Efficient backside-emitting/collecting grating coupler
US-9028157-B2 · May 12, 2015 · US
US9620931B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9620931-B2 |
| Application number | US-201414470553-A |
| Country | US |
| Kind code | B2 |
| Filing date | Aug 27, 2014 |
| Priority date | Mar 30, 2012 |
| Publication date | Apr 11, 2017 |
| Grant date | Apr 11, 2017 |
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An optical device includes a silicon waveguide core having a tapered portion having a sectional size that decreases toward a terminal end portion thereof, a dielectric waveguide core contiguous to the silicon waveguide core while covering at least the tapered portion, the dielectric waveguide core having a refractive index lower than that of the silicon waveguide core and configuring a single-mode waveguide, and a diffraction grating provided at the single-mode waveguide and configuring a distributed Bragg reflection mirror.
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What is claimed is: 1. An optical device, comprising: a silicon waveguide core having a tapered portion having a sectional size that decreases toward a terminal end portion thereof; a dielectric waveguide core contiguous to the silicon waveguide core while covering at least the tapered portion, the dielectric waveguide core having a refractive index lower than that of the silicon waveguide core and configuring a single-mode waveguide; and a diffraction grating provided at a region, in which the silicon waveguide core does not exist, of a dielectric waveguide including the dielectric waveguide core and configuring a distributed Bragg reflection mirror, the diffraction grating not being in contact with the silicon waveguide core; wherein the diffraction grating is configured from a silicon film having a refractive index greater than that of the dielectric waveguide core and is provided on the same plane as that of the silicon waveguide core. 2. The optical device according to claim 1 , further comprising a transition region including the tapered portion, a distributed Bragg reflection mirror region including the diffraction grating and a coupling region that couples the transition region and the distributed Bragg reflection mirror region to each other. 3. The optical device according to claim 1 , wherein the diffraction grating projects to the outer side of the dielectric waveguide core. 4. The optical device according to claim 1 , further comprising a cladding layer having a refractive index lower than that of the dielectric waveguide core and provided so as to cover the dielectric waveguide core. 5. The optical device according to claim 1 , further comprising: a different silicon waveguide core having a tapered portion having a sectional size that decreases toward a terminal end portion thereof; wherein the different silicon waveguide core is provided at the opposite side to the silicon waveguide core across the diffraction grating such that the terminal end portion of the different silicon waveguide core is placed at the diffraction grating side; and the dielectric waveguide core covers at least the tapered portion of the different silicon waveguide core. 6. An optical reception device, comprising: a Mach-Zehnder interferometer having two arms between two optical couplers; the optical device according to claim 5 provided at each of the two arms; a first optical detector coupled to one of the two optical couplers; an optical demultiplexer coupled to the other one of the two optical couplers; and a second optical detector coupled to the optical demultiplexer. 7. The optical device according to claim 1 , wherein the dielectric waveguide core has a tapered portion having a sectional size that increases toward a terminal end portion thereof at the opposite side to the silicon waveguide core across the diffraction grating. 8. The optical device according to claim 1 , wherein an end face of the dielectric waveguide core at the opposite side to the silicon waveguide core across the diffraction grating is inclined obliquely with respect to a light propagation direction. 9. The optical device according to claim 1 , further comprising a ring resonator filter coupled to a silicon waveguide configured from the silicon waveguide core. 10. A hybrid laser, comprising: the optical device according to claim 9 ; a gain medium optically coupled to the optical device; and a reflection mirror provided at the opposite side to the distributed Bragg reflection mirror across the silicon waveguide, ring resonator filter and gain medium and configuring a laser cavity. 11. A hybrid laser, comprising: the optical device according to claim 1 ; a gain medium optically coupled to the optical device; and a reflection mirror provided at the opposite side to the distributed Bragg reflection mirror across the gain medium and configuring a laser cavity. 12. An optical transmission device, comprising: a plurality of optical devices according to claim 1 ; a plurality of ring optical modulators coupled one by one to the plurality of optical devices; an optical multiplexer coupled to each of the plurality of ring optical modulators; and an output waveguide coupled to the optical multiplexer. 13. The optical transmission device according to claim 12 , further comprising: a plurality of ring resonator filters coupled one by one to silicon waveguides configured from the silicon waveguide cores provided in the plurality of optical devices; and a plurality of optical couplers coupled one by one to the plurality of ring resonator filters; wherein the plurality of ring optical modulators are coupled one by one to the plurality of optical couplers. 14. An optical transmission apparatus, comprising: the optical transmission device according to claim 12 ; a gain medium array optically coupled to the optical transmission device and including a plurality of gain mediums; and a reflection mirror provided at the opposite side to the plurality of distributed Bragg reflection mirrors provided at the optical transmission device across the gain medium array, the reflection mirror configuring a laser cavity. 15. An optical device, comprising: a silicon waveguide core having a tapered portion having a sectional size that decreases toward a terminal end portion thereof; a dielectric waveguide core contiguous to the silicon waveguide core while covering at least the tapered portion, the dielectric waveguide core having a refractive index lower than that of the silicon waveguide core and configuring a single-mode waveguide; and a diffraction grating provided at a region, in which the silicon waveguide core does not exist, of a dielectric waveguide including the dielectric waveguide core and configuring a distributed Bragg reflection mirror, the diffraction grating not being in contact with the silicon waveguide core; wherein the diffraction grating is configured by periodically varying the sectional size of the dielectric waveguide core. 16. The optical device according to claim 15 , wherein the diffraction grating is configured from a portion of the dielectric waveguide core projecting from a side face of the dielectric waveguide core. 17. The optical device according to claim 15 , wherein the diffraction grating is configured from a concave portion of an upper face of the dielectric waveguide core.
Tapered waveguide, e.g. spotsize converter (H01S5/1064 takes precedence) · CPC title
which comprises an additional resonator · CPC title
emitting more than one wavelength · CPC title
Silicon · CPC title
Receivers · CPC title
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