Red light emitting phosphor, method for producing the same and light emitting device package including the same
09982192 ยท 2018-05-29
Assignee
Inventors
Cpc classification
International classification
C09K11/55
CHEMISTRY; METALLURGY
Abstract
Disclosed are a phosphor, in particular, a red light emitting phosphor, a method for producing the same and a light emitting device package including the same. Provided is a red light emitting phosphor emitting light having a main absorption band in a blue wavelength range and a main peak in a red wavelength range, the red light emitting phosphor being represented by the following Formula 1.
(Sr.sub.1xEu.sub.x)Lu.sub.2O.sub.4[Formula 1]
Claims
1. A red light emitting phosphor emitting light having a main absorption band in a blue wavelength range and a main peak in a red wavelength range, the red light emitting 5 phosphor represented by the following Formula 1,
(Sr.sub.1xEu.sub.x)Lu.sub.2O.sub.4[Formula 1] wherein x is 0.001 to 0.1.
2. The red light emitting phosphor according to claim 1, wherein light of the red wavelength range has a peak wavelength of 610 nm to 620 nm.
3. The red light emitting phosphor according to claim 1, wherein the blue wavelength range comprises at least a part of a range of 350 nm to 500 nm.
4. The red light emitting phosphor according to claim 1, wherein x is 0.005 to 0.03.
5. A method for producing a red light emitting phosphor, the method comprising: synthesizing the red light emitting phosphor using Sr.sub.3N.sub.2, SrCO.sub.3, Lu.sub.2O.sub.3 and Eu.sub.2O.sub.3 as a raw material such that the red light emitting phosphor comprises a compound represented by the following Formula 1 in which europium (Eu) is substituted with strontium (Sr), wherein synthesizing the red light emitting phosphor is performed at a pressure of 9 atm or more, and wherein synthesizing the red light emitting phosphor is performed at a temperature of 1,000 C. or higher,
(Sr.sub.1xEu.sub.x)Lu.sub.2O.sub.4,[Formula 1] wherein x is 0.001 to 0.1.
6. The method according to claim 5, wherein the red light emitting phosphor emits light having a main peak in a red wavelength range, and wherein light of the red wavelength range has a peak wavelength of 610 nm to 620 nm.
7. The method according to claim 5, wherein the red light emitting phosphor emits light having a main absorption band in a blue wavelength range, and wherein the blue wavelength range comprises at least a part of a range of 350 nm to 500 nm.
8. The method according to claim 5, wherein x is 0.005 to 0.03.
9. A light emitting device package comprising the phosphor represented by Formula 1 according to claim 1.
Description
DESCRIPTION OF DRAWINGS
(1) The accompanying drawings, which are included to provide a further understanding of the invention, illustrate embodiments of the invention and together with the description serve to explain the principle of the invention.
(2) In the drawings:
(3)
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BEST MODE
(11) Reference will now be made in detail to the preferred embodiments of the present invention, examples of which are illustrated in the accompanying drawings.
(12) However, the present invention allows various modifications and variations and specific embodiments thereof are exemplified with reference to the drawings and will be described in detail. The present invention should not be construed as limited to the embodiments set forth herein and includes modifications, equivalents and substitutions compliant with the spirit or scope of the present invention defined by the appended claims.
(13) It will be understood that when an element such as a layer, area or substrate is referred to as being on another element, it may be directly on the element, or one or more intervening elements may also be present therebetween.
(14) In addition, it will be understood that although terms such as first and second may be used herein to describe elements, components, areas, layers and/or regions, the elements, components, areas, layers and/or regions should not be limited by these terms.
(15) The present invention provides a red light emitting phosphor which emits light having a main absorption band in a blue wavelength range and a main peak in a red wavelength range and is represented by the following Formula 1.
(Sr.sub.1xEu.sub.x)Lu.sub.2O.sub.4[Formula 1]
(16) In this case, light of the red wavelength range may have a central wavelength at 610 nm to 620 nm. That is, the main peak disposed in the red wavelength range is present in a wavelength range of 610 nm to 620 nm.
(17) In addition, the red wavelength range may include at least a part of a range of 620 nm to 800 nm.
(18) Here, the blue wavelength range may include at least a part of a range of 350 nm to 500 nm.
(19) Accordingly, such a red light emitting phosphor is excited by blue light emitted from blue light emitting devices including light emitting diodes (LEDs) and laser diodes (LDs) and may then emit red light.
(20) In addition, such a red light emitting phosphor is excited by near-ultraviolet light and may then emit red light.
(21) In Formula 1, x satisfies 0.001 to 0.1 (0.1% to 10% with respect to Sr). That is, europium (Eu) may be present in an amount of 0.1% to 10% with respect to strontium (Sr).
(22) More specifically, x satisfies 0.005 to 0.03 (0.5% to 3% with respect to Sr). That is, europium (Eu) may be present in an amount of 0.5% to 3% with respect to strontium (Sr).
(23) When a content ratio of europium (Eu) with respect to strontium (Sr) having x defined above is satisfied, the red light emitting phosphor has optimal excitation wavelength, emission wavelength and luminous efficacy.
(24) That is, when x is 0.001 to 0.1, a phosphor which is excited by blue light and emits red light is obtained, but more specifically, when x is 0.005 to 0.03, optimal excitation wavelength, emission wavelength and luminous efficacy are obtained.
(25) As such, the present invention provides a red phosphor which has high photo-conversion efficiency and superior color purity using a near-ultraviolet light emitting device and a blue light emitting device as an excitation source.
(26) A common strontium lutetium oxide (SrLu.sub.2O.sub.4) phosphor substituted by (doped with) europium (Eu) has a structure in which Lu.sup.3+ is substituted by Eu.sup.3+.
(27) That is, generally, when SrLu.sub.2O.sub.4 is substituted by europium (Eu), which is an active ion, Eu is oxidized by oxidation reaction using high-temperature synthesis and is thus present as Eu.sup.3+, which is a stable form, and is substituted by Lu.sup.3+ having an ionic radius similar to Eu.sup.3+ to synthesize SrLu.sub.2O.sub.4:Eu.sup.3+.
(28) For reference, the ionic radius of Eu is 117 pm in the case of the bivalent ion (Eu.sup.2+) and is 94.7 pm in the case of the trivalent ion (Eu.sup.3+). The ionic radius of lutetium (Lu) is 86 pm in the case of the trivalent ion (Lu.sup.3+) and the ionic radius of strontium (Sr) is 118 pm in the case of the bivalent ion (Sr.sup.2+).
(29) Accordingly, ions, such as SrLu.sub.2O.sub.4:Eu.sup.3+, substituted by a trivalent rare earth metal, generally emit light by transition between 4f levels (4f-4f). Representative examples of these ions include Eu.sup.3+, Tb.sup.3+, Sm.sup.3+, Gd.sup.3+, Pr.sup.3+, and Dy.sup.3+.
(30) As such, when the active ion is substituted by a trivalent ion, 4f electrons shielded by 5s and 5p electrons have considerably weak interaction with neighboring ions and thus considerably small crystal field size, the distance deviated from equilibrium location on a configuration coordinate diagram is considerably small.
(31) Accordingly, inherent emission spectrums which do not greatly change according to composition of the matrix are shown in
(32) Accordingly,
(33) SrLu.sub.2O.sub.4:Eu.sup.3+ provides needle-shaped light emission of various peaks resulting from the 4f-4f transition of Eu.sup.3+, which is a trivalent active ion, and is unsuitable as a fluorescent material for continuous light emitting devices such as lights.
(34) In addition, as shown in
(35) Meanwhile, design of active ions causing 4f-5d transition is required in order to design phosphors having an excitation wavelength of 400 nm or more and a strong and wide emission band according to the present invention. Representative examples of active ions include Ce.sup.3+, Eu.sup.2+, Sm.sup.2+, Yb.sup.2+ and the like.
(36) Thus, in the present invention, a europium (Eu) active ion present as a trivalent (Eu.sup.3+) form is reduced into a bivalent cation (Eu.sup.2+) and is substituted in the position of Sr.sup.2+, thereby realizing phosphors providing strong and wide light emission through the 4f-5d transition of Eu.sup.2+.
(37) As described above, generally, when SrLu.sub.2O.sub.4 is substituted by europium (Eu), which is an active ion, Eu is oxidized by oxidation reaction using high-temperature synthesis and is thus present as Eu.sup.3+, which is a stable form, and is substituted by Lu.sup.3+ having an ionic radius similar to Eu.sup.3+ to synthesize SrLu.sub.2O.sub.4:Eu.sup.3+.
(38) However, an oxide-based material is substituted by a nitride-based material upon high-temperature synthesis to maximize prevention of oxidization of the material during synthesis and synthesis is performed at a high pressure to block permeation of oxygen.
(39) Thus, Eu ions are present in a bivalent form by such synthesis and Eu is substituted in the position of Sr having a similar ionic radius thereto, to synthesize SrLu.sub.2O.sub.4:Eu.sup.2+.
(40) The phosphor thus synthesized has a structure in which Eu is substituted in the position of Sr and is the same as the phosphor shown in Formula 1 described above.
(41)
(42) As shown in
(43) In addition, as shown in
(44)
(45) That is, as can be seen from
(46) As described above, the red light emitting phosphor of the present invention represented by Formula 1 or SrLu.sub.2O.sub.4:Eu.sup.2+ can be synthesized by preventing oxidization of Eu ions.
(47) The method for preventing oxidization of Eu.sup.2+ is as follows.
(48) First, synthesis is performed at a relatively high pressure. Synthesis may be performed at a pressure of 9 atm or more.
(49) Second, a nitride-based material is used as the material for phosphor synthesis. The nitride-based material is for example Sr.sub.3N.sub.2.
(50) In addition, at least one of strontium oxide, lutetium oxide and europium oxide may be used.
(51) In addition, the phosphor described above can be synthesized at a temperature of 1,000 C. or higher (at about 1,000 C. to about 1,600 C.) for 3 hours or longer.
(52) Hereinafter, examples will be described in detail.
EXAMPLE
(53) The red light emitting phosphor represented by Formula 1 is synthesized at a high pressure of 9 atm.
(54) In addition, oxide and nitride based materials may be used as materials for the phosphor synthesis. Examples of the materials may be Sr.sub.3N.sub.2, SrCO.sub.3, Lu.sub.2O.sub.3 and Eu.sub.2O.sub.3.
(55) As such, the phosphor described above can be synthesized at 9 atm and at a temperature of 1,450 C. for 3 hours.
(56) As can be seen from
(57) As such, a phosphor substance with a novel composition serving as the phosphor can be manufactured by implementing emission of red light with high efficiency.
(58) As apparent from the foregoing, the SrLu.sub.2O.sub.4:Eu.sup.2+ phosphor causing 4f-5d transition synthesized according to the present invention reduces the active ion and substitutes the same in the position of Sr.sup.2+, thereby providing a phosphor having improved excitation efficiency at a long wavelength of 400 nm or more and emitting red light having a strong and wide band.
(59) The phosphor according to the present invention greatly improves efficiency of light emitting devices using a blue excitation source as a light source, in particular, LEDs (phosphor converted LEDs) using phosphors such as white LEDs using yellow phosphors and blue LEDs, and lighting and display devices using light emitting devices having an emission wavelength of 400 nm or more as excitation light sources.
(60) The red light emitting phosphor according to the present invention is a novel phosphor not developed to date and is used for light emitting devices or display devices.
(61)
(62) A light emitting device 20 is mounted inside a reflection cup 11 formed in a package body 10 and the red light emitting phosphor 41 is provided in a lower part of the light emitting device 20.
(63) In this case, an encapsulation 30 is disposed on the light emitting device 20 in the reflection cup 11 and the phosphor 41 is homogeneously mixed with the encapsulation 30.
(64) In addition, a lens 50 capable of focusing light emitted from the light emitting device 20 may be provided on the encapsulation 30 and the phosphor 41.
(65)
(66) As shown in the drawing, a phosphor layer 40 is separately produced using the red light emitting phosphor to constitute the light emitting device package.
(67) That is, the light emitting device 20 is mounted inside the reflection cup 11 formed in the package body 10 and the encapsulation 30 is disposed in the upper part of the light emitting device 20.
(68) In this case, the phosphor layer 40 separated from the light emitting device 20 is disposed on the encapsulation 30.
(69) Examples in which the red light emitting phosphor is used for the light emitting device package have been described, but the red light emitting phosphor may be used for other display devices such as PDPs, CRTs and FEDs.
(70) Meanwhile, it will be apparent to those skilled in the art that various modifications and variations can be made in the present invention without departing from the spirit or scope of the invention. Thus, it is intended that the present invention cover the modifications and variations of this invention provided they come within the scope of the appended claims and their equivalents.
INDUSTRIAL APPLICABILITY
(71) The phosphor according to the present invention greatly improves efficiency of light emitting devices using a blue excitation source as a light source, in particular, LEDs (phosphor converted LEDs) using phosphors such as white LEDs using yellow phosphors and blue LEDs, and light and display devices using light emitting devices having an emission wavelength of 400 nm or more as excitation light sources.
(72) The red light emitting phosphor according to the present invention is a novel phosphor not developed to date and is used for light emitting devices or display devices.