which is manufactured from tetraethoxysilane, is manufactured with the subsequent process: 100 g luminescent particles (with the first coating layer 104) powder is stirred in 1000 ml ethanol (EtOH) with 1 ml tetramethoxysilane for 10 min in a 21 3-neck flask. Then, 150 ml concentrated ammonia ( H3) solution is added. The adding of ammonia results in the forming of water. After ammonia addition, 75 ml tetraethoxysilane in 500 ml EtOH is added trop-wise within 1 hour in the closed system while stirring. Every 15 min the suspension is sonicated for 10 sec. After a stirring time of 3 hours, the suspension is filtered and the luminescent particles (with the first and the second coating layer 104, 106) is washed with EtOH and dried at 200°C for 24 hrs. The tetramethoxysilane (TMOS) acts as a primer, the amount added may be in the range from 0.5 - 10 ml. The amount of tetraethoxysilane (TEOS) added determines the thickness of the second coating layer 106 (which is also a function of the surface area of the luminescent particle 102 with the first coating layer 104). The range for TEOS can be in the range 10 ml to 150 ml (all related to 100 g of luminescent particles powder, 10 wt% EtOH suspension). The sonication process prevents the
luminescent particles 102 with first coating layer 104 from agglomeration during the hydrolysis reaction. The stirring time is not critical in the sense that longer stirring times do not lead to inferior products. If the luminescent particle 102 powder with first coating layer 104 is sensitive towards hydrolysis it may be an option to first add a smaller amount of ammonia and later on the remaining amount. The total amount of ammonia may be in the range 50 - 350 ml (all related to 100 g 100 g of luminescent particles powder, 10 wt% EtOH suspension). It may be an option to increase the reaction speed by heating the suspension during the reaction. As a rule of thumb, 10 Kelvin temperature increase should lead to a doubling of the reaction speed. Another option may be to replace part of the ethanol by other alcohols like methanol or iso-propanol. The same holds for silane ester where part of the ethoxy groups may be replaced by methoxy or e.g.propoxy groups.
In a specific optional embodiment, the first coating layer 104 of A120 is manufactured around the luminescent particles 102 by means of atomic layer deposition. In a plurality of cycles the first coating layer 104 is manufactured until the first coating layer has a required thickness. Initially the luminescent particles 102 are brought into a reactor. The temperature of the reactor is in the range from 50 to 250 degrees Celcius and the temperature of the luminescent particles is kept in the range from 150 to 300 degrees Celcius. A typical value for the reactor temperature is 95 degrees Celcius and a typical temperature at which the luminescent particles are kept is 200 degrees Celcius. The pressure within the reactor is in the range from 10"6 to 10"2 Pascal and has a typical value of 10"4 Pascal. One cycle of the atomic layer deposition comprises TMA (trimethylaluminum) in the reactor for 2 second, followed by 5 seconds of exhaustion, followed by 5 seconds of H20 in the reactor, followed by 10 seconds of exhaustion. The total number of required cycles depends on the required thickness of the first coating layer 102. The contact with water must be as short as possible and, thus, the period of time with H20 in the reactor may be shortened. Instead of H20, ozone may be used. Fig. 2 schematically shows another embodiment of a coated luminescent particle 200. The coated luminescent particle comprises a luminescent particle 102, which has the same characteristics and embodiments as the luminescent particle 102 of Fig. 1, a first coating layer 104, which has the same characteristics and embodiments as the first coating layer 104 of Fig. 1, a third coating layer 202, and a second coating layer 106, which has the same characteristics and embodiments as the second coating layer 106 of Fig. 1. The third coating layer 202 is arranged in between the first coating layer 104 and the second coating layer 106. The third coating layer 202 may comprise a silicone based polymers, or may be a metal oxide layer, or may be continuous layer of one of the materials from the group of AIPO4, S1O2, AI2O3, and LaP04. Possible embodiments of such layers are already discussed in the context of Fig. 1.
Fig. 3a schematically shows an embodiment of a luminescent element 300. A luminescent element comprises a binder material 302 and coated luminescent particles 100. The binder material is, for example, a matrix polymer such as, for example, polymethyl methacrylate (PMMA), Polyethylene terephthalate (PET), Polyethylene naphthalate (PEN) polycarbonate (PC), a silicone based materials, co-polymers, a glass based materials, or combinations thereof. The function of the binder is to keep the coated luminescent particles 100 together and to give a specific shape to the luminescent element 300. The luminescent element may also comprise other luminescent particles or luminescent materials. When other luminescent particles or luminescent materials are used, they may also be mixed in the binder material, or the luminescent element is subdivided in separate volumes which only comprise one specific luminescent material, in other words, the different luminescent materials are separated in space.
Fig. 3b schematically shows three embodiments of light sources 350, 370, 390. The light source 350, 370, 390 each comprise a light emitter 354, which is for example a Light Emitting Diode (LED), an Organic Light Emitting diode (OED) or a laser diode, and comprise a luminescent element 352 in accordance with embodiments of the luminescent element 300 of Fig. 3a. The light emitters emit, for example, blue light, and the coated luminescent particles of the luminescent element 352 absorb a portion of the blue light and convert a portion of the absorbed light into green light, or orange light, or red light. Another portion of the blue light may be transmitted through the luminescent element 352 and may be emitted together with the light emitted by the coated luminescent particles into the ambient of the light sources 350, 370, 390. In light source 350 the luminescent element 352 is directly applied on a light emitting surface of the light emitter 354. In light sources 370 and 390 there is a gap 372, 392 present between the light emitter 354 and the luminescent element 352. The gap is filled with a light transmitting material, such as a gas, a liquid or, for example, a transparent resin. In the light source 370, the luminescent element 352 is arranged in the vicinity of the light emitter 354 and the gap is only a few millimeters thick. In the light source 390, the luminescent element 352 is arranged remote configuration, which means that there is a relatively large distance between the light emitter 354 and the luminescent element 352. The gap 392 has, for example, at least a depth of 1 centimeter. The depth of the gap is measured along the shortest line between the light emitter 354 and the luminescent element 352.
Fig. 4a schematically shows another embodiment of a light source 400. The light source 400 is a retrofit light bulb which comprises a light emitter with a luminescent element 402. The luminescent element 402 has characteristics and embodiments similar to the luminescent element 300 of Fig. 3a. In another embodiment, a retrofit light (discharge) tube (not shown) may be provided with light emitters and luminescent elements which comprise the coated luminescent particles according to the first aspect of the invention.
It is to be noted that the use of the coated luminescent particles is not limited to the use in light sources and/or luminaires. In specific examples, the coated luminescent particles may be used in display devices, in sensors, or in detectors.
Fig. 4b schematically shows an embodiment of a luminaire 450 which comprises coated luminescent particles (not shown) according to the first aspect of the invention, a luminescent element (not shown) according to the second aspect of the invention, or a light source (not shown) according to the third aspect of the invention.
Fig. 5 schematically shows an embodiment of a method 500 of manufacturing coated luminescent particles. The method 500 comprises the steps of: i) providing 502 luminescent particles of a luminescent material, the luminescent particles being configured to absorb light in a first spectral range and to convert a portion of the absorbed light towards light of a second spectral range, the luminescent material is water sensitive, ii) depositing 504 a first coating layer of a metal oxide around the luminescent particles, and iii) manufacturing 506, 510 a second coating layer around the luminescent particles with the first coating layer. The manufacturing of the second coating layer may comprises manufacturing 506 the second coating layer on basis of a sol-gel technology or may alternatively comprise manufacturing 510 the second coating layer with a nanoparticle suspension technology. The basis for the sol-gel of the sol-gel technology is a material which comprises a central Silicon atom (a silicic acid ester). The nanoparticles suspension technology uses a suspension of AIPO4, S1O2, AI2O3, or LaP04 in a liquid.
In an embodiment of the method 500, the stage of manufacturing 506 the second coating on basis of the sol-gel technology may comprise the stage of obtaining a solution of a first material in water. The first material is one of a group of compounds formed by
Figure imgf000018_0001
Wherein Rl, R2 and R3 are hydrolysable alkoxy groups and R4 is selected from the group of C1-C6 linear alkyl groups, hydrolysable alkoxy groups and a phenyl group, or Rl, R2 and R3 are individually selected from -OCH3 and -OC2H5 and R4 is selected from -CH3, -C2H5, - OCH3, -OC2H5 and a phenyl group.
It should be noted that the above-mentioned embodiments illustrate rather than limit the invention, and that those skilled in the art will be able to design many alternative embodiments without departing from the scope of the appended claims.
In the claims, any reference signs placed between parentheses shall not be construed as limiting the claim. Use of the verb "comprise" and its conjugations does not exclude the presence of elements or steps other than those stated in a claim. The article "a" or "an" preceding an element does not exclude the presence of a plurality of such elements. In the device claim enumerating several means, several of these means may be embodied by one and the same item or being distributed over several items. The mere fact that certain measures are recited in mutually different dependent claims does not indicate that a combination of these measures cannot be used to advantage.

Claims

CLAIMS:
1. A coated luminescent particle (100, 200), the coated luminescent particle (100, 200) comprising:
a luminescent particle (102) of a luminescent material, the luminescent material being configured to absorb light in a first spectral range and to convert a portion of the absorbed light towards light of a second spectral range,
a first coating layer (104) forming a first barrier for water, the first coating layer (104) comprises a metal oxide or a nitride, phosphide or sulfide based coating,
a second coating layer (106) forming a second barrier for water, the second coating layer (106) comprising a silicon based polymer or the second coating layer (106) comprising a continuous layer of one of the materials from the group of A1P04, Si02, A120 ,
Figure imgf000019_0001
wherein the first coating layer (104) and the second coating layer (106) are light transmitting, the first coating layer (104) encapsulates the luminescent particle (102) and the second coating layer (106) encapsulates the luminescent particle (102) with the first coating layer (104).
2. A coated luminescent particle (100, 200) according to claim 1, wherein the luminescent material comprises sulfide and/or selenide, or a luminescent material of the groups of orthosilicates or thiogallates.
3. A coated luminescent particle (100, 200) according to claim 2, wherein the luminescent material comprises at least one of the materials calciumsulfide, strontiumsulfide, calciumselenidesulfide.
4. A coated luminescent particle (100, 200) according to claim 1, wherein a diameter (d) of the luminescent particle (102) is smaller than 200 micrometer.
5. A coated luminescent particle (100, 200) according to claim 1, wherein a thickness (thl) of the first coating layer (104) is within the range from 5 nanometer to 30 nanometer.
6. A coated luminescent particle (100, 200) according to claim 1, wherein a thickness (th2) of the second coating layer (106) is within the range from 30 nanometer to 80 nanometer.
7. A coated luminescent particle (100, 200) according to claim 1 further comprising a third coating layer (202) being interposed between the first coating layer (104) and the second coating layer (106), the third coating layer (202) is one of:
a metal oxide layer,
a layer of a silicon based polymer,
a continuous layer of one of the materials from the group of A1P04, Si02,
Figure imgf000020_0001
wherein the third coating layer (202) is light transmitting and forms a barrier for water.
8. A coated luminescent particle (100, 200) according to claim 1, wherein, when the second coating layer (106) comprises a silicon based polymer, the silicon based polymer is obtained from a material from a group of compounds formed by
Figure imgf000020_0002
wherein
Rl, R2 and R3 are hydrolysable alkoxy groups and R4 is selected from the group of C1-C6 linear alkyl groups, hydrolysable alkoxy groups and a phenyl group, or - Rl, R2 and R3 are individually selected from -OCH3 and -OC2H5 and R4 is selected from -CH3, -C2H5, -OCH3, -OC2H5 and a phenyl group.
9. A coated luminescent particle (100, 200) according to claim 8, wherein the silicone based polymer is obtained from a material from the group of tetramethoxysilane, tetraethoxysilane, trimethoxy(methyl)silane and triethoxy(methyl)silane.
10. A coated luminescent particle (100, 200) according to claim 1, wherein, when the second coating layer comprises a continuous layer of one of the materials from the group of AIPO4, S1O2, AI2O3, and LaPC"4, the continuous layer is obtained from nanoparticles of the respective materials.
11. A luminescent converter element (300, 352) comprising:
coated luminescent particles (100, 200) according to any one of the claim 1 to
10, and
a binder (302) for binding the coated luminescent particles (100, 200) in the luminescent converter element (300, 352).
12. A light source (350, 370, 390, 400) comprising:
a light emitter (354) for emitting a light emission, the light emission comprising light in the first spectral range,
- a luminescent converter element (300, 352) according to claim 11 or coated luminescent particles according to claim 1, the luminescent converter element or the coated luminescent particles being arranged to receive light being emitted by the light emitter (354).
13. A luminaire (450) comprising:
- coated luminescent particles (100, 200) according to any one of the claims 1 to
10, or
a luminescent converter (300, 352) according to claim 11, or
a light source (350, 370, 390, 400) according to claim 12.
14. A method (500) of manufacturing coated luminescent particles, the method
(500) comprises the stages:
providing (502) luminescent particles of a luminescent material, the luminescent particles being configured to absorb light in a first spectral range and to convert a portion of the absorbed light towards light of a second spectral range,
- depositing (504) a first coating layer of a metal oxide around the luminescent particles,
manufacturing (506, 510) a second coating layer around the luminescent particles with the first coating layer by means of a sol-gel technology or with a nanoparticle suspension technology, wherein the basis of the sol-gel comprises a silicic acid ester,
and wherein the nanoparticles suspension technology uses a suspension of A1P04, S1O2, A1203, or LaPC>4 in a liquid.
15. A method (500) of manufacturing coating luminescent particles, wherein the stage of manufacturing (506) the second coating layer comprises the stage of obtaining (508) a solution of a first material in water, wherein the first material is one of a group of compounds formed by
Figure imgf000022_0001
wherein
Rl, R2 and R3 are hydrolysable alkoxy groups and R4 is selected from the group of C1-C6 linear alkyl groups, hydrolysable alkoxy groups and a phenyl group, or
Rl, R2 and R3 are individually selected from -OCH3 and -OC2H5 and R4 is selected from -CH3, -C2H5, -OCH3, -OC2H5 and a phenyl group.
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