IP Library Granted Patent US 9,239,133
Granted Patent B2
US 9,239,133 · App. 13/897,237 · Granted Jan 19, 2016

High brightness solid state illumination system for fluorescence imaging and analysis

Inventors: Yong Wang (Markham, CA); Paul Constantinou (Burlington, CA)
Assignee: Excelitas Canada, Inc.
F21K2/00F21K9/00G01N21/6456H05B33/08F21Y2101/025G01N2201/062H01S5/005H01S5/0071
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Quick Facts
Patent No.
US 9,239,133
App. No.
13/897,237
Granted
Jan 19, 2016
Kind
B2
Abstract

A solid state illumination system is disclosed, wherein a light source module comprises a first light source, comprising an LED and a phosphor layer, the LED emitting a wavelength λ 1 in an absorption band of the phosphor layer for generating longer wavelength broadband light emission from the phosphor, Δλ PHOSPHOR , and a second light source comprising a laser emitting a wavelength λ 2 in the absorption band of the phosphor layer. While operating the LED, concurrent laser pumping of the phosphor layer increases the light emission of the phosphor, and provides high brightness emission, e.g. in green, yellow or amber spectral regions. Additional modules, which provide emission at other wavelengths, e.g. in the UV and near UV spectral bands, together with dichroic beam-splitters/combiners allow for an efficient, compact, high-brightness illumination system, suitable for fluorescence imaging and analysis.

Claims (51)

1. An illumination system for fluorescence imaging and analysis, comprising:

a light source module comprising:

a first source comprising a first light emitting device (LED) and a phosphor layer, the first LED for providing emission at a first wavelength λ 1 within an absorption band of the phosphor layer and the phosphor layer providing broadband light emission of longer wavelength comprising light in a wavelength band Δλ PHOSPHOR ; and

a second light source for providing laser emission at a second wavelength λ 2 , within the absorption band of the phosphor layer;

a controller for driving the first light source to generate emission at λ 1 and Δλ PHOSPHOR and for concurrently driving the laser and optically pumping the phosphor layer with the laser wavelength λ 2 , to increase emission in the emission band of the phosphor Δλ PHOSPHOR ;

optical coupling means for coupling light emission to an optical output of the illumination system;

another light source comprising an LED emitting at a third wavelength λ 3 , wherein the optical coupling means comprises a dichroic optical element having a band edge for reflecting the laser wavelength λ 2 onto the phosphor layer for optical pumping of the phosphor layer, for transmitting emission from the first LED and the phosphor layer, comprising λ 1 and Δλ PHOSPHOR , and further for reflecting the third wavelength λ 3 , for optically coupling light emission, comprising λ 1 , Δλ PHOSPHOR and λ 3 , along a common optical axis to the optical output of the illumination system; and

yet another light source emitting at a fourth wavelength λ 4 and Wherein the optical coupling means further comprises a second dichroic element for coupling emission comprising λ 3 and λ 4 , via the first dichroic element, along the common optical axis to the optical output of the illumination system, the second dichroic element having a band edge between λ 3 and λ 4 .

2. The illumination system of claim 1 wherein the optical coupling means comprises at least one optical element for coupling the laser wavelength λ 2 to the phosphor layer for optical pumping of the phosphor layer and for coupling emission from the first LED and the phosphor layer, comprising λ 1 and Δλ PHOSPHOR , to the optical output.

3. The illumination system of claim 1 wherein the optical coupling means comprises a dichroic element having a hand edge for reflecting the laser wavelength λ 2 onto the phosphor layer for optical pumping of the phosphor layer and for transmitting emission from the first LED and the phosphor layer, comprising λ 1 and Δλ PHOSPHOR , to the optical output.

4. The illumination system of claim 1 , further comprising another light source comprising an LED emitting at a fourth wavelength λ 4 and a second phosphor layer (Phosphor2) emitting a wavelength hand Δλ PHOSPHOR2 , and wherein the optical coupling means couples light emission comprising λ 1 , Δλ PHOSPHOR , λ 4 and Δλ PHOSPHOR2 , along a common optical axis, to the optical output of the illumination system.

5. The illumination system of claim 4 , wherein the optical coupling means comprises a dichroic element having a pass hand λ D selected to reflect the laser wavelength λ 2 , and transmit λ 1 and Δλ PHOSPHOR , wherein λ 4 and Δλ PHOSPHOR2 are also reflected by the dichroic element, and wherein the dichroic element is positioned for coupling light emission comprising λ 1 , Δλ PHOSPHOR , λ 4 and Δλ PHOSPHOR2 , along the common optical axis, to the optical output of the illumination system.

6. The illumination system of claim 1 , further comprising a second light source module,

the second light source module comprising:

a third light source comprising another light emitting device (LED) and a second phosphor layer, the other LEE) providing emission at a fourth wavelength λ 4 within an absorption band of the second phosphor layer (Phosphor2) and the second phosphor layer providing broadband light emission of longer wavelength comprising light in a wavelength band Δλ PHOSPHOR2 ;

a fourth light source providing laser emission at a fifth wavelength λ 5 , within the absorption band of the second phosphor layer;

the controller further providing for driving the third light source to generate emission at λ 4 and Δλ PHOSPHOR2 and driving the fourth light source for concurrently optically pumping the second phosphor layer with the laser wavelength λ 5 , to increase emission in the emission band of the phosphor Δλ PHOSPHOR2 ; and

optical coupling means for coupling light emission comprising λ 4 and Δλ PHOSPHOR2 to the optical output of the illumination system.

7. The illumination system of claim 6 wherein the optical coupling means comprises:

a first dichroic element for coupling the laser wavelength λ 2 for optically pumping the first phosphor layer and coupling emission comprising λ 1 and Δλ PHOSPHOR from the LED and the phosphor layer of the first module, along a primary optical axis to the optical output, and

a second dichroic element for coupling the laser wavelength λ 5 for optically pumping the second phosphor layer and coupling emission comprising λ 4 and Δλ PHOSPHOR2 from the other LED and the second phosphor layer, via the first dichroic element, along the primary optical axis to the optical output.

8. The illumination system of claim 6 wherein the optical coupling means comprises:

a first dichroic element having a band edge for reflecting the laser wavelength λ 2 along a primary optical axis for optically pumping the first phosphor layer and transmitting emission along the primary optical axis, comprising λ 1 and Δλ PHOSPHOR2 , from the LED and the phosphor layer of the first module, and

a second dichroic element having a band edge for reflecting the laser wavelength λ 5 along a secondary optical axis for optically pumping the second phosphor layer and transmitting emission along the secondary optical axis, comprising λ 4 and Δλ PHOSPHOR2 , from the other LED and the second phosphor layer,

and the first dichroic element also reflecting emission transmitted by the second dichroic element, comprising λ 4 and Δλ PHOSPHOR2 , along the primary optical axis to the optical output.

9. The illumination system of claim 1 wherein the second light source comprises a solid state laser integrated within the first light source module.

10. The illumination system of claim 6 wherein the fourth light source comprises a solid state laser integrated within the second light source module.

11. The illumination system of claim 1 wherein the second light source comprises a laser light source housed within a unit of the controller which is coupled by a light guide to the light source module for providing optically pumping the first phosphor layer with laser emission λ 1 .

12. The illumination system of claim 6 wherein the second light source comprises a laser light source, housed within a unit of the controller, which is coupled by a light guide to the light source module for optically pumping the second phosphor layer with laser emission λ 5 .

13. The illumination system of claim 1 wherein λ 1 comprises emission in the range from 440 nm to 490 nm and Δλ PHOSPHOR comprises emission in the range from 500 nm to 750 nm.

14. The illumination system of claim 1 wherein λ 1 comprises emission in the range from 445 to 475 nm and Δλ PHOSPHOR is in the range from at least 530 nm to 630 nm.

15. The illumination system of claim 1 wherein Δλ PHOSPHOR covers the emission wavelength range from at least 530 nm to 630 nm.

16. The illumination system of claim 15 wherein the pump laser wavelength λ 2 is one of: 450 nm or less; 440 nm or less; less than λ 1 .

17. An illumination system according to claim 15 wherein the wavelength λ 1 emitted by the first LED is in the range between 445 nm and 475 nm; and the wavelength λ 2 of the pump laser is 445 nm or less.

18. The illumination system of claim 1 wherein the emission wavelength λ 3 comprises light emission in at least one of the ultraviolet and near ultraviolet spectral regions.

19. The illumination system of claim 1 wherein the emission wavelengths λ 3 and λ 4 comprise light emission in the near ultraviolet and ultraviolet spectral regions.

20. An illumination system according to claim 6 wherein the spectral band phosphor layer Δλ PHOSPHOR2 is in the range from 410 nm to 445 nm and wherein the wavelength λ 5 of the second laser is in the range from 370 nm to 410 nm or from 350 nm to 390 nm.

21. An illumination system according to claim 1 wherein the emission wavelength λ 3 of the other light source comprises a wavelength shorter than λ 1 , and the other light source comprises one of a narrow hand UV LED, a LED providing emission at 440 nm, 365 nm and/or 385 nm, and a phosphor coated UV LED providing broadband near UV emission.

22. An illumination system according to claim 8 wherein each of the laser pump wavelength λ 2 and emission wavelengths λ 3 and λ 4 are on the short wavelength side of the band edge wavelength λ D of the first dichroic element.

23. An illumination system for fluorescence imaging and analysis, comprising:

first and second light source modules and a controller;

the first light source module for providing emission in a first wavelength band, comprising:

a first light source comprising a first LED and a phosphor layer, the first LED providing emission at a first wavelength λ 1 within an absorption band of the phosphor layer and the phosphor layer providing broadband light emission Δλ PHOSPHOR ;

a second light source comprising a laser emitting at a second wavelength λ 2 , within the absorption band of the phosphor layer;

wherein the controller concurrently drives the first light source to generate emission comprising λ 1 and Δλ PHOSPHOR and the laser for optically pumping the phosphor layer with the laser wavelength λ 2 to increase emission in the emission band of the phosphor Δλ PHOSPHOR ;

the second light source module for providing emission in a second wavelength band different from the first wavelength band, the second module comprising:

a third light source comprising a second LED and a second phosphor layer different from the first phosphor layer, the second LED emitting at a wavelength λ 4 within an absorption band of the second phosphor layer and the second phosphor layer providing broadband light emission Δλ PHOSPHOR2 ;

a fourth light source comprising a laser emitting at a wavelength λ 5 within the absorption band of the second phosphor layer;

wherein the controller concurrently drives the second light source to generate emission comprising λ 4 and Δλ PHOSPHOR2 and the laser for optically pumping the second phosphor layer with the laser wavelength λ 5 , to increase emission in the emission band of the second phosphor Δλ PHOSPHOR2 ;

optical coupling means comprising at least one dichroic beam-splitter/combiner for coupling one or more of λ 1 , Δλ PHOSPHOR1 , λ 4 and Δλ PHOSPHOR2 , along a common optical axis, to an optical output of the illumination system.

24. An illumination system according to claim 23 wherein the optical coupling means further comprises optical coupling elements comprising at least one of a focusing/collection lens, an optical concentrator and an output coupling lens.

Assignments (3)
SECURITY INTEREST Recorded Aug 12, 2022
From: EXCELITAS CANADA INC.
To: GOLUB CAPITAL MARKETS LLC, AS COLLATERAL AGENT
Reel/Frame 061161/0079 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 15, 2014
From: LUMEN DYNAMICS GROUP INC.
To: EXCELITAS CANADA, INC.
Reel/Frame 033738/0982 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 25, 2013
From: WANG, YONG; CONSTANTINOU, PAUL
To: LUMEN DYNAMICS GROUP INC.
Reel/Frame 030878/0145 →
Continuity (1)
Related Publication 20140340869A1 · Nov 20, 2014