System for optical imaging comprising matched spectral filters
11137528 · 2021-10-05
Assignee
Inventors
Cpc classification
H04N23/55
ELECTRICITY
H04N23/74
ELECTRICITY
G01J1/0437
PHYSICS
G01J1/08
PHYSICS
International classification
G01J1/08
PHYSICS
Abstract
Systems, methods and devices are for optical imaging are described. A system includes a light source and a light detection unit. The light source includes a light-emitting device and a first spectral filter opposite the light emitting device. The first spectral filter includes at least one dielectric filter and has a first angular dependence of a transmission passband. The light source further includes at least one reflector adjacent side surfaces of the light emitting device. The light detection unit includes an optical sensor and a second spectral filter opposite the optical sensor. The second spatial filter has a second angular dependence of a transmission passband that is matched to the first angular dependence.
Claims
1. A system comprising: a light source comprising: a light-emitting device, a first spectral filter opposite the light emitting device, the first spectral filter comprising at least one dielectric filter and having a first angular dependence of a transmission passband, and at least one reflector adjacent side surfaces of the light emitting device; and a light detection unit comprising: an optical sensor, and a second spectral filter opposite the optical sensor, the second spatial filter having a second angular dependence of a transmission passband that is matched to the first angular dependence.
2. The system of claim 1, wherein the first spectral filter and the second spectral filter have substantially identical transmission passbands, and the first angular dependence and the second angular dependence are substantially identical.
3. The system of claim 1, wherein at least one of the first spectral filter and the second spectral filter has a narrow transmission passband having a full width at half maximum (FWHM) of 50 nm or smaller.
4. The system of claim 1, wherein the light source is adjacent the light detection unit.
5. The system of claim 1, wherein the second spectral filter comprises at least one dielectric filter.
6. The system of claim 1, wherein at least one of the first spectral filter and the second spectral filter comprises at least one of: at least one photonic crystal, at least one diffractive optical element, at least one metasurface filter, at least one plasmonic filter and at least one nano-resonator filter.
7. The system of claim 1, wherein at least one of the first spectral filter and the second spectral filter has one of a single transmission passband and a dual transmission passband.
8. The system of claim 1, wherein the light-emitting device comprises at least one light-emitting diode.
9. The system of claim 1, wherein the system is one of an optical authentication system and a machine vision system.
10. A lighting device for optical imaging, the lighting device comprising: a light source; a first spectral filter opposite the light source, the first spectral filter comprising at least one dielectric filter and having a first angular dependence of a transmission passband matched to a second angular dependence of a transmission passband of a second spectral filter of a light detection unit; and at least one reflector adjacent side surfaces of the light emitting device.
11. The device of claim 10, wherein the device is for one of optical authentication and machine vision.
12. The device of claim 10, wherein the first spectral filter comprises at least one of: at least one photonic crystal, at least one diffractive optical element, at least one metasurface filter, at least one plasmonic filter and at least one nano-resonator filter.
13. The device of claim 10, wherein the first spectral filter has one of a single transmission passband and a dual transmission passband.
14. The device of claim 10, wherein the light source comprises at least one light-emitting diode.
15. The device of claim 10, wherein the first spectral filter has a narrow transmission passband having a full width at half maximum (FWHM) of 50 nm or smaller.
16. The device of claim 10, further comprising a substrate on which the light source is disposed, the substrate having regions adjacent the light source that are at least partially covered with a reflective coating.
17. The device of claim 16, further comprising a transparent filler material filling empty space between the reflective coating, the light source, the at least one reflector and the first spectral filter.
18. The device of claim 10, further comprising a transparent carrier adjacent the first spectral filter.
19. A method of manufacturing a lighting device for optical imaging, the method comprising: providing a light source; providing a first spectral filter, the first spectral filter having a first angular dependence of a transmission passband and comprising at least one dielectric filter; matching the first angular dependence to a second angular dependence of a transmission passband of second spectral filter for a light detection unit; partially encasing the light source in a package comprising reflective elements; and coupling the first spectral filter to the package.
20. The method of claim 19, further comprising filling empty spaces in the package with a transparent filler material.
Description
BRIEF DESCRIPTION OF THE DRAWING(S)
(1) Examples of the invention will now be described in detail with reference to the accompanying drawing, in which:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT(S)
(7)
(8) The spectral filter has a narrow transmission passband in the sense that the transmission passband is narrow in comparison to the wavelength range 2 emitted by a light source such as an LED. The FWHM of the transmission passband of the spectral filter is smaller or equal than 60 nm. The wavelength range 2 may for instance extend from 400 nm to 1100 nm, in particular from 800 nm to 1000 nm for biometric authentication purposes.
(9)
(10) Spectral filters with properties as shown in
(11)
(12) The system 4 is configured for optical imaging for optical authentication purposes in that an image of the face of a person 10 is recorded. To this end, the light source 6 serves as a dedicated light source for the light detection unit 8, wherein a first spectral filter 12 and second spectral filter 14 are used to suppress the contribution of ambient light in the image recorded by the light detection unit 8. System 4 may be an element of an electronic device, wherein the electronic device is configured for optical authentication and/or biometric analysis.
(13) The first spectral filter 12 of the light source 6 has a first angular dependence of a transmission passband on an incidence angle and the second spectral filter 14 of the light detection unit 8 has a second angular dependence of a transmission passband on an incidence angle. In particular, to increase the intensity of light originating from the light source 6 that is detected by the light detection unit 8, while first and second spectral filters 12, 14 have narrow transmission passbands, the first angular dependence and the second angular dependence are matched to each other.
(14) In
(15) Light ray 16 passes the first spectral filter 12 at a certain incidence angle α.sub.16 with a wavelength λ.sub.16 within the transmission passband, wherein said transmission passband corresponds to said incidence angle α.sub.16. After being reflected from the face of person 10, the light ray 16 impinges on the second spectral filter 14 with an incidence angle α′.sub.16. As the first angular dependence and the second angular dependence are matched to each other, the light ray 16 (with its corresponding wavelength λ.sub.16) may pass the second spectral filter 14 and can be detected in the light detection unit 8.
(16) Light ray 18 passes the first spectral filter 12 at an incidence angle α.sub.18 with a wavelength λ.sub.18 within the transmission passband, wherein said transmission passband corresponds to said incidence angle α.sub.18. In this example, the incidence angles α.sub.16 and α.sub.18 and—due to the first angular dependence of first spectral filter 12—the wavelengths λ.sub.16 and λ.sub.18 are different. After being reflected from the face of person 10, the light ray 18 impinges on the second spectral filter 14 with an incidence angle α′.sub.18. Similar to the situation for light ray 16, as the first angular dependence and the second angular dependence are matched to each other, the light ray 18 (with its corresponding wavelength λ.sub.18) may pass the second spectral filter 14 and can be detected in the light detection unit 8.
(17)
(18) The package further comprises the first spectral filter 12, which is supported by a carrier 32. The carrier 32 may for instance comprise glass or transparent plastics. As illustrated by the arrows in
(19)
(20) As the first and second angular dependence are matched to each other, the amount of light passing the second spectral filter 14 may be optimized, as the light rays travel towards the second spectral filter 14 with an incidence angle that matches the transmission passband of the second spectral filter 14 to the wavelength of the light rays.
(21) It will be understood that all presented embodiments are only exemplary, and that any feature presented for a particular exemplary embodiment may be used with any aspect of the invention on its own or in combination with any feature presented for the same or another particular exemplary embodiment and/or in combination with any other feature not mentioned. It will further be understood that any feature presented for an example embodiment in a particular category may also be used in a corresponding manner in an example embodiment of any other category.