IP Library Patent Application 14594981
Patent Application
App. No. 14/594,981

LIGHT-EMITTING DEVICE, WAVELENGTH CONVERSION MEMBER, PHOSPHOR COMPOSITION AND PHOSPHOR MIXTURE

Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US None
App. No.
14/594,981
Abstract

Provided is a light-emitting device having good binning characteristics with suppressed changes in color derived from shifts in excitation wavelength. The present invention achieves the above object by way of a light-emitting device that comprises a blue semiconductor light-emitting element, and a wavelength conversion member, wherein the wavelength conversion member comprises: a phosphor Y represented by formula (Y1) below and having a peak wavelength of 540 nm or more and 570 nm or less in an emission wavelength spectrum when excited at 450 nm, (Y,Ce,Tb,Lu) x (Ga,Sc,Al) y O z   (Y1) (x=3, 4.5≦y≦5.5, 10.85≦z≦13.4); and a phosphor G represented by formula (G1) below and having a peak wavelength of 520 nm or more and 540 nm or less in an emission wavelength spectrum when excited at 450 nm. (Y,Ce,Tb,Lu) x (Ga,Sc,Al) y O z   (G1) (x=3, 4.5≦y≦5.5, 10.8≦z≦13.4)

Claims (29)

1 . A wavelength conversion member, comprising:

a phosphor Y represented by formula (Y2) below and having a peak wavelength of 540 nm or more and 570 nm or less in an emission wavelength spectrum when excited at 450 nm,

a phosphor G represented by formula (G2) below and having a peak wavelength of 520 nm or more and 540 nm or less in an emission wavelength spectrum when excited at 450 nm, and

a transparent material,

wherein a variation in excitation spectrum intensity of said wavelength conversion member at an emission wavelength of 540 nm is equal to or smaller than 0.20, and

said phosphor Y and said phosphor G exist in a mutual mixture throughout a light emitting part of the wavelength conversion member,

Y a (Ce,Tb,Lu) b (Ga,Sc) c Al d O e   (Y2)

(a+b=3, 0≦b≦0.2, c+d=5, 0≦c≦0.2, e=12)

Y a (Ce,Tb,Lu) b (Ga,Sc) c Al d O e   (G2)

(a+b=3, 0≦b≦0.2, c+d=5, 1.2≦c≦2.6, e=12)

where the variation in excitation spectrum intensity of the wavelength conversion member being expressed as the difference between a maximum value and a minimum value of excitation spectrum intensity in the range from 435 nm to 470 nm, taking 1.0 as the excitation spectrum intensity of the wavelength conversion member at 450 nm.

2 . The wavelength conversion member according to claim 1 ,

wherein the excitation spectrum intensity at 430 nm of said phosphor Y is smaller than the excitation spectrum intensity at 470 nm, in the excitation spectrum for an emission wavelength of 540 nm, and

the excitation spectrum intensity at 430 nm of said phosphor G is greater than the excitation spectrum intensity at 470 nm, in the excitation spectrum for an emission wavelength of 540 nm.

3 . The wavelength conversion member according to claim 1 ,

wherein a composition ratio of said phosphor Y and said phosphor G is 10:90 or more and 90:10 or less.

4 . The wavelength conversion member according to claim 1 ,

wherein a variation in combined excitation spectrum intensity combined by calculation expression (Z) below is equal to or smaller than 0.15,

the combined excitation spectrum being an excitation spectrum in which the excitation spectrum intensity at each wavelength is expressed by calculation expression (Z) below,

Combined excitation spectrum intensity=(excitation spectrum intensity of phosphor Y )×(weight fraction of phosphor Y )+(excitation spectrum intensity of phosphor G )×(weight fraction of phosphor G )  (Z),

the weight fraction of the phosphor Y being given by phosphor Y/(phosphor Y+phosphor G), and

the same applying to the variation in combined excitation spectrum intensity of the phosphor G and to the weight fraction of the phosphor G,

where the each variation in excitation spectrum intensity being expressed as the difference between a maximum value and a minimum value of the combined excitation spectrum intensity in the range from 430 nm to 470 nm, taking 1.0 as the excitation spectrum intensity at 450 nm in the excitation spectrum.

5 . The wavelength conversion member according to claim 1 , wherein when the excitation wavelength is caused to vary continuously from 445 nm to 455 nm, a chromaticity change Δu′v′ of light emitted by the wavelength conversion member satisfies Δu′v′≦0.004,

where the value Δu′v′ denotes a distance between chromaticity (u′ i ,v′ i ) at any wavelength i nm from 445 nm to 455 nm and an average value (u′ ave ,v′ ave ) of chromaticity at 445 nm to 455 nm.

6 . The wavelength conversion member according to claim 1 , wherein when the excitation wavelength is caused to vary continuously from 435 nm to 470 nm, a chromaticity change Δu′v′ of light emitted by the wavelength conversion member satisfies Δu′v′≦0.015,

where the value Δu′v′ denotes a distance between chromaticity (u′ i ,v′ i ) at any wavelength i nm from 435 nm to 470 nm and an average value (u′ ave ,v′ ave ) of chromaticity at 435 nm to 470 nm.

7 . A light-emitting device, comprising the wavelength conversion member according to claim 1 .

8 . An illumination device, comprising the light-emitting device according to claim 7 .

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 8, 2015
From: KATSUMOTO, TADAHIRO; SOMA, MINORU; KURUSHIMA, TOMOYUKI; YOSHIDA, HISASHI
To: MITSUBISHI CHEMICAL CORPORATION; MITSUBISHI ENGINEERING-PLASTICS CORPORATION
Reel/Frame 035361/0349 →