Laser with a controllable output wavelength
US-2019296517-A1 · Sep 26, 2019 · US
US12007607B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-12007607-B2 |
| Application number | US-202318093649-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jan 5, 2023 |
| Priority date | Mar 20, 2017 |
| Publication date | Jun 11, 2024 |
| Grant date | Jun 11, 2024 |
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Aspects of the present disclosure describe large scale steerable optical switched arrays that may be fabricated on a common substrate including many thousands or more emitters that may be arranged in a curved pattern at the focal plane of a lens thereby allowing the directional control of emitted light and selective reception of reflected light suitable for use in imaging, ranging, and sensing applications including accident avoidance.
Opening claim text (preview).
The invention claimed is: 1. An optical structure comprising: a light source; a plurality of optical emitters on a common substrate, each configured to emit a light beam from a different respective portion of the common substrate; an optical power distribution network optically connecting the light source to the plurality of optical emitters, said optical power distribution network including one or more switches; a receiver comprising at least one photo-detector on the common substrate with the plurality of optical emitters and the optical power distribution network; and a processing system configured to perform coherent detection; wherein said one or more switches are configured such that optical power emitted from the light source that enters the optical power distribution network will be emitted from a subset of the plurality of optical emitters; wherein a portion of the emitted optical power is subsequently reflected by an object; and wherein the reflected optical power is detected by the receiver that provides one or more signals conveyed to the processing system. 2. The optical structure of claim 1 wherein the one or more switches comprise a plurality of switches that are organized into levels of switches, and switches at a same level are all switched simultaneously. 3. The optical structure of claim 1 wherein the plurality of optical emitters are arranged along a common arc. 4. The optical structure of claim 1 wherein the one or more switches comprise a plurality of switches that are organized into levels, and switches at one level operate at a speed different from the speed of operation for switches at a different level. 5. The optical structure of claim 4 wherein switches of the plurality of switches proximate to the plurality of optical emitters operate at the slowest speed(s). 6. The optical structure of claim 1 further comprising an optical element positioned in the optical path of the emitted optical power. 7. The optical structure of claim 6 wherein the optical element comprises a lens. 8. The optical structure of claim 1 wherein the optical power distribution network is a tree network and the one or more switches include at least one of: one or more 1×2 switches, one or more 1×3 switches, one or more 1×4 switches, one or more 2×2 switches, or one or more 2×3 switches. 9. The optical structure of claim 1 wherein at least one of the one or more switches is one selected from the group consisting of thermo-optic and electro-optic switch(es). 10. The optical structure of claim 1 wherein each one of the plurality of optical emitters is one selected from the group consisting of: an optical grating, end-fire facet, plasmonic emitter, metal antennae, and mirror facet. 11. The optical structure of claim 1 wherein each of the plurality of optical emitters comprises an optical grating. 12. The optical structure of claim 1 wherein the optical emitters are further configured to receive the reflected optical power and convey the reflected optical power to the array of optical receivers. 13. The optical structure of claim 1 wherein the optical emitters are further configured to emit a light beam from a different respective portion of the common substrate toward an external lens that is external to the common substrate.
using miscellaneous components, e.g. circulator, polarisation, acousto/thermo optical · CPC title
With planar waveguide arrangement, i.e. in a substrate, regardless if actuating mechanism is outside the substrate · CPC title
1xN switch, i.e. one input and a selectable single output of N possible outputs · CPC title
utilising prism or grating {(G02B6/293 takes precedence)} · CPC title
Arrangements specific to free-space transmission, i.e. transmission through air or vacuum · CPC title
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