OPTICAL DEVICE AND MANUFACTURING METHOD
Optical Device and Manufacturing Method An optical device ( 380 ) is disclosed, the device comprising a substrate ( 330 ), first electrically-conductive element ( 325 ) formed as a pattern on the substrate, a layer of material extending over at least a portion of the first electrically-conductive element and forming an optical element ( 370 ), and a second electrically-conductive element ( 355 ) extending through the layer of material and coupled to the first electrically-conductive element. Also disclosed is an associated method of manufacturing the optical device ( 380 ), and an apparatus ( 600 ) comprising at least one of the disclosed optical devices, a camera ( 605 ), and processing circuitry ( 615 ) communicably coupled to the at least one optical device and to the camera.
1 . An optical device ( 380 ) comprising:
a substrate ( 330 );
a first electrically-conductive element ( 325 ) formed as a pattern on the substrate;
a layer of material extending over at least a portion of the first electrically-conductive element and forming an optical element ( 370 ); and
a second electrically-conductive element ( 355 ) extending through the layer of material and coupled to the first electrically-conductive element, wherein the second electrically-conductive element ( 355 ) comprises a cured conductive polymer.
2 . The optical device ( 380 ) of claim 1 , wherein the second electrically-conductive element ( 355 ) forms a conductive path extending from a surface of the layer of material to the first electrically-conductive element ( 325 ).
3 . The optical device ( 380 ) of claim 1 , wherein the layer of material comprises a cured polymer or PDMS.
4 . The optical device ( 380 ) of claim 1 , wherein the first electrically-conductive element ( 325 ) is an electrical trace for an eye safety circuit.
5 . The optical device ( 380 ) of claim 1 , wherein the optical element ( 370 ) comprises at least one of: a lens; a microlens array; a diffraction grating; a diffuser; a Fresnel lens; a filter; a waveguide.
6 . The optical device ( 380 ) of claim 1 , wherein the second electrically-conductive element ( 355 ) is substantially spherical-frustum-shaped and/or wherein the second electrically-conductive element is laterally surrounded by the layer of material.
7 . The optical device ( 400 ) of claim 1 , comprising a spacer ( 415 ), the spacer comprising a third electrically-conductive element ( 455 ), the third electrically-conductive element being conductively coupled to the first electrically-conductive-element ( 430 ) by the second electrically-conductive element ( 455 ).
8 . The optical device ( 400 ) of claim 7 , comprising a further substrate ( 420 ), the spacer ( 415 ) disposed between the substrate ( 405 ) and the further substrate, the first electrically-conductive element ( 430 ) coupled to a fourth electrically-conductive element ( 460 ) formed on the further substrate by the second and third electrically-conductive elements ( 445 , 455 ).
9 . The optical device ( 400 ) of claim 1 , comprising an active element, the active element ( 425 ) comprising at least one of: a sensor and/or a radiation emitter.
10 . The optical device ( 400 ) of claim 9 , wherein at least one of:
the layer of material is substantially transparent to radiation emitted by the radiation emitter and/or sensed by the sensor; and
the first electrically-conductive element ( 430 ) is substantially transparent to radiation emitted by the radiation emitter and/or sensed by the sensor.
11 . The optical device ( 400 ) of claim 1 , comprising circuitry configured to detect a variation in a resistance of a circuit formed from the first electrically-conductive element.
12 . The optical device ( 400 ) of claim 1 , wherein the optical device is one of: an illuminator; a proximity sensor; a spectral sensor; an ambient light sensor; a dot-projector; a light-to-frequency sensor.
13 . A method of manufacturing an optical device ( 380 ), the method comprising the steps of:
dispensing a curable conductive polymer onto a tool ( 315 );
disposing the tool relative to a substrate ( 330 ) such that the curable conductive polymer contacts a first electrically-conductive element ( 325 ) formed as a pattern on the substrate;
curing the curable conductive polymer to form a second electrically-conductive element ( 355 ) coupled to the first electrically-conductive element; and
forming a layer of material between the tool and the substrate such that the second electrically-conductive element extends through the layer of material, a profile of the tool configured to define an optical element in the layer.
14 . The method of claim 13 , wherein the step of forming a layer of material between the tool and the substrate comprises vacuum injection moulding.
15 . The method of claim 13 , wherein the step of curing the conductive polymer comprises thermal and/or UV curing of the conductive polymer.
16 . An apparatus ( 600 ) comprising:
at least one optical device ( 610 ) according to claim 1 ,
a camera ( 605 ); and
processing circuitry ( 615 ) communicably coupled to the at least one optical device and to the camera.