Bluish green phosphor and light emitting device package including the same
09837584 · 2017-12-05
Assignee
Inventors
- Jae Soo Yoo (Seoul, KR)
- Jin Sung Kim (Seoul, KR)
- Jong Woo Yoo (Seoul, KR)
- Ju A Yoo (Seoul, KR)
- Seong Wook Lee (Seoul, KR)
Cpc classification
H01L33/504
ELECTRICITY
C09K11/77348
CHEMISTRY; METALLURGY
International classification
Abstract
Embodiments of the present invention provide a bluish green phosphor represented by Formula 1 below. In particular, the bluish green phosphor and a light emitting device package including the same may have improved luminescence characteristics and properties due to influence of cations and anions included in a composition formula:
A.sub.aB.sub.bO.sub.cN.sub.dG.sub.eD.sub.fE.sub.g:RE.sub.h [Formula 1] wherein A is at least one selected from the group consisting of Be, Mg, Ca, Sr, Ba and Ra elements, B is at least one selected from the group consisting of Si, Ge and Sn elements, G is any one of C, Cl, F and Br elements, D is one element or a mixture type of two or more elements selected from Li, Na and K, E is at least one selected from the group consisting of P, As, Bi, Sc, Y and Lu, RE is at least one selected from the group consisting of Eu, Ce, Sm, Er, Yb, Dy, Gd, Tm, Lu, Pr, Nd, Pm and Ho, 0<a≦15, 0<b≦15, 0<c≦15, 0<d≦20, 0<e≦10, 0<f≦6, 0<g≦6, and 0<h≦10.
Claims
1. A bluish green phosphor represented by Formula 3 below:
Ba.sub.xMg.sub.ySi.sub.bO.sub.cN.sub.dF.sub.eK.sub.wP.sub.zLi.sub.v:Eu.sub.h [Formula 3] wherein 0.5<x≦15, 0<y≦10, 0.5<x+y≦15, 5≦b≦15, 2≦c≦7, 5≦d≦20, 0<e≦1, 0<h≦1, 0<w≦6, 0<v≦6 and 0<z≦2.
2. The bluish green phosphor according to claim 1, wherein the bluish green phosphor uses a wavelength area of 300 to 500 nm as an excitation source and has a luminescence wavelength of 460 to 540 nm.
3. The bluish green phosphor according to claim 2, wherein a central wavelength of the luminescence wavelength is 490 nm to 500 nm.
4. The bluish green phosphor according to claim 1, wherein the bluish green phosphor particle has a D10 size distribution of 1 μm or more and less than 10 μm at D10, a D50 size distribution of 10 μm or more and less than 30 μm, and a D90 size distribution of 20 μm or more and less than 70 μm.
5. The bluish green phosphor according to claim 1, wherein v satisfies 0<v≦1.4.
6. A light emitting device package comprising: at least one light emitting device emits light of an ultraviolet wavelength area or a blue light wavelength area; and a molding part disposed on the at least one light emitting device and comprising a phosphor composition, wherein the phosphor composition comprises the bluish green phosphor according to claim 1.
Description
DESCRIPTION OF DRAWINGS
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BEST MODE
(12) Reference will now be made in detail to the preferred embodiments of the present invention, examples of which are illustrated in the accompanying drawings.
(13) In the following description of the embodiments, it will be understood that, when each element is referred to as being “on” or “under” another element, it can be “directly” on or under another element or can be “indirectly” formed such that an intervening element is also present. In addition, terms such as “on” or “under” should be understood on the basis of the drawings.
(14) Terms such as “first”, “second”, “upper portion”, and “lower portion” are not intended to imply that the elements so described must have a given physical or logical relation, or sequence, and are used merely for the purpose of distinguishing one element from another element.
(15) In the drawings, the thicknesses of layers and regions are exaggerated, omitted, or schematically illustrated for clarity. In addition, the sizes of elements do not reflect their actual sizes completely.
(16) A bluish green phosphor according to embodiments of the present invention may be represented by Formula 1 below:
A.sub.aB.sub.bO.sub.cN.sub.dG.sub.eD.sub.fE.sub.g:RE.sub.h [Formula 1]
(17) wherein A is at least one selected from the group consisting of Be, Mg, Ca, Sr, Ba and Ra elements, B is at least one selected from the group consisting of Si, Ge and Sn elements, G is any one of C, Cl, F and Br elements, D is one element or a mixture type of two or more elements selected from Li, Na and K, E is at least one selected from the group consisting of P, As, Bi, Sc, Y and Lu, RE is at least one selected from the group consisting of Eu, Ce, Sm, Er, Yb, Dy, Gd, Tm, Lu, Pr, Nd, Pm and Ho, 0<a≦15, 0<b≦15, 0<c≦15, 0<d≦20, 0<e≦10, 0<f≦6, 0<g≦6, and 0<h≦10.
(18) In one embodiment of the bluish green phosphor according to a composition of Formula 1, element A may include Ba.
(19) For example, one embodiment of the bluish green phosphor according to Formula 1 may be represented by a composition formula of Ba.sub.aSi.sub.bO.sub.cN.sub.dF.sub.eK.sub.fP.sub.g:Eu.sub.h. Here, a may satisfy 0<a≦15, b may satisfy 0<b≦15, c may satisfy 0<c≦15, d may satisfy 0<d≦20, e may satisfy 0<e≦10, f may satisfy 0<f≦6, g may satisfy 0<g≦6, and h may satisfy 0<h≦10.
(20) In Formula 1, B may be Si and RE may be Eu.
(21) In addition, in the composition of Formula 1, element A may further include Mg in addition to Ba.
(22) By further adding Mg in addition to Ba to the composition of Formula 1, lattice coupling of a phosphor becomes strong and thereby superior light characteristics may be exhibited.
(23) For example, the bluish green luminescence phosphor according to the composition formula may minimize lattice defects in a single phase crystal and, as such, may accomplish high efficiency and improved temperature stability, by transferring Mg.sup.2+ ions (having an atomic radius of 160 pm), which have a smaller radius than Ba.sup.2+ ions, to lattices of Ba.sup.2+ cathode ion sites.
(24) When element A of Formula 1 includes Ba and Mg, a molar ratio of Ba may be greater than 0 and 15 or less, and a molar ratio of Mg ions may be greater than 0 and 10 or less. For example, a molar ratio of Ba may be greater than 0.5 and 14.5 or less, and a molar ratio of Mg, namely, y, may be greater than 0 and 2 or less.
(25) The bluish green phosphor of the embodiment may be represented by Formula 2 below.
A.sub.aB.sub.bO.sub.cN.sub.dG.sub.eK.sub.wP.sub.z:RE.sub.h [Formula 2]
(26) In Formula 2, A is at least one selected from the group consisting of Be, Mg, Ca, Sr, Ba and Ra elements, B is at least one selected from the group consisting of Si, Ge and Sn elements, G is any one of C, Cl, F and Br elements, RE is at least one selected from the group consisting of Eu, Ce, Sm, Er, Yb, Dy, Gd, Tm, Lu, Pr, Nd, Pm and Ho, 0<a≦15, 0<b≦15, 0<c≦15, 0<d≦20, 0<e≦10, 0<h≦10, 0<w≦6, and 0<z≦2.
(27) In the embodiment of Formula 2, A may include Ba and Mg.
(28) That is, the bluish green phosphor represented by Formula 2 may have improved crystallinity by controlling a composition ratio of Ba and Mg.
(29) In addition, cations (K, Li) and anions (P) may be added to a composition formula of a phosphor including Ba and Mg as a composition of Formula 2, so as to stabilize lattice coupling generated by combination of N ions and O ions as anions, and the phosphor of the embodiment may have improved light properties by optimizing a composition ratio of cations and anions.
(30)
(31)
(32) Referring to
(33) That is, lattice coupling strength of the bluish green phosphor increases due to addition of K and thereby luminous intensity increases. However, when K is included in an amount of greater than 0.6, K may function as impurities and thereby properties of phosphor may be deteriorated.
(34) In the composition of Formula 2, a molar ratio of K, namely, w, may be greater than 0 and 6 or less. Referring to
(35) Here, a molar ratio of P may be greater than 0 and 2 or less and, for example, z may be greater than 0 and 0.2 or less.
(36) Another embodiment of the bluish green phosphor of the embodiment may be represented by a composition of Formula 3 below.
Ba.sub.xMg.sub.yB.sub.bO.sub.cN.sub.dG.sub.eLi.sub.vK.sub.wP.sub.z:RE.sub.h [Formula 3]
(37) In Formula 3, B is at least one selected from the group consisting of Si, Ge and Sn elements, G is any one of C, Cl, F and Br elements, RE is at least one selected from the group consisting of Eu, Ce, Sm, Er, Yb, Dy, Gd, Tm, Lu, Pr, Nd, Pm and Ho, 0<b≦15, 0<c≦15, 0<d≦20, 0<e≦10, 0<h≦10, 0.5<x≦15, 0<y≦10, 0.5<x+y≦15, 0<v≦6, 0<w≦6, and 0<z≦2.
(38) For example, in the embodiment Formula 3, B may be Si and C may be F.
(39) In addition, in Formula 3, the amount of Li may be greater than 0 and 6 or less, and, for example, a molar ratio of Li, namely, v, may be greater than 0 and 1.4 or less. In addition, In particular, v may satisfy 0<v≦1.
(40)
(41)
(42) Referring to
(43) That is, by including Li, lattice coupling strength of a bluish green phosphor becomes strong and thereby luminous intensity increases. However, when Li is included in an amount of greater than 1.4, Li functions as impurities and, as such, properties of the phosphors of the embodiments may be deteriorated.
(44) In addition, in the composition of Formula 3, a molar ratio of K, namely, w, may be greater than 0 and 6 or less, and, for example, w may be 0.2 or more and 0.6 or less.
(45) Here, a molar ratio of P, namely, z, may be greater than 0 and 2 or less, and, for example, z may be greater than 0 and 0.2 or less.
(46) For example, embodiments of the bluish green phosphor represented by the composition of Formula 3 may be
(47) Ba.sub.xMg.sub.ySi.sub.bO.sub.cN.sub.dF.sub.eK.sub.wP.sub.zLi.sub.v:Eu.sub.h where 0.5<x≦15, 0<y≦2, 5≦b≦15, 2≦c≦7, 5≦d≦20, 0<e≦1, and 0<h≦1. In addition, 0<v≦1.4, 0<w≦0.6, and 0<z≦0.2.
(48) By including Li and K as cations and P element as the composition of Formula 3, the bluish green phosphor of the embodiment may have superior light properties and thermal stability.
(49) In Formula 3, a ratio of y, namely, a molar ratio of Mg, to x, namely, a molar ratio of Ba, may satisfy 0<y/x≦2. When a molar ratio of the two elements, namely, y/x, exceeds 2, luminescence characteristics outside the luminescence characteristics of the bluish green phosphor may be exhibited.
(50) For example, a value of y/x may satisfy 0<y/x≦0.4 and, when a value of y/x exceeds 0.4, a reduction width of a luminous intensity value may be increased. In addition, for example, a value of y/x may satisfy 0<y/x≦0.1.
(51) For example, embodiments of the bluish green phosphor represented by Formula 3 may include a variety of embodiments in which the content ratios of Ba and Mg are controlled.
(52) In Formula 3, a molar ratio of Ba, namely, x, may satisfy 0.5<x≦2.5, and a molar ratio of Mg, namely, y, may satisfy 0<y≦2. In particular, a molar ratio of Mg, namely, y, may satisfy 0<y≦0.5. Here, a value of x+y may satisfy 0.5<x+y≦2.5.
(53) In addition, in one embodiment according to Formula 3, a molar ratio of Ba, namely, x, may satisfy 1.5<x≦3.5, a molar ratio of Mg, namely, y, may satisfy 0<y≦2.5. In particular, a molar ratio of Mg, namely, y, may satisfy 0<y≦0.8. Here, a value of x+y may satisfy 1.5<x+y≦3.5.
(54) In addition, in another embodiment according Formula 3, a molar ratio of Ba, namely, x, may satisfy 3.5<x≦7.5, and a molar ratio of Mg, namely, y, may satisfy 0<y≦5. In particular, a molar ratio of Mg, namely, y, may satisfy 0<y≦1.7. A value of x+y may satisfy 3.5<x+y≦7.5.
(55) In addition, in yet another embodiment according to Formula 3, a molar ratio of Ba, namely, x, may satisfy 7.5<x≦14.5, and a molar ratio of Mg, namely, y, may satisfy 0<y≦10. In particular, a molar ratio of Mg, namely, y, may satisfy 0<y≦2.5. Here, a value of x+y may satisfy 7.5<x+y≦14.5.
(56) One embodiment of a bluish green phosphor represented by Formulas 1 to 3 described above may be any one selected from the group consisting of Ba.sub.2.84Mg.sub.0.11Si.sub.5.05O.sub.3.4N.sub.8.33F.sub.0.22K.sub.0.15P.sub.0.05:Eu.sub.0.15, Ba.sub.2.84Mg.sub.0.11Si.sub.5.05O.sub.3.4N.sub.8.33F.sub.0.22K.sub.3P:EU.sub.0.15, Ba.sub.1.84Mg.sub.0.11Si.sub.4.95O.sub.2.29N.sub.8.73F.sub.0.22K.sub.0.1P.sub.0.03:Eu.sub.0.15, Ba.sub.1.84Mg.sub.0.11Si.sub.4.05O.sub.2.20N.sub.8.73F.sub.0.22KP.sub.3:EU.sub.0.15,
(57) Ba.sub.2.84Mg.sub.0.11Si.sub.5.95O.sub.3.4N.sub.8.33F.sub.0.22K.sub.0.5P.sub.0.1Li.sub.0.2:Eu.sub.0.15,
(58) Ba.sub.1.84Mg.sub.0.11Si.sub.4.95O.sub.2.395N.sub.8.6F.sub.0.32 K.sub.0.3P.sub.0.1Li.sub.0.1:Eu.sub.0.15,
(59) Ba.sub.1.84Mg.sub.0.11Si.sub.4.95O.sub.2.395N.sub.8.6F.sub.1.22K.sub.0.3P.sub.0.1Li.sub.0.2:Eu.sub.0.15,
(60) Ba.sub.1.84Mg.sub.0.11Si.sub.4.95O.sub.2.395N.sub.8.6F.sub.0.42 K.sub.0.3P.sub.0.1Li.sub.0.2:Eu.sub.0.15,
(61) Ba.sub.2.79Mg.sub.0.11Si.sub.6O.sub.3.62N.sub.8F.sub.0.66 K.sub.0.465P.sub.0.155Li.sub.0.66:Eu.sub.0.15,
(62) Ba.sub.5.32Mg.sub.0.53Si.sub.12.1O.sub.3.3N.sub.8.2F.sub.0.67 K.sub.0.48P.sub.0.16Li.sub.0.67:Eu.sub.0.15, and
(63) Ba.sub.11.55Mg.sub.1.3Si.sub.2.1O.sub.5.3N.sub.1.4F.sub.0.67K.sub.0.48P.sub.0.16Li.sub.0.67:Eu.sub.0.15.
(64) The bluish green phosphor of the embodiment described above represented by Formulas 1 to 3 may have particle size distribution a D10 particle size distribution of 1 μmor more and less than 10 μm, a D50 particle size distribution of 10 μm or more 30 μm, and a D90 particle size distribution of 20 μm or more 70 μm.
(65)
(66) In particular, at D50, the particle size is 10 μm or more and less than 30 μm and thus may satisfy particle size distribution required in application to LED packages. Meanwhile, when the particle size exceeds 30 μm at D50, precipitation may occur during LED package application.
(67) Accordingly, the bluish green luminescence phosphor of the embodiment may be used as a phosphor suitable for an LED package.
(68)
(69) It can be confirmed that the bluish green phosphor of the embodiment includes Ba, Mg, Si, O, N, F, Eu as illustrated in
(70) The bluish green phosphors of the embodiments described above include Mg.sup.2+ ions having a relatively small ionic radius and, according to a coupling ratio of Ba.sup.2+ and Mg.sup.2+, a central luminescence wavelength and a crystal structure of a synthesized phosphor may be controlled. In addition, a phosphor having excellent luminescence efficiency, and improved temperature stability and reliability may be provided.
(71)
(72) In
(73) For example, in an experiment of
(74) In the bluish green phosphor of the embodiment, some Ba ions may be substituted with Mg ions at cathode ion sites and anions may additionally use halogen ions, to minimize lattice defects which may occur during processing.
(75) Accordingly, as illustrated in
(76) On the other hand, the crystal structure of the Mg.sub.2.95Si.sub.5.95O.sub.3.4N.sub.8.33F.sub.0.22:Eu.sub.0.15 phosphor of
(77) Accordingly, it can be confirmed that the bluish green phosphor of the embodiment may realize maximum luminescence strength when Mg ions are included in an amount of less than 15% and exhibits improved crystallinity when cations and anions are added.
(78) A method of preparing the bluish green phosphor of the embodiment may include: (1) preparing a starting salt for phosphor preparation by mixing after quantifying a metal salt including divalent metal ions of alkaline earth metals; Si ions; and Eu ions; and
(79) (2) heat treating the mixed starting salt at 1000° C. to 1600° C. under a reducing atmosphere controlled with reducing gas of 100 to 1000 sccm.
(80) In step (1) of the method of preparing the phosphor of the embodiment, the metal element as a starting salt to form a bluish green luminescence phosphor lattice may optimize a phosphor structure and characteristics by combining elements having different ionic radii among divalent metal ions of alkaline earth metals.
(81) Accordingly, the divalent metal ions of alkaline earth metals preferably includes only Ba.sup.2+ ions, or Mg.sup.2+ ions having a relatively small ionic radius with the Ba.sup.2+ ions.
(82) According to a coupling ratio of Ba.sup.2+ and Mg.sup.2+, a central luminescence wavelength and a crystal structure of a synthesized phosphor may be improved, and, accordingly, a bluish green phosphor having excellent efficiency, and superior temperature stability and reliability may be provided.
(83) Here, a compound to generate oxides of metal elements is not specifically limited, but may be preferably at least one alkaline earth metal compound selected from alkaline earth metals, which may be easily obtained in a highly pure compound state, may be easily dealt in the atmosphere and are relatively cheap, such as carbonates, oxalates, nitrates, sulfates, acetates, oxides, peroxides, and hydroxides.
(84) For example, the alkaline earth metals may be carbonates, oxalates, oxides, hydroxides and fluorides. In particular, the alkaline earth metal compound may be used in a carbonate type. In addition, a phase of the alkaline earth metals compound is not specifically limited, but may be a powder phase to prepare a phosphor having excellent performance.
(85) In Formula 1 described above, a bluish green phosphor may be prepared when the element A as an alkaline earth metals is used in a molar concentration of greater than 0 and 15 or less, and molar concentration of the element A may be the same as or different from molar concentration of oxygen.
(86) As a starting salt to form the bluish green luminescent phosphor lattice of the embodiment, at least one selected from the group consisting of Si, Ge and Sn may be used. For example, a silicon (Si) compound may be used in a molar concentration of greater than 0 and 15 or less. Here, the silicon compound is not specifically limited so long as the silicon compound may be used in a conventional phosphor composition, but the silicon compound may be preferably silicon nitride (Si.sub.3N.sub.4), silicon diimide (Si(NH).sub.2) or silicon oxide (SiO.sub.2) to prepare a high performance phosphor.
(87) In the phosphor having a composition of Formula 1 of the embodiment, the phosphor may be prepared considering a concentration of a nitrogen element according to a molar ratio of a silicon compound corresponding to the element B.
(88) The bluish green phosphor of the embodiment may use at least one selected from the group consisting of Eu, Ce, Sm, Er, Yb, Dy, Gd, Tm and Lu as an activator. For example, as one embodiment, europium (Eu.sup.2+) ions may be mixed in a molar concentration of 0.01 to 10 with a starting salt, with respect to a divalent metal including alkaline earth metals.
(89) In addition, in step (1) of the method of preparing the phosphor of the embodiment, the starting salt may include at least one flux selected from the group consisting of NH.sub.4Cl, KCl, MgCl.sub.2, SrCl.sub.2, BaCl.sub.2, BaF.sub.2, SrF.sub.2, CaF.sub.2, NH.sub.4F, H.sub.3BO.sub.3, K.sub.3PO.sub.4 and KNO.sub.3.
(90) The flux may be included in an amount of 1 wt % or more and less than 10 wt % based on the total mass of the starting salt.
(91) Here, when the flux is included in an amount of 1 wt %, each compound is not sufficiently mixed and thereby reaction may be incompletely terminated, and, when the flux is included in an amount of 10 wt % or more, the flux functions as impurities in phosphors and thereby it is difficult to clean after reaction.
(92) Subsequently, in step (2), the mixed starting salt may be heat treated at a sintering temperature of 1000° C. to 1600° C. under a reducing gas atmosphere supplied at a flow rate of 100 sccm to 1000 sccm.
(93) Here, coloring efficiency is reduced when the sintering temperature is less than 1000° C., and color purity is reduced when the sintering temperature exceeds 1600° C. and, as such, a high quality phosphor may not be produced.
(94) In step (2), the reducing gas atmosphere may be a reducing gas atmosphere formed by mixing nitrogen and hydrogen, and may be formed at normal pressure. For example, the mixed gas may be made of nitrogen and hydrogen in a mixing ratio of 95:5 to 90:10, In particular, sintering time depends on sintering temperature and a supply rate of the mixed gas, and coloring and efficiency of the phosphor may be controlled.
(95) The preparation method may used in Formula 1 as well as Formula 2, but cations and anion added during a material addition process may be different in the formulas.
(96) The bluish green phosphors having the composition formulas of Formulas 1 to 3 may be applied to a light emitting device package emitting white light due to light emission characteristics equal or superior to conventional phosphors and excellent temperature characteristics, by optimally combining ingredients of cations and anions in a SiON-based phosphor and optimizing a composition ratio thereof.
(97) Hereinafter, one embodiment of a light emitting device package including the bluish green phosphor of the embodiment described above will be described in conjunction with figures.
(98) One embodiment of a light emitting device package may include at least one light emitting device, and a molding part disposed on the at least one light emitting device and including a phosphor composition, wherein the phosphor composition may include the bluish green phosphor in the embodiment described above.
(99)
(100) In
(101) The package body 100 may be formed including a silicone material, a synthetic resin material, or a metal material, and may be made of a ceramic material having superior thermal conductivity.
(102) The package body 100 may include a lead frame (not shown) to electrically connect to a light emitting device. When a lead frame is formed in the package body 100, the lead frame may be made of a conductive material such as copper and the like, and, for example, may be disposed after plating with gold (Au). The lead frame may reflect light emitted from the light emitting device 104.
(103) In the light emitting device 104, a luminescence diode and the like may be disposed.
(104) In one embodiment of the light emitting device package, at least one light emitting device 104 may be included.
(105) The light emitting device may emit blue light or light in an ultraviolet (UV) wavelength area, and may be used as an excitation light source of a phosphor included in a phosphor layer.
(106) In addition, the light emitting devices may emit light in different wavelength areas when a plurality of light emitting devices is included, and, for example, may include a red light emitting device or a green light emitting device.
(107) The light emitting device 104 may be electrically connected to the package body 100 or the lead frame through wires 105 and 106.
(108) The molding part 108 may be formed in a dome type, and may be disposed on the light emitting device.
(109) The molding part 108 may be disposed in a different shape to control a light emission angle of the light emitting device package. The molding part 108 protects surrounding a light emitting device 104 and may function as a lens changing a path of light emitted from the light emitting device 104.
(110) The molding part 108 may include a resin part, and the resin part may include a mixture including any one of a silicone-based resin, an epoxy-based resin and an acrylic resin, or may include a resin selected from the resins.
(111) The light emitting device package (100) of the embodiment may include the bluish green phosphor in the embodiment described above.
(112) Here, a content of the bluish green phosphor may be controlled according to a desired color coordinates and the bluish green phosphor may be included in 0.1 or more and 99 or less parts by weight based on 100 parts by weight of a silicone resin, an epoxy resin or an encapsulant.
(113) The phosphor composition may further include any one of a green and yellow phosphor, and a red phosphor.
(114) The green phosphor or the yellow phosphor may be (Lu,Gd).sub.3(Al,Ga).sub.5O.sub.12:Ce.sup.3+ or (Y,Gd).sub.3(Al,Ga).sub.5O.sub.12:Ce.sup.3+.
(115) The red phosphor may be (Sr,Ca)AlSiN.sub.3:Eu.sup.2+ or (Sr,Ba,Ca).sub.2Si.sub.5N.sub.8:Eu.sup.2+.
(116) The light emitting device package of the embodiment described above including the bluish green phosphor may emit white light.
(117)
(118) For example, a bluish green phosphor included in the embodiment may have a composition of Formula 3 and may be any one selected from the group consisting of Ba.sub.2.84Mg.sub.0.11Si.sub.5.95O.sub.3.4N.sub.8.33F.sub.0.22K.sub.0.5P.sub.0.1Li.sub.0.2:Eu.sub.0.15,
(119) Ba.sub.2.84Mg.sub.0.11Si.sub.5.9O.sub.3.64N.sub.7.93F.sub.0.67K.sub.0.48P.sub.0.16Li.sub.0.67:Eu.sub.0.15,
(120) Ba.sub.0.84Mg.sub.0.11Si.sub.4.95O.sub.2.395N.sub.8.6F.sub.0.32 K.sub.0.3P.sub.0.1Li.sub.0.1:Eu.sub.0.15,
(121) Ba.sub.1.84Mg.sub.0.11Si.sub.4.95O.sub.2.395N.sub.8.6F.sub.1.22K.sub.0.3P.sub.0.1Li:Eu.sub.0.15,
(122) Ba.sub.2.79Mg.sub.0.11Si.sub.6O.sub.3.62N.sub.8F.sub.0.66 K.sub.0.465P.sub.0.155Li.sub.0.66:Eu.sub.0.15,
(123) Ba.sub.5.32Mg.sub.0.53Si.sub.12.1O.sub.3.3N.sub.8.2F.sub.0.67 K.sub.0.48P.sub.0.16Li.sub.0.67:Eu.sub.0.15, and
(124) Ba.sub.11.55Mg.sub.1.3Si.sub.2.1O.sub.5.3N.sub.1.4F.sub.0.67K.sub.0.48P.sub.0.16Li.sub.0.67:Eu.sub.0.15.
(125) Referring to
(126) For example, the bluish green phosphor included in the embodiment may have the composition of Formula 3 and may be any one selected from the group consisting of Ba.sub.2.84Mg.sub.0.11Si.sub.5.95O.sub.3.4N.sub.8.33F.sub.0.22K.sub.0.5P.sub.0.1Li.sub.0.2:Eu.sub.0.15,
(127) Ba.sub.2.84Mg.sub.0.11Si.sub.5.9O.sub.3.64N.sub.7.93F.sub.0.67K.sub.0.48P.sub.0.16Li.sub.0.67:Eu.sub.0.15,
(128) Ba.sub.1.84Mg.sub.0.11Si.sub.4.95O.sub.2.395N.sub.8.6F.sub.0.32 K.sub.0.3P.sub.0.1Li.sub.0.1:Eu.sub.0.15,
(129) Ba.sub.1.84Mg.sub.0.11Si.sub.4.95O.sub.2.395N.sub.8.6F.sub.1.22K.sub.0.3P.sub.0.1Li:Eu.sub.0.15,
(130) Ba.sub.2.79Mg.sub.0.11Si.sub.6O.sub.3.62N.sub.8F.sub.0.66 K.sub.0.465P.sub.0.155Li.sub.0.66:Eu.sub.0.15,
(131) Ba.sub.5.32Mg.sub.0.53Si.sub.12.1O.sub.3.3N.sub.8.2F.sub.0.67 K.sub.0.48P.sub.0.16Li.sub.0.67:Eu.sub.0.15, and
(132) Ba.sub.11.55Mg.sub.1.3Si.sub.2.1O.sub.5.3N.sub.1.4F.sub.0.67K.sub.0.48P.sub.0.16Li.sub.0.67:Eu.sub.0.15.
(133) Referring to
(134)
(135) For example, luminous intensity of a white LED device further including a green phosphor and a red phosphor with the bluish green phosphor by the composition of Formula 3 may be improved by approximately 10% while maintaining a color rendering index (CRI) equal to a commercially available white LED device.
(136) Accordingly, the light emitting device package of the embodiment may have dramatically improved color rendering and luminous intensity while suppressing overuse of red phosphor ingredients, and, accordingly, light emitting strength may be increased.
(137) In the light emitting device package of the embodiment, the light emitting device may emit light at blue wavelength area, and may be a 300 to 420 nm UV chip or a 420 to 480 nm blue chip.
(138) The light emitting device emitting UV light or blue light is used as an excitation light source, and the light emitting device may be a GaN light emitting device.
(139) The light emitting device package of the embodiment may include the green or yellow phosphor having a central luminescence wavelength of 510 to 570 nm, the red phosphor having a central luminescence wavelength of 610 to 670 nm, and the bluish green phosphor represented by each of composition formulas of Formulas 1 to 3 in the embodiments described above.
(140) The bluish green phosphor of the embodiment may have a central luminescence wavelength area of 460 to 540 nm and an excitation wavelength of 300 to 490 nm.
(141) For example, when a first embodiment includes a green or yellow phosphor having a central luminescence wavelength of 525 to 535 nm and a red phosphor having a central luminescence wavelength of 625 to 635 nm, a bluish green (BG) phosphor having each of the composition formulas of Formulas 1 to 3 may have a weight ratio as follows:
0 wt %<M<50 wt %
(142) wherein M={mb/(mb+mg+mr)}*100, mb is the weight of the bluish green phosphor, mg is the weight of any one of the green and yellow phosphors, and mr is the weight of the red phosphor.
(143) In addition, when a second embodiment of the light emitting device package includes a green or yellow phosphor having a central luminescence wavelength of 520 to 530 nm and a red phosphor having a central luminescence wavelength of 650 to 665 nm, a bluish green (BG)luminescence phosphor having each of the composition formulas of Formulas 1 to 3 may be included in a weight ratio below:
0 wt %<M<20 wt %
(144) wherein M={mb/(mb+mg+mr)}*100, mb is the weight of the bluish green phosphor, mg is the weight of any one of the green and yellow phosphors, and mr is the weight of the red phosphor.
(145) When a third embodiment of the light emitting device package includes a green or yellow phosphor having a central luminescence wavelength of 535 to 545 nm and a red phosphor having a central luminescence wavelength of 650 to 665 nm, a bluish green (BG) luminescence phosphor having each of composition formulas of Formulas 1 to 3 may be included in a weight ratio below:
0 wt %<M<40 wt %
(146) wherein M={mb/(mb+mg+mr)}*100, mb is the weight of the bluish green phosphor, mg is the weight of any one of the green and yellow phosphors, and mr is the weight of the red phosphor.
(147) In addition, in the third embodiment, when the weight ratio of the bluish green phosphor is 5 wt % to 35 wt %, a color rendering index (CRI) of a light emitting device package may be 90 Ra or more and 99 Ra or less.
(148) By controlling the amount of the bluish green (BG) luminescence phosphor described in each of the first embodiment to third embodiment and using a large amount of bluish green color instead of red color having low luminous efficiency, the embodiment of the light emitting device package may realize a color rendering index (CRI) of 60 Ra or more and 99 Ra or less at a correlated color temperature (CCT) of 2,000 to 10,000 K.
(149) In addition, the light emitting device package of the embodiment may have a light emitting spectrum having peak patterns such as a first peak at 440 to 460 nm, a second peak at 490 to 510 nm, a third peak at 530 to 540 nm and a fourth peak at 650 to 655 nm.
(150) For example, the luminescence spectra illustrated in
(151) For example,
(152) On the other hand, in
(153) For example,
(154) In the embodiment of the light emitting device package described above, a color rendering index (CRI) of 65 or more and 98 or less is maintained at a correlated color temperature (CCT) of 2700 to 6500 K, and improved luminous intensity characteristics may be exhibited.
(155) For example, the embodiment of the light emitting device package includes an LED package which is manufactured in a dispersive type that a green phosphor, a red phosphor and a bluish green luminescence phosphor are dispersed in a light emitting device; a conformal type; or a remote type.
(156) Here,
(157)
(158)
(159) As illustrated in
(160) The light emitting device package of the embodiment described above may be included as a light source of a lighting apparatus.
(161) The light emitting device packages of the embodiments have superior luminance and color rendering, and thereby may be used as a light source in an electronic component selected from the group consisting of camera flashes, laptops, mobile phones, smart phones, back light units for TV, and displays.
(162) Alternatively, the light emitting device packages of the embodiments may be included in headlamps for vehicles, interior lights, outdoor lights, streetlights, electric sign lights, lights for electronic scoreboards, light sources for pharmaceutical purposes, light sources for exhibition areas, agricultural light sources, and the like.
(163) Hereinafter, the present invention will be described in more detail in conjunction with examples below.
(164) Examples below are intended to more particularly explain the present invention and the present invention should not be limited to the examples.
(165) Each of starting salts Such as BaCO.sub.3, Si.sub.3N.sub.4, Eu.sub.2O.sub.3 and the like was quantified and then was put into a ball mill container. Subsequently, the starting salt was ball-milled for 8 to 24 hours using isopropyl alcohol as a solvent and then was dried. Subsequently, a dried starting salt was sintered for 3 hours at 1300□ temperature under a reducing atmosphere in which hydrogen gas was supplied at a flow rate of 100 sccm, resulting in preparation of a phosphor. Here, a flux was used.
(166) Example 1 relates to preparation of a bluish green phosphor represented by a formula of Ba.sub.aSi.sub.bO.sub.cN.sub.dG.sub.e:Eu.sub.h. In the formula, G is any one of C, Cl, F and Br elements, 0<a≦15, 0<b≦15, 0<c≦15, 0<d≦20, 0<e≦10 and 0<h≦10.
(167) In Tables 1 to 4 below, optical characteristics according to element C type and the amount of element C in the formula are summarized.
(168) TABLE-US-00001 TABLE 1 Luminance Central Full width Composition (Brightness, wavelength at half Color Coordinates Ratio 0.01 ≦ e ≦ 0.1 %) (nm) maximum (nm) (Cx, Cy) C = 0.01 Ba.sub.2.9Si.sub.6O.sub.3N.sub.8C.sub.0.01:Eu.sub.0.1 100 495 30 0.068, 0.480 C = 0.1 Ba.sub.2.9Si.sub.6O.sub.3N.sub.8C.sub.0.1:Eu.sub.0.1 97 495 30 0.068, 0.489 C = 1 Ba.sub.2.9Si.sub.6O.sub.3N.sub.8C.sub.1:Eu.sub.0.1 95 495 30 0.068, 0.478 C = 5 Ba.sub.2.9Si.sub.6O.sub.3N.sub.8C.sub.5:Eu.sub.0.1 87 495 31 0.068, 0.477 C = 10 Ba.sub.2.9Si.sub.6O.sub.3N.sub.8C.sub.10:Eu.sub.0.1 70 495 33 0.068, 0.473
(169) TABLE-US-00002 TABLE 2 Luminance Central Full width Composition (Brightness, wavelength at half Color coordinates Ratio 0.01 ≦ e ≦ 0.1 %) (nm) maximum (nm) (Cx, Cy) F = 0.01 Ba.sub.2.9Si.sub.6O.sub.3N.sub.8F.sub.0.01:Eu.sub.0.1 100 495 30 0.068, 0.480 F = 0.1 Ba.sub.2.9Si.sub.6O.sub.3N.sub.8F.sub.0.1:Eu.sub.0.1 99 495 30 0.068, 0.479 F = 1 Ba.sub.2.9Si.sub.6O.sub.3N.sub.8F.sub.1:Eu.sub.0.1 98 496 30 0.069, 0.480 F = 5 Ba.sub.2.9Si.sub.6O.sub.3N.sub.8F.sub.5:Eu.sub.0.1 95 496 30 0.069, 0.478 F = 10 Ba.sub.2.9Si.sub.6O.sub.3N.sub.8F.sub.10:Eu.sub.0.1 92 495 30 0.068, 0.478
(170) TABLE-US-00003 TABLE 3 Luminance Central Full width Composition (Brightness, wavelength at half Color coordinates Ratio 0.01 ≦ e ≦ 0.1 %) (nm) maximum (nm) (Cx, Cy) Cl = 0.01 Ba.sub.2.9Si.sub.6O.sub.3N.sub.8Cl.sub.0.01:Eu.sub.0.1 100 495 30 0.068, 0.480 Cl = 0.1 Ba.sub.2.9Si.sub.6O.sub.3N.sub.8Cl.sub.0.1:Eu.sub.0.1 97 495 30 0.069, 0.479 Cl = 1 Ba.sub.2.9Si.sub.6O.sub.3N.sub.8Cl.sub.1:Eu.sub.0.1 99 496 30 0.069, 0.480 Cl = 5 Ba.sub.2.9Si.sub.6O.sub.3N.sub.8Cl.sub.5:Eu.sub.0.1 97 495 30 0.069, 0.479 Cl = 10 Ba.sub.2.9Si.sub.6O.sub.3N.sub.8Cl.sub.10:Eu.sub.0.1 95 494 30 0.068, 0.479
(171) TABLE-US-00004 TABLE 4 Luminance Central Full width Composition (Brightness, wavelength at half Color coordinates Ratio 0.01 ≦ e ≦ 10 %) (nm) maximum (nm) (Cx, Cy) Br = 0.01 Ba.sub.2.9Si.sub.6O.sub.3N.sub.8Br.sub.0.01:Eu.sub.0.1 100 495 30 0.068, 0.480 Br = 0.1 Ba.sub.2.9Si.sub.6O.sub.3N.sub.8Br.sub.0.1:Eu.sub.0.1 93 495 30 0.068, 0.479 Br = 1 Ba.sub.2.9Si.sub.6O.sub.3N.sub.8Br.sub.1:Eu.sub.0.1 90 494 30 0.069, 0.478 Br = 5 Ba.sub.2.9Si.sub.6O.sub.3N.sub.8Br.sub.5:Eu.sub.0.1 82 492 32 0.067, 0.476 Br = 10 Ba.sub.2.9Si.sub.6O.sub.3N.sub.8Br.sub.10:Eu.sub.0.1 65 491 34 0.066, 0.472
(172) Referring to phosphor property evaluation results of Tables 1 to 4, it can be confirmed that the phosphors of the prepared embodiments use a wavelength of 300 to 500 nm as an excitation source, emit a luminescence wavelength of 460 to 540 nm, and have a central luminescence wavelength of 490 to 500 nm.
(173) Table 5 shows light characteristics of embodiments when, in Ba.sub.aSi.sub.bO.sub.cN.sub.dF.sub.e:Eu.sub.h, satisfies 0<a≦15. In the composition formula, b may satisfy 5≦b≦15, c may satisfy 2≦c≦7, d may satisfy 5≦d≦20, e may satisfy 0<e≦1, and h may satisfy 0<h≦1.
(174) For example, in Examples 1-1 to 1-4, only the amount of Ba is varied and the amounts of the other ingredients are fixed.
(175) TABLE-US-00005 TABLE 5 Central luminescence Luminous Full width at Classification wavelength(nm) intensity half maximum (nm) Example 1-1 495.6 33.3 30.6 Example 1-2 495.6 34.4 30.6 Example 1-3 495.6 34.1 30.6 Example 1-4 495.6 31.3 30.6
(176) Referring to Table 5, it can be confirmed that a bluish green phosphor having superior luminous intensity may be realized when, in the embodiment of the bluish green phosphor, a molar ratio of Ba, namely, a, satisfies 0<a≦15.
(177) Phosphors were prepared in the same manner as in Example 1 except that BaCO.sub.3, MgF.sub.2, Si.sub.3N.sub.4, Eu.sub.2O.sub.3, and K.sub.3PO.sub.4 disclosed in Table 6 below were used.
(178) Properties of the prepared phosphors are summarized in Table 6 below.
(179) Table 6 shows light properties of bluish green phosphors prepared by varying composition ratios of K and P with respect to embodiments represented by Formula 2.
(180) In Table 6, luminous intensity means a luminescence peak area in a luminescence spectrum and may correspond to a measured total light emitting amount of a phosphor.
(181) TABLE-US-00006 TABLE 6 Central luminescence Luminous Full width at Classification wavelength(nm) intensity half maximum (nm) Examples 2-1 493.6 19.0 31.4 Examples 2-2 494.6 30.2 31.4 Examples 2-3 495.6 36 31.0 Examples 2-4 495.6 36.8 31.2 Examples 2-5 496.6 28.7 32.0 Examples 2-6 496.6 29.8 31.4
(182) Embodiments shown in Table 6 may be represented by a composition of Formula 2, and, for example, shows light characteristic values measured after controlling the amounts of K and P and fixing the amounts of the other ingredients in a composition formula of Ba.sub.xMg.sub.ySi.sub.bO.sub.cN.sub.dF.sub.eK.sub.wP.sub.z:Eu.sub.h.
(183) For example, the embodiments of Table 6 may satisfy 0.5<x≦15, 0<y≦10, 0.5<x+y≦15, 5≦b≦15, 2≦c≦7, 5≦d≦20, 0<e≦1, and 0<h≦1 in Ba.sub.xMg.sub.ySi.sub.bO.sub.cN.sub.dF.sub.eK.sub.WP.sub.z:Eu.sub.h.
(184) Referring to Table 6, a molar ratio of K may be greater than 0 and 6 or less, and a molar ratio of P may be greater than 0 and 2 or less in Formula 2.
(185) For example, a molar ratio of K, namely, w, may satisfy 0<w≦6 and, in particular, 0.2≦w≦0.6.
(186)
(187) Referring to Table 6 and
(188) In addition, referring to
(189) As confirmed in Table 6, a bluish green luminescence phosphor having a central luminescence wavelength of 492 to 495 nm was prepared, and, by adding K, lattice coupling of the bluish green phosphor becomes stronger and, as such, the bluish green phosphor of the embodiment may have improved light characteristics and thermal stability.
(190) However, when a molar ratio of K is greater than 6, K may function as impurities in a phosphor composition and, as such, light characteristics may be reduced.
(191) Phosphors were prepared in the same manner as in Example 1, except that BaCO.sub.3, MgF.sub.2, Si.sub.3N.sub.4, Eu.sub.2O.sub.3, K.sub.3PO.sub.4 and LIF disclosed in Table 7 below were used.
(192) Table 7 shows properties of prepared phosphors having a composition ratio of Formula 2.
(193) Table 7 shows light properties of bluish green phosphors in which the amounts of Li and F are varied with respect to embodiments represented by Formula 3.
(194) In Table 7, luminous intensity indicates a luminescence peak area in a luminescence spectrum and may correspond to measured total light emission of a phosphor.
(195) TABLE-US-00007 TABLE 7 Central luminescence Luminous Full width at Classification wavelength (nm) intensity half maximum (nm) Example 3-1 494.6 38.4 31.4 Example 3-2 494.6 39.2 31.4 Example 3-3 495.6 39.6 31.4 Example 3-4 496.6 40.7 31.6 Example 3-5 495.6 37.7 31.4 Example 3-6 494.6 34.7 31.4 Example 3-7 494.6 30.3 31.4 Example 3-8 494.6 25.5 31.4 Example 3-9 494.6 19.2 31.4
(196) Table 7 shows light characteristic values measured after controlling the amount of Li and F in the composition formula represented by Formula 3. The light characteristic values of the embodiments of Table 7 may be measured by controlling the amounts of Li and F and fixing the amounts of the other ingredients.
(197) For example, a composition of Formula 3 as an embodiment of Table 7 may be Ba.sub.xMg.sub.ySi.sub.bO.sub.cN.sub.dF.sub.eK.sub.wP.sub.zLi.sub.v:Eu.sub.h, where 0.5<x≦15, 0<y≦10, 0<x+y≦15, 5≦b≦15, 2≦c≦7, 5≦d≦20, 0<e≦1, 0<h≦1, 0<w≦6, and 0<z≦2.
(198) Referring to Table 7, a molar ratio of Li may be greater than 0 and 6 or less, and a molar ratio of F may be greater than 0 and 6 or less in Formula 3.
(199) For example, a molar ratio of Li, namely, v, may satisfy 0<v≦6, particularly, 0<v≦1.4.
(200)
(201) Referring to Table 7 and
(202) In addition, referring to
(203) As confirmed in Table 7, a bluish green luminescence phosphor having a central luminescence wavelength of 492 to 495 nm, and, by adding Li, lattice coupling of the bluish green phosphor becomes stronger and, as such, the bluish green phosphor of the embodiment may have improved light characteristics and thermal stability.
(204) However, when LiF is included in a molar ratio of greater than 6, LiF functions as impurities in the phosphor composition and, as such, light properties may be deteriorated.
(205)
(206) TABLE-US-00008 TABLE 8 % Tile Particle sizes (μm) 10.00 8.52 20.00 10.81 30.00 12.59 40.00 14.20 50.00 15.81 60.00 17.56 70.00 19.66 80.00 22.53 90.00 22.72 100.00 73.41
(207) From the results, it can be confirmed that the bluish green phosphor according to the present invention has a D10 particle size distribution (PSA) of 1 μm or more and less than 10 μm, a D20 particle size distribution (PSA) of 5 μm or more and less than 15 μm, a D30 particle size distribution (PSA) of 10 μm or more and less than 20 μm, a D40 particle size distribution (PSA) of 10 μm or more and less than 25 μm, a D50 particle size distribution (PSA) of 10 μm or more and less than 30 μm, a D60 particle size distribution (PSA) of 15 μm or more and less than 30 μm, a D70 particle size distribution (PSA) of 15 μm or more and less than 35 μm, a D80 particle size distribution (PSA) of 20 μm or more and less than 40 μm, a D90 particle size distribution (PSA) of 20 μm or more and less than 70 μm, and a D100 particle size distribution (PSA) of 25 μm or more and less than 100 μm.
(208) The bluish green luminescence phosphor of the present invention was analyzed using an energy dispersive spectrometry (EDX) (Thermo, Noran).
(209) As results of EDX analysis, Wt % and At % of ingredients included in the bluish green luminescence phosphor of the present invention are summarized in Table 9 below.
(210) TABLE-US-00009 TABLE 9 Element Wt % Particle sizes (μm) N 3.91 14.81 O 5.2 17.28 F 1.11 3.11 Mg 1.45 3.18 Si 17.2 32.53 Ba 66.1 25.57 Eu 2.12 0.74 K 1.02 1.60 P 0.56 0.55 Li 1.2 0.62
(211) As shown in Table 9, when the bluish green luminescence phosphor of the present invention was quantitatively analyzed through X-ray fluorescence analysis, presence of Ba, Mg, Si, O, N, F, Eu, K, P, Li elements was confirmed. More particularly, it can be confirmed that a phosphor, where 20≦Ba≦35, 1≦Mg≦10, 25≦Si≦45, 10≦O≦20, 10≦N≦20, 1≦F≦10 and 0.1≦Eu≦5 with respect to At % of each element, and a total At % of elements is 100, was prepared.
(212) A phosphor composition included in a light emitting device package as a first embodiment may include a LuAG-based phosphor, namely, (Lu,Gd).sub.3(Al,Ga).sub.5O.sub.12:Ce.sup.3+, having a central luminescence wavelength of 525 to 535 nm as a green phosphor, (Sr,Ca)AlSiN.sub.3:Eu.sup.2+ having a central luminescence wavelength of 625 to 635 nm as a red phosphor, and a bluish green phosphor (BG) according to Formula 3.
(213) In the bluish green phosphor (BG) according to Formula 3, B may be Si, G may be F, and RE may be Eu.
(214) After mixing the green phosphor, the red phosphor and the bluish green phosphor of the embodiment in ratios disclosed in Table 10, the mixture was coated or disposed as a thin layer on a light emitting device emitting ultraviolet or blue light as an excitation source and then was fixed by hardening for 1 hour at 100 to 160° C.
Comparative Examples 1 to 2
(215) Light emitting device packages of comparative examples were manufactured in the same manner as in Examples 3-1 to 3-4, except that phosphors were mixed in ratios disclosed in Table 10 below.
(216) TABLE-US-00010 TABLE 10 Phosphor ratios LuAG-1 (Sr, Ca)AlSiN3-1 Total Classification BG (525 nm to 535 nm) (625 nm to 635 nm) (%) Comparative 0 90 10 100 Example 1 Example 3-1 5 85 10 100 Example 3-2 10 80 10 100 Example 3-3 15 75 10 100 Example 3-4 20 70 10 100 Comparative 25 65 10 100 Example 2
(217) A phosphor composition included in a light emitting device package as a second embodiment may include a LuAG-based phosphor, namely, (Lu,Gd).sub.3(Al,Ga).sub.5O.sub.12:Ce.sup.3+, having a central luminescence wavelength of 520 to 530 nm as a green phosphor, (Sr,Ca)AlSiN.sub.3:Eu.sup.2+ having a central luminescence wavelength of 650 to 665 nm as a red phosphor, and a bluish green phosphor (BG) having a composition of Formula 3.
(218) In the bluish green phosphor (BG) according to Formula 3, B may be Si, G may be F, and RE may be Eu.
(219) After mixing the green phosphor, the red phosphor and the bluish green phosphor in ratios disclosed in Table 11, the mixture was coated or disposed as a thin layer on a light emitting device emitting ultraviolet or blue light as an excitation source and then was fixed by hardening for 1 hour at 100 to 160° C.
Comparative Example 3
(220) A light emitting device package of a comparative example was manufactured in the same manner as in Examples 3-5 to 3-6, except that phosphors were mixed in ratios disclosed in Table 11 below.
(221) TABLE-US-00011 TABLE 11 phosphor ratios LuAG-2 (Sr, Ca)AlSiN3-2 Total Classification BG (520 nm to 530 nm) (650 nm to 665 nm) (%) Comparative 0 90 10 100 Example 3 Example 3-5 5 85 10 100 Example 3-6 10 80 10 100
(222) A phosphor composition included in a light emitting device package as a third embodiment may include a LuAG-based phosphor, namely, (Lu,Gd).sub.3(Al,Ga).sub.5O.sub.12:Ce.sup.3+, having a central luminescence wavelength of 535 to 545 nm as a green phosphor, (Sr,Ca)AlSiN.sub.3:Eu.sup.2+ having a central luminescence wavelength of 650 to 665 nm as a red phosphor, and one embodiment of a bluish green phosphor (BG) having a composition of Formula 3.
(223) In the bluish green phosphor (BG) according to Formula 3, B may be Si, G may be F, and RE may be Eu.
(224) After mixing the green phosphor, the red phosphor and the bluish green phosphor in ratios disclosed in Table 12, the mixture was coated or disposed as a thin layer type on a light emitting device emitting ultraviolet or blue light as an excitation source and then was fixed by hardening for 1 hour at 100 to 160° C.
Comparative Example 4
(225) A light emitting device package of a comparative example was manufactured in the same manner as in Examples 3-7 to 3-10, except that phosphors were mixed in ratios disclosed in Table 12 below.
(226) TABLE-US-00012 TABLE 12 Phosphor ratios LuAG-3 (Sr, Ca)AlSiN3-3 Total Classification BG (535 nm to 545 nm) (650 nm to 665 nm) (%) Comparative 0 90 10 100 Example 4 Example 3-7 5 85 10 100 Example 3-8 10 80 10 100 Example 3-9 15 75 10 100 Example 3-10 20 70 10 100
(227) Color rendering indexes (CRI) of the light emitting device packages emitting white color manufactured above and a commercially available LED device were measured.
(228) Color rendering index (CRI) is a quantitative measure of the ability of a light source to reveal the colors of various objects faithfully in comparison with an ideal light source. The color rendering index is preferably as close as possible to 100. Results are summarized in Tables 13 to 15.
(229) TABLE-US-00013 TABLE 13 Light characteristics of packages Classification CIEx CIEy Lm CRI CCT Comparative 0.3485 0.3521 41.6 84.7 4878 Example 1 Example 3-1 0.3708 0.4068 42.3 86.4 4447 Example 3-2 0.3546 0.3755 40.1 87.5 4767 Example 3-3 0.3653 0.3939 40.8 89.1 4531 Example 3-4 0.3418 0.3681 38.4 94.4 5174 Comparative 0.3837 0.4464 38.2 83.4 4330 Example 2
(230) TABLE-US-00014 TABLE 14 Light characteristics of packages Classification CIEx CIEy Lm CRI CCT Comparative 0.3704 0.3039 22.4 64.9 3620 Example 3 Example 3-5 0.3728 0.3106 23.63 73.6 3610 Example 3-6 0.375 0.3005 24.5 79 3400
(231) TABLE-US-00015 TABLE 15 Light characteristics of packages Classification CIEx CIEy Lm CRI CCT Comparative 0.3425 0.3489 29.2 90.8 5127 Example 4 Example 3-7 0.3539 0.3652 30.5 93.1 4762 Example 3-8 0.3625 0.3725 32.8 95.2 4506 Example 3-9 0.3525 0.3691 29.9 98.5 4813 Example 3-10 0.3418 0.3684 38.4 94.4 5174
(232) As confirmed in Tables 13 to 15, the amount of a bluish green (BG) luminescence phosphor may be controlled per green phosphor and red phosphor luminescence wavelength areas, and, the most preferably, when the bluish green (BG) luminescence phosphor having the composition of Formula 3 is included in an amount of 10 to 15 wt % in the third embodiment, a color rendering index (CRT) of 95 Ra or more and 99 Ra or less is realized and a light emitting device package emitting white light may be provided.
(233) In addition, the light emitting device packages of the embodiments exhibit dramatically increased color rendering index (CRT), when compared to the light emitting device packages manufactured according to conventional green phosphor and red phosphor combinations (Comparative Examples 1 to 4).
(234) The white LED device of the present invention may realize a color rendering index (CRT) of 60 Ra or more and 99 Ra or less at a correlated color temperature (CCT) of 2,000 to 10,000 K by controlling a content of a bluish green phosphor as described in the first embodiment to third embodiment and mixing a large amount of a bluish green, instead of red which lowers luminous efficiency.
(235) Accordingly, a light emitting device package emitting white light using the bluish green phosphor of the embodiment according to the present invention suppresses excessive use of a red phosphor ingredient and reduces efficiency reduction in some of other phosphors by a red phosphor, and thereby luminous intensity is improved and color rendering increases, and, accordingly, luminescence efficiency may be increased.
INDUSTRIAL APPLICABILITY
(236) A bluish green phosphor according to the embodiment of the present invention and a light emitting device package using the same are applicable to a display apparatus, a lighting apparatus and the like and may exhibit improved luminance and color rendering index.