Optical coherent receiver with local oscillator laser having hybrid cavity
US-9100129-B2 · Aug 4, 2015 · US
US9927575B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9927575-B2 |
| Application number | US-201615162765-A |
| Country | US |
| Kind code | B2 |
| Filing date | May 24, 2016 |
| Priority date | Jun 25, 2015 |
| Publication date | Mar 27, 2018 |
| Grant date | Mar 27, 2018 |
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An optical coupling apparatus for coupling an optical fiber to a photonic chip is described. The apparatus includes a collimating microlens for collimating light from the optical fiber; a polarization splitting beam displacer for separating the light collimated by the collimating microlens into orthogonally polarized X and Y component beams; at least one focusing microlens for directing the X and Y component beams separately onto the photonic chip; and first and second surface grating couplers (SGCs) orthogonally disposed on the photonic chip and configured for operation in a same polarization state, for coupling the X and Y component beams, respectively, to the photonic chip.
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What is claimed is: 1. An optical coupling apparatus for coupling an optical fiber to a photonic chip, comprising: a collimating microlens for collimating light from the optical fiber; a polarization splitting beam displacer for separating the light collimated by the collimating microlens into orthogonally polarized X and Y component beams; at least one focusing microlens for directing the X and Y component beams separately onto the photonic chip; and first and second surface grating couplers (SGCs) orthogonally disposed on the photonic chip and configured for operation in a same polarization state, for coupling the X and Y component beams, respectively, to the photonic chip. 2. The optical coupling apparatus of claim 1 , wherein the at least one focusing microlens comprises a single focusing microlens for directing both the X and Y component beams, respectively, onto the first and second SGCs. 3. The optical coupling apparatus of claim 1 , wherein the at least one focusing microlens comprises first and second focusing microlenses for directing the X and Y component beams, respectively, onto the first and second SGCs, respectively. 4. The optical coupling apparatus of claim 1 , wherein at least one of the X and Y component beams impinges on the corresponding focusing microlens parallel to an optical axis of the focusing microlens but offset with respect to the optical axis. 5. The optical coupling apparatus of claim 1 , wherein at least one of the X and Y component beams impinges on the corresponding focusing microlens as a skew beam. 6. The optical coupling apparatus of claim 1 , further comprising: an array of optical fibers including the optical fiber; a collimating microlens array including the collimating microlens, for collimating light from the array of optical fibers, wherein the polarization splitting beam displacer is configured for separating light collimated by each microlens of the collimating microlens array into orthogonally polarized X and Y component beams; a focusing microlens array including the at least one focusing microlens, for directing the X and Y component beams separately onto the photonic chip; and an SGC array configured for operation in a same polarization state and comprising first and second SGC sub-arrays including the first and second SGCs, respectively, wherein the first and second SGC sub-arrays are configured for coupling the X and Y component beams, respectively, separately to the photonic chip. 7. The optical coupling apparatus of claim 6 , wherein the focusing microlens array includes first and second focusing microlens sub-arrays for focusing the X and Y component beams, respectively, onto the first and second SGC sub-arrays, respectively. 8. The optical coupling apparatus of claim 7 , wherein the first and second focusing microlens sub-arrays are arranged in alternating rows. 9. The optical coupling apparatus of claim 8 , wherein the alternating rows form a non-rectangular pattern of microlenses. 10. The optical coupling apparatus of claim 8 , further comprising a spacer defining a distance between the focusing microlens array and the photonic chip. 11. The optical coupling apparatus of claim 1 , wherein the polarization splitting beam displacer comprises a birefringent plate. 12. The optical coupling apparatus of claim 1 , wherein the polarization splitting beam displacer comprises a polarization-selective reflector. 13. The optical coupling apparatus of claim 1 , wherein the at least one focusing microlens is configured for directing the X and Y component beams away from each other and towards the photonic chip, such that angles of incidence of the X and Y component beams onto the photonic chip correspond to coupling angles of the first and second SGCs, respectively. 14. The optical coupling apparatus of claim 13 , wherein the at least one focusing microlens is disposed off-axis with respect to the X and Y component beams. 15. The optical coupling apparatus of claim 1 , wherein a spot size of light at the SGCs is larger than a spot size of light from the optical fiber. 16. The optical coupling apparatus of claim 1 , wherein the optical fiber is parallel to the photonic chip. 17. The optical coupling apparatus according to claim 1 , wherein a focal length of the focusing microlens is greater than a focal length of the collimating microlens.
having lens focusing means {positioned between opposed fibre ends (with lens being an integral part of the single fibre end G02B6/262)} · CPC title
using polarisation effects {(G02B6/1226 takes precedence)} · CPC title
as bulk elements, i.e. free space arrangements external to a light guide, e.g. polarising beam splitters · CPC title
Coupler · CPC title
Grating · CPC title
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