WHITE LIGHT-EMITTING DEVICE
20170250324 · 2017-08-31
Inventors
Cpc classification
H01L33/504
ELECTRICITY
H01L2924/00012
ELECTRICITY
H01L33/507
ELECTRICITY
H01L2924/00014
ELECTRICITY
C09K11/77348
CHEMISTRY; METALLURGY
H01L2924/00014
ELECTRICITY
H01L2924/00012
ELECTRICITY
H05B33/14
ELECTRICITY
Y02B20/00
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
A white light-emitting device includes a light-emitting element that emits a blue light, and a sealing resin that seals the light-emitting element and that includes a first phosphor and a second phosphor, the first phosphor wavelength-converting a portion of the blue light and emitting a red light, the second phosphor wavelength-converting a portion of the blue light and emitting a green light. The white light-emitting device emits a white light by mixing the blue, red and green lights. The sealing resin further includes a third phosphor that wavelength-converts a portion of the blue light, emits a light in a same color gamut as the first or second phosphor, and has a higher light conversion efficiency than the first or second phosphor. The third phosphor is included in the sealing resin at an additive amount less than an amount that causes a change in a spectrum of the white light.
Claims
1. A white light-emitting device, comprising: a light-emitting element that emits a blue light; and a sealing resin that seals the light-emitting element and that comprises a first phosphor and a second phosphor, the first phosphor wavelength-converting a portion of the blue light and emitting a red light, the second phosphor wavelength-converting a portion of the blue light and emitting a green light, wherein the white light-emitting device emits a white light by mixing the blue, red and green lights, wherein the sealing resin further comprises a third phosphor that wavelength-converts a portion of the blue light, emits a light in a same color gamut as the first or second phosphor, and has a higher light conversion efficiency than the first or second phosphor, and wherein the third phosphor is included in the sealing resin at an additive amount less than an amount that causes a change in a spectrum of the white light.
2. The white light-emitting device according to claim 1, wherein an amount of the third phosphor included is 0.2 to 0.6 wt % with respect to a total amount of the first and second phosphors.
3. The white light-emitting device according to claim 1, wherein a total amount of the first, second and third phosphors included is 48 to 56 wt % with respect to the sealing resin.
4. The white light-emitting device according to claim 1, wherein the first phosphor comprises K.sub.2SiF.sub.6:Mn, and wherein the second phosphor comprises (Si,Al).sub.6(O,N).sub.8:Eu.
5. The white light-emitting device according to claim 1, wherein the third phosphor comprises a red phosphor with a peak wavelength between 590 nm to 750 nm.
6. The white light-emitting device according to claim 1, wherein the third phosphor comprises a green phosphor with a peak wavelength between 500 nm to 590 nm.
7. The white light-emitting device according to claim 1, wherein the red phosphor comprises CaAlSiN.sub.3:Eu, (Sr,Ca)AlSiN.sub.3:Eu.sup.2+, or (Sr,Ca).sub.2Si.sub.5 N.sub.8:Eu.sup.2+.
8. The white light-emitting device according to claim 1, wherein the green phosphor comprises (Y.sub.3Al.sub.5O.sub.12:Ce) or Lu.sub.3Al.sub.5O.sub.12:Ce.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0030] Next, the present invention will be explained in more detail in conjunction with appended drawings, wherein:
[0031]
[0032]
[0033]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
Embodiment
[0034]
[0035] The entire lead frame 1 or the surface thereof is formed of a conductive material such as Ag, Cu or Al. Alternatively, for example, a substrate having a conductive pattern on the surface may be used instead of the lead frame 1.
[0036] The light-emitting element 2 is provided with, e.g., a chip substrate and a crystal layer including cladding layers and a light-emitting layer sandwiched therebetween, and has n- and p-electrodes (not shown) formed on a surface opposite to the chip substrate. Light emitted from the light-emitting element 2 is blue light in a wavelength range of 430 to 480 nm and has a peak wavelength at around 450 nm.
[0037] The light-emitting element 2 is fixed to the lead frame 1 by a die bonding paste 4, and the n- and p-electrodes of the light-emitting element 2 are connected to the lead frame 1 by wire bonding using wires 5. That is, the light-emitting element 2 is electrically connected to the lead frame 1. The light-emitting element 2 may be of a face-up type as shown in the drawing or of a face-down type with the crystal layer facing downward.
[0038] The sealing resin 3 is formed of a resin material, e.g., a silicone-based resin or an epoxy-based resin, etc.
[0039] The case 6 is formed by injection molding or transfer molding using, e.g., a thermoplastic resin such as polyphthalamide resin, LCP (Liquid Crystal Polymer) or PCT (Polycyclohexylene Dimethylene Terephthalate), or a thermosetting resin such as silicone resin, modified silicone resin, epoxy resin or modified epoxy resin. The case 6 may contain light-reflecting particles of titanium dioxide, etc., to improve light reflectance.
[0040] The first phosphor 7, the second phosphor 8 and the third phosphor 9 are dispersed in the sealing resin 3. The first phosphor 7 is excited by a portion of blue light emitted from the light-emitting element 2 and emits red light. The second phosphor 8 is excited by a portion of blue light emitted from the light-emitting element 2 and emits green light. The third phosphor 9 is excited by a portion of blue light emitted from the light-emitting element 2, emits light in the same color gamut as the light emitted from the first phosphor 7 or the second phosphor 8 and has higher light conversion efficiency than the first phosphor 7 or the second phosphor 8. In the drawing, the first phosphor 7 is depicted by “◯”, the second phosphor 8 by “Δ” and the third phosphor 9 by “□” for descriptive purposes.
[0041] The blue light emitted from the light-emitting element 2, the red light emitted from the first phosphor 7, the green light emitted from the second phosphor 8 and the red or green light emitted from the third phosphor 9 are mixed in the sealing resin 3 and white light as a mixed color is emitted from a light-emitting surface.
[0042] The first phosphor 7 is, e.g., a KSF phosphor (K.sub.2SiF.sub.6:Mn). The KSF phosphor 7 has a narrow emission spectrum with a peak wavelength at around 630 nm, and thus emits high purity red light.
[0043] The second phosphor 8 is, e.g., a β-SiAlON phosphor ((Si,Al).sub.6(O,N).sub.8:Eu). The β-SiAlON phosphor has a narrow emission spectrum with a peak wavelength at around 540 nm, and thus emits high purity green light.
[0044] The third phosphor 9 is a red phosphor with a peak wavelength between 590 nm to 750 nm or a green phosphor with a peak wavelength between 500 nm to 590 nm.
[0045] The red phosphor used as the third phosphor 9 is preferably a CASN phosphor, a SCASN phosphor ((Sr,Ca)AlSiN.sub.3:Eu.sup.2+), or (Sr,Ca).sub.2Si.sub.5N.sub.8:Eu.sup.2+.
[0046] The green phosphor used as the third phosphor 9 is preferably a YAG phosphor (Y.sub.3Al.sub.5O.sub.12:Ce), or a LuAG phosphor (Lu.sub.3Al.sub.5O.sub.12:Ce).
[0047] The combined content of the first phosphor 7, the second phosphor 8 and the third phosphor 9 contained in the sealing resin 3 is 48 to 56 wt % of the sealing resin 3. The reason is as follows: when the combined amount of the first to third phosphors 7 to 9 is less than 48 wt %, the absolute amount of the phosphors in the sealing resin 3 is small and chromaticity of white light thus changes. On the other hand, when the combined amount of the first to third phosphors 7 to 9 is more than 56 wt %, the concentration of phosphors in the sealing resin 3 is increased and viscosity of the sealing resin 3 is thus increased.
[0048] The amount of the third phosphor 9 contained in the sealing resin 3 is less than the amount causing a change in the emission spectrum of white light. The amount of the third phosphor 9 is 0.2 to 0.6 wt % of the combined amount of the first phosphor 7, the second phosphor 8 and the third phosphor 9. By configuring such that the sealing resin 3 containing the first and second phosphors 7 and 8 further contains the third phosphor 9 so that the amount of the third phosphor 9 is less than the amount causing a change in the emission spectrum of white light, brightness of red or green light emitted from the first phosphor 7 or the second phosphor 8 is intensified and the amount of the first phosphor 7 or the second phosphor 8 contained in the sealing resin 3 thus can be reduced without a decrease in light emission efficiency as compared to when using only the first and second phosphors 7 and 8.
[0049] The reason why the amount of the third phosphor 9 is 0.2 to 0.6 wt % of the combined amount of the first, second and third phosphors 7, 8 and 9 is as follows: when the amount of the third phosphor 9 is less than 0.2 wt %, the third phosphor 9 does not provide light emission required to intensify the brightness of the red or green light emitted from the first phosphor 7 or the second phosphor 8 and it is not possible to reduce the amount of the first phosphor 7 or the second phosphor 8 in the sealing resin 3. On the other hand, when the amount of the third phosphor 9 is more than 0.6 wt %, the spectrum of white light changes and this causes a variation in chromaticity of white light.
[0050] Also, the third phosphor 9 has higher light conversion efficiency than the first and second phosphors 7 and 8 and hence more blue light from the light-emitting element 2 is absorbed. Therefore, a luminous flux of the white light-emitting device 10 can be improved by reducing loss due to reflection.
EXAMPLES
[0051] Next, Examples of the invention will be described.
[0052] The light-emitting element 2 with an emission peak wavelength of 450 nm was mounted on the lead frame 1 provided inside the recessed portion 6A of the case 6 and was then sealed with the sealing resin 3 formed of a silicone-based resin containing a KSF phosphor as the first phosphor 7, a β-SiAlON phosphor as the second phosphor 8 and a SCASN phosphor as the third phosphor 9, thereby obtaining the white light-emitting device 10.
[0053] The SCASN phosphor was altered to have a different peak wavelength of 625 nm, 620 nm or 610 nm by changing the ratio of Sr and Ca in (Sr,Ca)AlSiN.sub.3:Eu.sup.2+. The device containing the SCASN phosphor with a peak wavelength of 625 nm was obtained as Example 1, the device containing the SCASN phosphor with a peak wavelength of 620 nm was obtained as Example 2, and the device containing the SCASN phosphor with a peak wavelength of 610 nm was obtained as Example 3.
[0054] Using the sealing resin 3 containing a KSF phosphor as the first phosphor 7, a β-SiAlON phosphor as the second phosphor 8 and YAG as the third phosphor 9, the white light-emitting device 10 as Example 4 was also made in the same manner as Examples 1 to 3.
[0055] Meanwhile, using the sealing resin 3 containing a KSF phosphor as the first phosphor 7 and a β-SiAlON phosphor as the second phosphor 8 but not containing the third phosphor, the white light-emitting device 10 as Comparative Example was made in the same manner as Examples 1 to 3.
[0056] Table 1 shows the combination of phosphors, the total concentration of phosphors, the percentage of the first phosphor, the percentage of the second phosphor and the percentage of the third phosphor in Examples 1 to 4 and Comparative Example.
TABLE-US-00001 TABLE 1 Total concen- Percent- Percent- Percent- tration age age age Combi- of of first of second of third nation phos- phos- phos- phos- of phosphors phors phor phor phor Example β-SiAlON + 52.5 wt % 81.6 wt % 18 wt % 0.4 wt % 1 KSF + SCASN625 nm Example β-SiAlON + 52.5 wt % 82.6 wt % 17 wt % 0.4 wt % 2 KSF + SCASN620 nm Example β-SiAlON + 52.5 wt % 82.6 wt % 17 wt % 0.4 wt % 3 KSF + SCASN610 nm Example β-SiAlON + 54.5 wt % 84.6 wt % 15 wt % 0.4 wt % 4 KSF + YAG Compar- β-SiAlON + 57.0 wt % 84 wt % 16 wt % — ative KSF Example
As obvious from Table 1, in Comparative Example using the KSF phosphor as the first phosphor 7 and the β-SiAlON phosphor as the second phosphor 8 but not using the third phosphor, the percentage of the first phosphor 7 needed to be increased to 84 wt % in order to obtain the white light-emitting device 10 having predetermined characteristics, which results in that the total concentration of phosphors in the sealing resin 3 was increased to 57.0 wt %.
[0057] In contrast, in all of Examples 1 to 3 in which the amount of the SCASN phosphor as the third phosphor 9 was 0.4 wt % of the combined amount of the first, second and third phosphors 7, 8 and 9, it was possible to reduce the percentage of the first phosphor 7, which results in that the total concentration of phosphors in the sealing resin 3 was reduced to 52.5 wt %.
[0058] Meanwhile, in Example 4 in which the amount of the YAG phosphor as the third phosphor 9 was 0.4 wt % of the combined amount of the first, second and third phosphors 7, 8 and 9, it was possible to reduce the percentage of the second phosphor, which results in that the total concentration of phosphors in the sealing resin 3 was reduced to 54.5 wt %.
[0059] Based on the above result, by configuring such that the sealing resin 3 containing the first and second phosphors 7 and 8 further contains the third phosphor 9 having higher light conversion efficiency than the first and second phosphors 7 and 8 and emitting light in the same color gamut as the light emitted from the first phosphor 7 or the second phosphor 8 so that the amount of the third phosphor 9 is less than the amount causing a change in the emission spectrum of white light, the amount of the first phosphor 7 or the second phosphor 8 contained in the sealing resin 3 can be reduced without a decrease in light emission efficiency as compared to when using only the first and second phosphors 7 and 8. Therefore, it is possible to suppress an increase in viscosity of the sealing resin 3.
[0060]
[0061]
[0062] When a red phosphor is selected as the third phosphor 9 as is in Examples 1 to 3, there is substantially no difference in emission spectral position as shown in
[0063]
Effects of the Embodiment
[0064] In the present embodiment, by configuring such that the sealing resin 3 containing the first and second phosphors 7 and 8 further contains the third phosphor 9 having higher light conversion efficiency than the first and second phosphors 7 and 8 and emitting light in the same color gamut as the light emitted from the first phosphor 7 or the second phosphor 8 so that the amount of the third phosphor 9 is less than the amount causing a change in the emission spectrum of white light, it is possible to prevent a change in emission spectrum and also possible to improve the luminous flux while maintaining the appropriate viscosity of the sealing resin.
[0065] The invention is not intended to be limited to the embodiment and the various kinds of modifications can be implemented without departing from the gist of the invention.
[0066] In addition, the invention according to claims is not to be limited to the embodiment. Further, please note that all combinations of the features described in the embodiment are not necessary to solve the problem of the invention.