TRANSCEIVER HIGH DENSITY MODULE
20200326482 ยท 2020-10-15
Inventors
- Bardia Pezeshki (Menlo Park, CA)
- Ramsey Selim (Edinburgh, GB)
- John Heanue (Boston, MA)
- Henk Bulthuis (Newark, CA)
- Susannah Heck (Edinburgh, GB)
Cpc classification
International classification
Abstract
An optical coupler couples light from waveguides of a photonic integrated circuit (PIC) to output waveguides, for example waveguides of a planar lightwave circuit (PLC). The optical coupler includes optical elements having different optical properties. In some embodiments the optical properties vary to account for waveguide angled facets in the PIC, and in some embodiments the optical properties vary to account for the PIC being mounted at an angle compared to the PLC, or optical coupler.
Claims
1-2. (canceled)
3. An optical module, comprising: a photonic integrated circuit (PIC) having a plurality of waveguides configured to emit light at a non-zero angle to an output edge of the PIC, each of the plurality of wave guides having a waveguide angle facet; an output medium; and an optical coupler including a plurality of optical elements for coupling light from the plurality of waveguides of the PIC to the output medium wherein each one of the plurality of optical elements focuses light from one of the plurality of waveguides at an effective focal length that is the same as an effective focal length of other ones of the plurality of optical elements and has optical properties that vary from at least one other one of the plurality of optical elements based on a distance between the one of the plurality of optical elements and an associated one of the plurality of waveguides and the effective focal length; wherein the optical coupler includes a first lens array of a plurality of lenses wherein each lens in the first lens array focuses the light from one of the plurality of waveguides of the PIC and has a radius of curvature based upon the focal length and a device distance of the one of the plurality of waveguides emitting the light focused by the lens; and wherein the optical coupler includes a step index box made of material that causes the light emitted from each of the plurality of waveguides to have the same effective device distance and each lens in the first lens array has the same radius of curvature based on the light emitted from the waveguides having the same effective device distance.
4. An optical module, comprising: a photonic integrated circuit (PIC) having a plurality of waveguides configured to emit light at a non-zero angle to an output edge of the PIC, each of the plurality of waveguides having a waveguide angle facet; an output medium; and an optical coupler including a plurality of optical elements for coupling light from the plurality of waveguides of the PIC to the output medium wherein each one of the plurality of optical elements focuses light from one of the plurality of waveguides at an effective focal length that is the same as an effective focal length of other ones of the plurality of optical elements and has optical properties that vary from at least one other one of the plurality of optical elements based on a distance between the one of the plurality of optical elements and an associated one of the plurality of waveguides and the effective focal length; wherein the optical coupler includes a first lens array of a plurality of lenses wherein each lens in the first lens array focuses the light from one of the plurality of waveguides of the PIC and has a radius of curvature based upon the focal length and a device distance of the one of the plurality of waveguides emitting the light focused by the lens; and wherein the optical coupler includes a plurality of collimating lenses wherein each of the plurality of collimating lenses collimates light from one of the waveguides of the PIC into one lens of the first lens array and each lens of the first lens array focuses the collimated light onto a single portion of the output medium.
5. An optical module, comprising: a photonic integrated circuit (PIC) having a plurality of waveguides configured to emit light at a non-zero angle to an output edge of the PIC, each of the plurality of waveguides having a waveguide angle facet; an output medium; and an optical coupler including a plurality of optical elements for coupling light from the plurality of waveguides of the PIC to the output medium wherein each one of the plurality of optical elements focuses light from one of the plurality of waveguides at an effective focal length that is the same as an effective focal length of other ones of the plurality of optical elements and has optical properties that vary from at least one other one of the plurality of optical elements based on a distance between the one of the plurality of optical elements and an associated one of the plurality of waveguides and the effective focal length; wherein the optical coupler includes a first lens array of a plurality of lenses wherein each lens in the first lens array focuses the light from one of the plurality of waveguides of the PIC and has a radius of curvature based upon the focal length and a device distance of the one of the plurality of waveguides emitting the light focused by the lens; and wherein the optical coupler further comprises a second lens array of a plurality of lenses wherein each lens in the first lens array focuses light onto one lens of the second lens array and each lens of the second lens array focuses light on a particular portion of the output medium.
6. An optical module, comprising: a photonic integrated circuit (PIC) having a plurality of waveguides configured to emit light at a non-zero angle to an output edge of the PIC, each of the plurality of waveguides having a waveguide angle facet; an output medium; and an optical coupler including a plurality of optical elements for coupling light from the plurality of waveguides of the PIC to the output medium wherein each one of the plurality of optical elements focuses light from one of the plurality of waveguides at an effective focal length that is the same as an effective focal length of other ones of the plurality of optical elements and has optical properties that vary from at least one other one of the plurality of optical elements based on a distance between the one of the plurality of optical elements and an associated one of the plurality of waveguides and the effective focal length; wherein the optical coupler includes a first lens array of a plurality of lenses and further comprises a second lens array of a plurality of lenses, wherein each lens of the first lens array collimates light from one of the plurality of waveguides onto one corresponding lens of the second lens array and each lens of the second lens array focuses the collimated light from a lens of the first lens array onto a particular portion of the output medium.
7. The optical module of claim 5 wherein each lens in the first lens array is a glass ball lens and each lens in the second lens array is a glass ball lens.
8. The optical module of claim 5 wherein each lens in the first lens array is a silicon ball lens and each lens in the second lens array is a glass ball lens.
9. The optical module of claim 5 wherein at least one lens in the first lens array and at least one lens in the second lens array are each mounted on a moveable MEMs platform.
10. An optical module, comprising: a photonic integrated circuit (PIC) having a plurality of waveguides configured to emit light at a non-zero angle to an output edge of the PIC, each of the plurality of waveguides having a waveguide angle facet; an output medium; and an optical coupler including a plurality of optical elements for coupling light from the plurality of waveguides of the PIC to the output medium wherein each one of the plurality of optical elements focuses light from one of the plurality of waveguides at an effective focal length that is the same as an effective focal length of other ones of the plurality of optical elements and has optical properties that vary from at least one other one of the plurality of optical elements based on a distance between the one of the plurality of optical elements and an associated one of the plurality of waveguides and the effective focal length; wherein the optical coupler includes a first lens array of a plurality of lenses wherein each lens in the first lens array focuses the light from one of the plurality of waveguides of the PIC and has a radius of curvature based upon the focal length and a device distance of the one of the plurality of waveguides emitting the light focused by the lens; and wherein a lens of the first lens array is mounted on a moveable MEMs module.
11-17. (canceled)
Description
BRIEF DESCRIPTION OF THE FIGURES
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
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DETAILED DESCRIPTION
[0029]
[0030] In the embodiment of
[0031] The optical elements of the optics 113 vary so as to focus light from each of the waveguides of the PIC 111 to corresponding waveguides of the PLC 115. In some embodiments, the optical elements 113 have varying optical properties. In some embodiments, the optical elements 113 have optical properties that vary such that different ones of the optical elements focus images at the same image distance despite different object distances for the different ones of the optical elements 113. In some embodiments, the optical elements 113 are arranged in a linear array, with successive optical elements in the linear array having an output surface, with the output surface of each successive optical element having a different radius of curvature. In some embodiments the output surfaces are aspheric. In some embodiments, the optical elements 113 are lenses. In some embodiments the lenses have an aspheric output surface, with at least some of the lenses having different radius of curvature for the aspheric output surface. In some embodiments, the lenses (or array of lenses) are mounted on a moveable MEMs platform, to allow for positioning of the lenses to focus light from the PIC 111 into waveguides of the PLC 115. In some embodiments, the moveable MEMs platform is as discussed in U.S. Pat. No. 8,346,037 entitled MICROMECHANICALLY ALIGNED OPTICAL ASSEMBLY or U.S. Pat. No. 8,917,963, entitled MEMS-BASED LEVERS AND THEIR USE FOR ALIGNMENT OF OPTICAL ELEMENTS the disclosures of which are incorporated by reference.
[0032]
[0033] For the PIC 211, the waveguides may be used, for example, for passing light from a laser or other light source (not shown in
[0034] The angle facet, however, results in the waveguide 213 being at an angle non-normal to the output edge of the PLC 211, with the angle being shown as 1 in
[0035]
[0036] The PIC 311 includes a plurality of light sources, for example lasers, to provide light to be passed out of the PIC 311 through a plurality of waveguides, for example waveguide 319. The waveguides include angle facets, for example angle facet 321, near an output edge 323 of the PIC 311. The angle facets have an angle 1, with respect to the waveguides, which are perpendicular to the output edge 323 of the PIC 311. Due to refraction, light exiting the waveguides will do so at an angle 2 with respect to a normal to the output edge of the PLC 317.
[0037] For example to reduce the angle at which the light approaches the lens array 313, the PIC 311 in the embodiment of
[0038] The lens array 313 focuses the light from the PIC 311 into waveguides of the PLC 317. Preferably the lenses of the lens array 313 does so to maximize power into the waveguides of the PLC 317. In some embodiments, depending on the relative angle of approach of light from the PIC 311, and, in some embodiments, position of the PLC 317, lenses of the lens array 313 may be aspheric. In addition, for the lens array 313, although the image distance is generally the same for each lens, as each of the lenses are generally the same distance to the PLC 311. The object distance, however, differs for each lens, considering that the distance from the output edge 323 of the PIC 311 to the lens array varies. Accordingly, the focal length of the lenses also varies. In
[0039]
[0040]
[0041] The embodiment of
[0042] The refractive index of the materials may be set such that the effective optical distance between the PIC 311 and the lens array 413 is a constant. In such embodiments, lenses of the lens array 413 may have the same focal length, and may for example have the same radius of curvature. Alternatively, in some embodiments the refractive index of various portions of the step index block 415 may vary, but not sufficiently so as to allow for lenses of the lens array 413 to have the same radius of curvature.
[0043]
[0044] The lens array 513 focuses light from each of the waveguides of the PIC 311 into corresponding waveguides of the PLC 317. To do so, considering the different optical distances between the different PIC waveguide-lens pairs, the lenses generally have different radii of curvature.
[0045] In addition, in some embodiments, and for example as shown in
[0046]
[0047] In
[0048]
[0049] Light from waveguides of the PIC 311 are collimated by lenses of a lens array 713. In many embodiments the lenses are portions of a larger full lens. The collimated light is passed through one or more optical isolators 715, and focused by further lenses 717 into an output medium. In
[0050]
[0051] In some embodiments, and as illustrated in
[0052]
[0053] Light from the waveguides of the PIC 311 is passed through an array of lenses 913. The array of lenses 913 includes bi-concave lens for focusing light into waveguides of a PLC 317. In most embodiments the lenses, or the input or output lenses, are aspheric, to account for the angle at which light reaches the lenses from the angled facet waveguides of the PIC 311. As with several other embodiments, an optical isolator 315 is between the array of lenses 913 and the PLC 317.
[0054]
[0055] A first lens array 1014 directs light from the PIC 1013 towards a second lens array 1025. The second lens array 1025 directs light into waveguides of the PLC 1019. In some embodiments the first lens array 1014 includes a plurality of glass ball lenses, for example glass ball lens 1015. In some embodiments the second lens array 1025 also includes a plurality of glass ball lenses, for example, glass ball lens 1027. An optical isolator 1017 is between the two lens arrays.
[0056] Also in the embodiment of
[0057]
[0058] A first lens array 1114 directs light from the PIC 1113 towards a second lens array 1125. The second lens array 1125 directs light into waveguides of the PLC 1119. An optical isolator 1117 is between the two lens arrays. In the embodiment of
[0059] Although the invention has been discussed with respect to various embodiments, it should be recognized that the invention comprises the novel and non-obvious claims supported by this disclosure.