IP Library Patent Application 15256252
Patent Application
App. No. 15/256,252

PHOSPHOR CONVERTED WHITE LIGHT EMITTING DEVICES AND PHOTOLUMINESCENCE COMPOUNDS FOR GENERAL LIGHTING AND DISPLAY BACKLIGHTING

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Patent No.
US None
App. No.
15/256,252
Abstract

A phosphor converted white light emitting device comprises a solid-state light emitter (LED) operable to generate blue light with a dominant wavelength in range 440 nm to 470 nm; yellow to green-emitting phosphor operable to generate light with a peak emission wavelength in a range 500 nm to 550 nm; and a red-emitting manganese-activated fluoride phosphor such a manganese-activated potassium hexafluorosilicate phosphor (K 2 SiF 6 :Mn 4+ ). The yellow to green and red-emitting phosphors are incorporated as a mixture and dispersed throughout a light transmissive material with an index or refraction of 1.40 to 1.43. In some embodiments the light transmissive comprises a dimethyl-based silicone. The device can further comprise an orange to red-emitting phosphor operable to generate light with a peak emission wavelength of 580 nm to 620 nm.

Claims (43)

1 . A white light emitting device comprising:

a solid-state light emitter operable to generate blue light with a dominant wavelength in a range 440 nm to 470 nm;

a yellow to green-emitting phosphor excitable by blue light and operable to generate light with a peak emission wavelength in a range 500 nm to 575 nm;

a red-emitting manganese-activated complex fluoride phosphor; and

a light transmissive material with an index of refraction of 1.40 to 1.43 comprising a mixture of the yellow to green-emitting phosphor and red-emitting manganese-activated fluoride phosphor.

2 . The white light emitting device of claim 1 , wherein the red-emitting manganese-activated fluoride phosphor comprises a manganese-activated potassium hexafluorosilicate phosphor.

3 . The white light emitting device of claim 1 , wherein the light transmissive material comprises a methyl-based silicone.

4 . The white light emitting device of claim 1 , wherein the yellow to green-emitting phosphor comprises a cerium-activated garnet phosphor.

5 . The white light emitting device of claim 4 , wherein the cerium-activated garnet phosphor is represented by the chemical formula Y 3−x (Al 1−y Ga y ) 5 O 12 :Ce x where 0.01<x<0.2 and 0<y<2.5.

6 . The white light emitting device of claim 5 , wherein the cerium-activated garnet phosphor further comprises at least one of F, Cl and Br.

7 . The white light emitting device of claim 4 , wherein the cerium-activated garnet phosphor is represented by the chemical formula Lu 3−x (Al 1−y M y ) 5 O 12 :Ce x where M is at least one of Mg, Ca, Sr, Ba, Ga and combinations thereof, 0.01<x<0.2 and 0<y<1.5.

8 . The white light emitting device of claim 7 , wherein the cerium-activated garnet phosphor further comprises at least one of F, Cl and Br.

9 . The white light emitting device of claim 1 , wherein the yellow to green-emitting phosphor comprises a europium activated β-SiAlON phosphor.

10 . The white light emitting device of claim 1 , wherein the yellow to green-emitting phosphor comprises a europium-activated sulfide phosphor represented by the general formula SrGa 2 S 4 :Eu.

11 . The white light emitting device of claim 1 , further comprising an orange to red-emitting phosphor excitable by blue light and operable to emit light with a peak emission wavelength in a range 580 nm to 620 nm, and wherein the light transmissive material comprises a mixture of the yellow to green-emitting phosphor, red-emitting manganese-activated fluoride phosphor and orange to red-emitting phosphor.

12 . The white light emitting device of claim 11 , wherein the orange to red-emitting phosphor comprises a europium activated silicon nitride-based phosphor.

13 . The white light emitting device of claim 12 , wherein the europium activated silicon-nitride phosphor is represented by the chemical formula (Ca 1−x Sr x )AlSiN 3 :Eu where 0.5<x≦1.

14 . The white light emitting device of claim 12 , wherein the europium activated silicon-nitride phosphor is represented by the chemical formula Ba 2−x Sr x Si 5 N 8 :Eu where 0≦x≦2.

15 . The white light emitting device of claim 1 , wherein the device is operable to generate white light with a Correlated Color Temperature of between 2700K and 3000K, a general Color Rendering Index (Ra) of 90 or higher and a Color Rendering Index (R9) of 90 or higher.

16 . The white light emitting device of claim 1 , wherein the weight proportion of red-emitting manganese activated fluoride phosphor to green-emitting phosphor is greater than 50%.

17 . The white light emitting device of claim 1 , wherein the weight percent proportion of the red-emitting manganese activated fluoride phosphor to yellow to green-emitting phosphor is between about 70 wt % and about 90 wt %.

18 . A white light emitting device comprising:

a solid-state light emitter operable to generate blue light with a dominant wavelength in range 440 nm to 470 nm;

a yellow to green-emitting phosphor excitable by blue light and operable to emit light with a peak emission wavelength in a range 500 nm to 575 nm;

a red-emitting manganese-activated potassium hexafluorosilicate phosphor excitable by blue light and operable to emit light with a peak emission wavelength between 631 nm and 632 nm; and

an orange to red-emitting phosphor excitable by blue light and operable to generate light with a peak emission wavelength in a range 575 nm to 600 nm,

wherein the device is operable to generate white light with a Correlated Color Temperature of between about 2700K and about 3000K and wherein over a wavelength range 460 nm to 600 nm a maximum deviation between the intensity of the light emitted by the device normalized to a CIE 1931 XYZ relative luminance Y=100 compared with the intensity of light of a black-body curve of the same Correlated Color Temperature that is normalized to a CIE 1931 XYZ relative luminance Y=100 is less than 0.3.

19 . The white light emitting device of claim 18 , wherein the device is operable to generate white light with a general Color Rendering Index (Ra) of 90 or higher and a Color Rendering Index (R9) of 90 or higher.

20 . The white light emitting device of claim 18 , further comprising a light transmissive material with an index of refraction of 1.40 to 1.43 comprising a mixture of the yellow to green-emitting phosphor, red-emitting manganese-activated potassium hexafluorosilicate phosphor and the orange to red-emitting phosphor.

21 . The white light emitting device of claim 18 , wherein the yellow to green-emitting phosphor comprises a cerium-activated yttrium garnet phosphor.

22 . The white light emitting device of claim 18 , wherein the yellow to green-emitting phosphor comprises a cerium-activated lutetium garnet phosphor.

23 . The white light emitting device of claim 18 , wherein the orange to red-emitting phosphor comprises a europium activated silicon nitride-based phosphor.

24 . A photoluminescence compound comprising: a light transmissive material with an index of refraction of 1.40 to 1.43 comprising a mixture of a yellow to green-emitting phosphor with a peak emission wavelength in a range 500 nm to 575 nm and a red-emitting manganese-activated fluoride phosphor.

25 . The photoluminescence compound of claim 24 , wherein the red-emitting manganese-activated fluoride phosphor comprise a potassium hexafluorosilicate phosphor.

26 . The photoluminescence material of claim 24 , wherein the light transmissive material comprises a methyl-based silicone.

27 . The photoluminescence material of claim 24 , wherein the yellow to green-emitting phosphor comprises a cerium-activated garnet phosphor.

28 . The photoluminescence material of claim 24 , further comprising an orange to red-emitting phosphor with a peak emission wavelength in a range 580 nm to 620 nm, and wherein the light transmissive material comprises a mixture of the yellow to green-emitting phosphor, red-emitting manganese-activated potassium hexafluorosilicate phosphor and orange to red-emitting phosphor.

29 . The photoluminescence material of claim 28 , wherein the orange to red-emitting phosphor comprises a europium activated silicon nitride-based phosphor.

30 . A display backlight comprising:

a solid-state light emitter operable to generate blue light;

a narrow-band green-emitting phosphor excitable by blue light and operable to generate light with a peak emission wavelength of about 535 nm;

a red-emitting manganese-activated potassium hexafluorosilicate phosphor; and

a light transmissive material with an index of refraction of 1.40 to 1.43 comprising a mixture of the narrow-band green-emitting phosphor and the red-emitting manganese-activated potassium hexafluorosilicate phosphor.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 28, 2019
From: YANG, HAITAO; CHAI, BINGHUA
To: INTEMATIX CORPORATION
Reel/Frame 050838/0230 →