White Light Emitting Device, Light Bar and Light Apparatus
20220214019 · 2022-07-07
Inventors
- Jinhui ZHANG (Foshan, Guangdong, CN)
- Yikai YUAN (Foshan, Guangdong, CN)
- Long ZHAO (Foshan, Guangdong, CN)
- Chuyi LI (Foshan, Guangdong, CN)
- Cheng LI (Foshan, Guangdong, CN)
Cpc classification
F21V9/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01L33/504
ELECTRICITY
F21S4/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21S4/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A white light emitting device, a light bar and a light apparatus. A relative spectrum of the white light emitting device is ϕ(λ). A relative spectrum of a black body radiation with a corresponding color temperature is S(λ). An area normalization is performed on φ(λ) and S(λ) to convert an equal energy spectrum φ′(λ) of the white light emitting device and an equal energy spectrum S′(λ) of the black body radiation with the corresponding color temperature. A degree of similarity R of the equal energy spectrum of the white light emitting device and the equal energy spectrum of the black body radiation satisfies the following formula:
when λi is 380 nm, λn is 680 nm, R≥85%.
Claims
1. A white light emitting device, wherein a relative spectrum of the white light emitting device is ϕ(λ), and a relative spectrum of a black body radiation with a corresponding color temperature is S(λ), wherein an area normalization is performed on ϕ(λ) and S(λ) to convert an equal energy spectrum ϕ′(λ) of the white light emitting device and an equal energy spectrum S′(λ) of the black body radiation with the corresponding color temperature, and then a degree of similarity R of the equal energy spectrum of the white light emitting device and the equal energy spectrum of the black body radiation satisfies a following formula:
2. The white light emitting device as claimed in claim 1, wherein R≥90% when λi is 430 nm and λn is 650 nm.
3. The white light emitting device as claimed in claim 2, wherein R≥95% when λi is 430 nm and λn is 650 nm.
4. The white light emitting device as claimed in claim 1, wherein R≥80% when λi is 465 nm and λn is 495 nm.
5. The white light emitting device as claimed in claim 1, wherein the white light emitting device emits light when phosphors are excited by a chip with a main emission peak of 380 nm-430 nm, wherein the phosphors are composed of a blue phosphor with a main emission peak of 430 nm-500 nm and a FWHM of 20 nm-100 nm, a green phosphor with a main emission peak of 480 nm-550 nm and a FWHM of 20 nm-80 nm, and a red phosphor with a main emission peak of 600 nm-700 nm and a FWHM of 80 nm-120 nm.
6. The white light emitting device as claimed in claim 5, wherein the blue phosphor is aluminate, chlorophosphate or silicate; the green phosphor is oxynitride, silicate or aluminate; and the red phosphor is nitride, sulfide or fluoride.
7. The white light emitting device as claimed in claim 1, wherein the white light emitting device emits light when phosphors are excited by a chip with a main emission peak of 380 nm-430 nm, wherein the phosphors are composed of a blue phosphor with a main emission peak of 430 nm-500 nm and a FWHM of 20 nm-100 nm, a green phosphor with a main emission peak of 480 nm-550 nm and a FWHM of 20 nm-80 nm, a yellow phosphor with a main emission peak of 540 nm-600 nm and a FWHM of 60 nm-120 nm, and a red phosphor with a main emission peak of 600 nm-700 nm and a FWHM of 80 nm-120 nm.
8. The white light emitting device as claimed in claim 7, wherein the blue phosphor is aluminate, chlorophosphate or silicate; the green phosphor is oxynitride, silicate or aluminate; the yellow phosphor is aluminate, silicate or nitride; and the red phosphor is nitride, sulfide or fluoride.
9. The white light emitting device as claimed in claim 6, wherein the blue phosphor is BaMgAl.sub.10O.sub.17:Eu.sup.2+, BaAl.sub.12O.sub.9:Eu.sup.2+, Sr.sub.5(PO.sub.4).sub.3Cl:Eu.sup.2+, Ba.sub.5(PO.sub.4).sub.3Cl:Eu.sup.2+, RbNa.sub.3(Li.sub.3SiO.sub.4).sub.4:Eu.sup.2+ or MgSr.sub.3Si.sub.2O.sub.8:Eu.sup.2+.
10. The white light emitting device as claimed in claim 6, wherein the green phosphor is SiAlON:Eu.sup.2+, BaSiON.sub.2:Eu.sup.2+, Ba.sub.2SiO.sub.4:Eu.sup.2+ or LuAG.
11. The white light emitting device as claimed in claim 8, wherein the yellow phosphor is Ga-YAG, Sr.sub.2SiO.sub.4:Eu.sup.2+, (BaSr).sub.2SiO.sub.4:Eu.sup.2+ or La.sub.3Si.sub.6N.sub.11:Ce.sup.3+.
12. The white light emitting device as claimed in claim 6, wherein the red phosphor is CaAlSiN.sub.3:Eu.sup.2+, (Ca.sub.1-xSr.sub.x)AlSiN.sub.3:Eu.sup.2+, Ca.sub.2Si.sub.5N.sub.8:Eu.sup.2+, Sr.sub.2Si.sub.5N.sub.8:Eu.sup.2+, Ba.sub.2Si.sub.5N.sub.8:Eu.sup.2+, CaS:Eu.sup.2+ or MgGeF.sub.6:Mn.sup.4+.
13. A light bar, comprising a substrate, wherein at least one white light emitting device as claimed in claim 1 is arranged on the substrate.
14. A light apparatus, comprising a housing, wherein the white light emitting device as claimed in claim 1 is mounted in the housing.
15. A light apparatus, comprising a housing, wherein the light bar as claimed in claim 13 is mounted in the housing.
16. The white light emitting device as claimed in claim 8, wherein the blue phosphor is BaMgAl.sub.10O.sub.17:Eu.sup.2+, BaAl.sub.12O.sub.9:Eu.sup.2+, Sr.sub.5(PO.sub.4).sub.3Cl:Eu.sup.2+, Ba.sub.5(PO.sub.4).sub.3Cl:Eu.sup.2+, RbNa.sub.3(Li.sub.3SiO.sub.4).sub.4:Eu.sup.2+ or MgSr.sub.3Si.sub.2O.sub.8:Eu.sup.2+.
17. The white light emitting device as claimed in claim 8, wherein the green phosphor is SiAlON:Eu.sup.2+, BaSiON.sub.2:Eu.sup.2+, Ba.sub.2SiO.sub.4:Eu.sup.2+ or LuAG.
18. The white light emitting device as claimed in claim 8, wherein the red phosphor is CaAlSiN.sub.3:Eu.sup.2+, (Ca.sub.1-xSr.sub.x)AlSiN.sub.3:Eu.sup.2+, Ca.sub.2Si.sub.5N.sub.8:Eu.sup.2+, Sr.sub.2Si.sub.5N.sub.8:Eu.sup.2+, Ba.sub.2Si.sub.5N.sub.8:Eu.sup.2+, CaS:Eu.sup.2+ or MgGeF.sub.6:Mn.sup.4+.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018]
[0019]
[0020]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0021] Hereinafter, the present disclosure will be further described in detail through specific implementations in conjunction with the accompany drawings. However, a person skilled in the art would understand that the following embodiments are only used to illustrate the present disclosure and should not be regarded as limiting the scope of the present disclosure. If a specific technique or condition is not indicated in the embodiments, the technique or condition shall be considered as a technique or condition described in literature in the field or in accordance with a product specification. Reagents or instruments used without an indication of a manufacturer are all conventional products that are commercially available.
[0022] A white light emitting device is provided in the present disclosure. A relative spectrum of the white light emitting device is ϕ(λ), and a relative spectrum of a black body radiation with the corresponding color temperature is S(λ). An area normalization is performed on ϕ(λ) and S(λ) to convert an equal energy spectrum ϕ′(λ) of the white light emitting device and an equal energy spectrum S′(λ) of the black body radiation with the corresponding color temperature. A degree of similarity R of the equal energy spectrum of the white light emitting device and the equal energy spectrum of the black body radiation satisfy the following formula:
[0023] wherein
[0024] S′ (λ)=S (λ) /k.sub.1
[0025] k.sub.1=Σ.sub.430.sup.650S (λ)
[0026] Φ′ (λ)=Φ (λ) /k.sub.2
[0027] k.sub.2=Σ.sub.430.sup.650Φ (λ)
[0028] R≥85% when λi is 380 nm and λn is 680 nm.
[0029] In some embodiments, R≥90% when λi is 430 nm and λn is 650 nm, and more preferably, R≥95%.
[0030] In some embodiments, R≥80% when λi is 465 nm and λn is 495 nm.
[0031] In some embodiments, the white light of the light emitting device is achieved by combining a blue chip, whose main emission peak is in the range of 380 nm-430 nm, with phosphors. The phosphors have a scheme consisting of three kinds of phosphors or a scheme consisting of four kinds of phosphors. The phosphors are composed of a blue phosphor (having a main emission peak of 430 nm-500 nm and a FWHM of 20 nm-100 nm), a green phosphor (having a main emission peak of 480 nm-550 nm and a FWHM of 20 nm-80 nm) and a red phosphor (having a main emission peak of 600 nm-700 nm and a FWHM of 80 nm-120 nm); or composed of a blue phosphor (having a main emission peak of 430 nm-500 nm and a FWHM of 20 nm-100 nm), a green phosphor (having a main emission peak of 480 nm-550 nm and a FWHM of 20 nm-80 nm), a yellow phosphor (having a main emission peak of 540 nm-600 nm and a FWHM of 60 nm-120 nm) and a red phosphor (having a main emission peak of 600 nm-700 nm and a FWHM of 80 nm-120 nm). wherein the blue phosphor is aluminate, chlorophosphate or silicate, specifically including BaMgAl.sub.10O.sub.17:Eu.sup.2+, BaAl.sub.12O.sub.9:Eu.sup.2+, Sr.sub.5(PO.sub.4).sub.3Cl:Eu.sup.2+, Ba.sub.5(PO.sub.4).sub.3Cl:Eu.sup.2+, RbNa.sub.3(Li.sub.3SiO.sub.4).sub.4:Eu.sup.2+ or MgSr.sub.3Si.sub.2O.sub.8:Eu.sup.2+; the green phosphor is oxynitride, silicate or aluminate, specifically including SiAlON:Eu.sup.2+, BaSiON.sub.2:Eu.sup.2+, Ba.sub.2SiO.sub.4:Eu.sup.2+ or LuAG; the yellow phosphor is aluminate, silicate or nitride, specifically including Ga-YAG, Sr.sub.2SiO.sub.4:Eu.sup.2+, (BaSr).sub.2SiO.sub.4:Eu.sup.2+ or La.sub.3Si.sub.6N.sub.11:Ce.sup.3+; the red phosphor is nitride, sulfide or fluoride, specifically including CaAlSiN.sub.3:Eu.sup.2+, (Ca.sub.1-xSr.sub.x)AlSiN.sub.3:Eu.sup.2+, Ca.sub.2Si.sub.5N.sub.8:Eu.sup.2+, Sr.sub.2Si.sub.5N.sub.8:Eu.sub.2+, Ba.sub.2Si.sub.5N.sub.8:Eu.sup.2+, CaS:Eu.sup.2+ or MgGeF.sub.6:Mn.sup.4+.
[0032] A light bar includes at least one white light emitting device as provided above, and a substrate for mounting and fixing the white light emitting device.
[0033] The white light emitting device or the light bar provided above can be mounted in a housing of a light apparatus and connected with other necessary circuit elements to form the light apparatus.
Embodiments 1-4
[0034] The white light emitting device emits the light when the phosphors are excited by an ultraviolet chip, wherein the phosphors are calculated in parts by weight and is a mixture of 55%-85% BaMgAl.sub.10O.sub.17:Eu.sup.2+, 2%-15% SiAlON:Eu.sup.2+, and 10%-35% (Ca.sub.1-xSr.sub.x)AlSiN.sub.3:Eu.sup.2+.
[0035] The detailed proportions are as shown in Table 1.
TABLE-US-00001 TABLE 1 Phosphors Composition Embodiment 1 Embodiment 2 Embodiment 3 Embodiment 4 Blue phosphor BaMgAl.sub.10O.sub.17:Eu.sup.2+ 55% 65% 75% 85% Green phosphor SiAlON:Eu.sup.2+ 10% 5% 15% 2% Red phosphor (Ca.sub.1−xSr.sub.x)AlSiN.sub.3:Eu.sup.2+ 35% 30% 10% 13%
[0036] The white light emitting device is prepared according to the proportions shown in Embodiment 1. The relative spectrum ϕ(λ) of the white light emitting device and the relative spectrum S(λ) of the black body radiation with the corresponding color temperature are shown in
[0037] In combination with measured data, when λi is 380 nm and λn is 680 nm, R=87.9%; and, when λi is 430 nm and λn is 650 nm, R=93.8%. Meanwhile, a characteristic region of 465 nm-495 nm (that is, when λi is 465 nm and λn is 495 nm) can be converted to R=86.5%, which proves that the spectrum of the white light emitting device at wavelengths of 460 nm-500 nm is relatively continuous, approximating to an effect of natural light.
[0038] The white light emitting devices made with the proportions shown in Embodiment 2, Embodiment 3, and Embodiment 4 have a lighting effect similar to that of Embodiment 1. The relative spectrum ϕ(λ) of the product of each embodiment is measured separately, and in combination with the degree of similarity formula, meets the product requirements: when λi is 380 nm and λn is 680 nm, R≥85%; when λi is 430 nm and λn is 650 nm, R≥90%; and, when λi is 465 nm and λn is 495 nm, R≥80%.
Embodiments 5-8
[0039] The white light emitting device emits light when the phosphors are excited by an ultraviolet chip. The phosphors are calculated in parts by weight and is a mixture of 55%-85% M.sub.5(PO.sub.4).sub.3Cl:Eu.sup.2+(M=Sr,Ba), 5%-20% Ba.sub.2SiO.sub.4:Eu.sup.2+, 2%-15% Ga-YAG and 2%-10% M.sub.2Si.sub.5N.sub.8:Eu.sup.2+(M=Ca,Sr,Ba). The detailed proportions are as shown in Table 2.
TABLE-US-00002 TABLE 2 Phosphors Composition Embodiment 5 Embodiment 6 Embodiment 7 Embodiment 8 Blue phosphor M.sub.5(PO.sub.4).sub.3Cl:Eu.sup.2+(M = Sr, Ba) 55% 65% 75% 85% Green phosphor Ba.sub.2SiO.sub.4:Eu.sup.2+ 20% 15% 5% 10% Yellow phosphor Ga-YAG 15% 12% 10% 2% Red phosphor M.sub.2Si.sub.5N.sub.8:Eu.sup.2+(M = Ca, Sr, Ba) 10% 8% 10% 3%
[0040] The white light emitting device is prepared according to the proportions shown in Embodiment 5. A contrast diagram of the relative spectrum ϕ(λ) of the white light emitting device and the relative spectrum S(λ) of the black body radiation with the corresponding color temperature is as shown in
[0041] In combination with the measured data, when λi is 380 nm and λn is 680 nm, R=87.8%; and, when λi is 430 nm and λn is 650 nm, R=93.8%. Meanwhile, a characteristic region of 465 nm-495 nm (that is, when λi is 465 nm and λn is 495 nm) can be converted to R=83.7%, which proves that the spectrum of the white light emitting device at the wavelengths of 460 nm-500 nm is relatively continuous, approximating to an effect of natural light.
[0042] The white light emitting devices made with the proportions shown in Embodiment 6, Embodiment 7, and Embodiment 8 have a lighting effect similar to that of Embodiment 5. The relative spectrum ϕ(λ) of the product of each embodiment is measured separately, and in combination with the degree of similarity formula, meets the product requirements: when λi is 380 nm and λn is 680 nm, R≥85%; when λi is 430 nm and λn is 650 nm, R≥90%; and, when λi is 465 nm and λn is 495 nm, R≥80%.
Embodiments 9-12
[0043] The white light emitting device emits light when the phosphors are excited by an ultraviolet chip. The phosphors are calculated in parts by weight and is a mixture of 55%-70% RbNa.sub.3(Li.sub.3SiO.sub.4).sub.4:Eu.sup.2+, 5%-20% Ba.sub.2SiO.sub.4:Eu.sup.2+, 2%-15% La.sub.3Si.sub.6N.sub.11:Ce.sup.3+ and 2%-10% CaS:Eu.sup.2+. The detailed proportions are as shown in Table 3.
TABLE-US-00003 TABLE 3 Embodiment Embodiment Embodiment Embodiment Phosphors Composition 9 10 11 12 Blue phosphor RbNa.sub.3(Li.sub.3SiO.sub.4).sub.4:Eu.sup.2+ 70% 65% 60% 55% Green phosphor Ba.sub.2SiO.sub.4:Eu.sup.2+ 17% 15% 20% 20% Yellow phosphor La.sub.3Si.sub.6N.sub.11:Ce.sup.3+ 5% 15% 10% 15% Red phosphor CaS:Eu.sup.2+ 8% 5% 10% 10%
[0044] The white light emitting device is prepared according to the proportions shown in Embodiment 9. A contrast diagram of the relative spectrum ϕ(λ) of the white light emitting device and the relative spectrum S(λ) of the black body radiation with the corresponding color temperature is as shown in
[0045] In combination with the measured data, when λi is 380 nm and λn is 680 nm, R=86.9%; and, when λi is 430 nm and λn is 650 nm, R=95.0%. Meanwhile, a characteristic region of 465 nm-495 nm (that is, when λi is 465 nm and λn is 495 nm) can be converted to R=93.0%, which proves that the spectrum of the white light emitting device at the wavelengths of 460 nm-500 nm approximates to the spectrum of natural light.
[0046] The white light emitting devices prepared with the proportions shown in Embodiment 10, Embodiment 11, and Embodiment 12 have a lighting effect similar to that of Embodiment 9. The relative spectrum ϕ(λ) of the product of each embodiment is measured separately, and in combination with the degree of similarity formula, meets the product requirements: when λi is 380 nm and λn is 680 nm, R≥85%; when λi is 430 nm and λn is 650 nm, R≥90%; and, when λi is 465 nm and λn is 495 nm, R≥80%.