IP Library › Granted Patent US 10,584,852
Granted Patent B2
US 10,584,852 · App. 15/318,418 · Granted Mar 10, 2020

Light source having solid-state laser irradiating single-crystal phosphor with specific composition

Inventors: Tomas Fidler (Decin, CZ); Jan Kubat (Zdar u Mnichova Hradiste, CZ); Stepan Novotny (Bakov nad Jizerou, CZ); Jindrich Houzvicka (Turnov, CZ)
Assignee: CRYTUR, SPOL.S R.O.
F21V9/30C09K11/7706C09K11/7774C09K11/7792F21K9/64F21V3/00F21V9/08F21V13/12F21V15/01G02B6/0008H01S5/005F21K9/61F21Y2115/10F21Y2115/30H01S5/02212H01S5/4025
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Quick Facts
Patent No.
US 10,584,852
App. No.
15/318,418
Granted
Mar 10, 2020
Kind
B2
Abstract

The light source includes a high-efficiency solid-state laser source emitting excitation coherent radiation, and a single crystal phosphor forming an optic element for receiving the excitation coherent radiation and emitting light with desired parameters. The single crystal phosphor is made of garnets conforming to the general formula (A x ,Lu 1-x ) a Al b O 12 :Ce c formula, or from a single crystal material of perovskite structure conforming to the general formula B 1-g AlO 3 :D q .

Claims (31)

1. A light source comprising:

at least one solid-state laser source for emitting coherent excitation radiation, and

at least one single crystal phosphor containing at least one doping element for at least partial conversion of the excitation radiation into extracted light with wavelengths in the visible spectrum,

wherein the single crystal phosphor is formed with oxide-type compound meeting the general formula

(A x ,Lu 1-x ) a Al b O 12 :Ce c

where:

A is at least one of the chemical elements from the Y, Gd, Tb group,

a is a number from the value interval from 0.5 to 20,

b is a number from the value interval from 0.5 to 20,

c is a positive number from the value interval from 0.0005 to 0.2,

x is a positive number from the value interval from 0 to 1,

and the value of the stoichiometric ratio a:b ranges between 0.5 to 0.7.

2. A light source according to claim 1 , wherein the values of c and x numbers are defined by the intervals:

0.0005<c<0.03

0.0005<x<0.9999.

3. A light source according to claim 1 , wherein the single crystal phosphor contains induced color centers connected with oxygen vacancies.

4. A light source according to claim 1 , wherein the single crystal phosphor is made from a single crystal ingot.

5. A light source according to claim 1 , wherein the solid-state laser source has a maximum emission of light wavelengths in the range of 340 nm to 480 nm, and where the extracted light is white light with a correlated color temperature ranging from 2700 K to 10000 K.

6. A light source according to claim 1 , wherein the single crystal phosphor forms an optic element with a shape selected from the group consisting of a rectangular cuboid, hemisphere, spherical cap, right circular cone, pyramid, polyhedron, and symmetrical shape, for protecting the extracted light in a desired direction.

7. A light source according to claim 1 , wherein at least a portion of the single crystal phosphor volume is structured to at least one of create color-homogenized scattered extracted light, and to maximize projection of the extracted light in a desired direction.

8. A light source according to claim 1 , further comprising a secondary phosphor connected to the single crystal phosphor, the secondary phosphor having a maximum emission of light wavelengths in the range of 560 nm to 680 nm, for changing the correlated color temperature of the resulting extracted light.

9. A light source according to claim 1 , further comprising a cooler connected to the single crystal phosphor.

10. A light source according to claim 1 , further comprising at least one of a light-guiding optic fiber or a light guiding planar optic waveguide, the single crystal phosphor connected to the at least one of a light-guiding optic fiber or a light guiding planar optic waveguide with an optical bonding.

11. A light source according to claim 1 , further comprising an optic lens between the solid-state laser source and the single crystal phosphor, to direct the excitation radiation to the excitation surface of the single crystal phosphor.

12. A light source according to claim 1 , further comprising at least one carrier carrying the single crystal phosphor, and at least one element to direct the extracted light from the single crystal phosphor.

13. A light source according to claim 1 , wherein the single crystal phosphor has the shape of an elongated rectangular cuboid or cylinder, the sides of the single crystal phosphor are polished and the face of the single crystal phosphor from which the emitted light is emitted is ground, provided with an anti-reflex layer, or provided with structuring to make the extraction of the emitted light easier.

14. A light source according to claim 1 , wherein the excitation surface of the single crystal phosphor is also the emission surface too.

15. A light source according to claim 1 , wherein the single crystal phosphor is provided with at least one surface treatment selected from the group consisting of: ground surface, polished surface, surface provided with an anti-reflex layer, structured surface, and a surface provided with a layer of crushed single crystal phosphor material.

16. A light source according to claim 15 , wherein the single crystal phosphor is provided with the surface provided with the layer of the crushed material, such layer composed of at least two materials of single crystal phosphors with different properties.

17. A light source according to claim 1 , wherein the single crystal phosphor is composed of at least two thin plates, arranged in a sandwich structure.

18. A light source according to claim 17 , wherein the thin plates are formed from a single crystal phosphor having different characteristics.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 13, 2016
From: FIDLER, TOMAS; KUBAT, JAN; NOVOTNY, STEPAN; HOUZVICKA, JINDRICH
To: CRYTUR, SPOL.S R.O.
Reel/Frame 040721/0240 →
Priority Claims (1)
CZ 2014-302 · May 5, 2014 · national
Continuity (1)
Related Publication 20170241619A1 · Aug 24, 2017