IP Library › Granted Patent US 12,487,418
Granted Patent B2
US 12,487,418 · App. 18/611,286 · Granted Dec 2, 2025

Multichannel optical coupler array

Inventors: Victor Il'ich Kopp (Fair Lawn, NJ); Jongchul Park (Lake Hiawatha, NJ); Daniel Neugroschl (Suffern, NY)
Assignee: Chiral Photonics, Inc.
G02B6/425G02B6/4206
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Quick Facts
Patent No.
US 12,487,418
App. No.
18/611,286
Granted
Dec 2, 2025
Kind
B2
Abstract

A multichannel optical coupler array can include a coupler housing structure and longitudinal waveguides. At least one of the longitudinal waveguides can be a vanishing core waveguide having an inner vanishing core having a first refractive index (N-1), an outer core having a second refractive index (N-2), and an outer cladding having a third refractive index (N-3). A refractive index transition between N-1 and N-2 can have a function form N(r), where r is a transverse distance from the inner vanishing core center. The function N(r) can be a smooth function having a positive average of the second derivative or function N(r) can be a step function with at least one step approximating the smooth function. The coupler housing structure may have non-circular holes formed by convex-shaped housing structure elements.

Claims (28)

1 . A multichannel optical coupler array, comprising:

an elongated optical element having a first end and a second end, wherein said first and second ends are operable to optically couple with a plurality of optical fibers, an optical device, or combinations thereof, the optical element further comprising:

a coupler housing structure having a housing outer size; and

a plurality of longitudinal waveguides arranged with respect to one another within said housing structure,

wherein said housing outer size and spacing between all said plurality of longitudinal waveguides reduce along said optical element from said first end to said second end,

wherein said coupler housing structure at a proximity to the first end comprises at least one hole, wherein the at least one hole contains at least one of said plurality of longitudinal waveguides creating a gap between the coupler housing structure and the at least one of said plurality of longitudinal waveguides, wherein the at least one hole comprises at least one non-circular hole created by a plurality of convex portions of the coupler housing structure.

2 . The optical coupler array of claim 1 , wherein proximate the second end, the coupler array comprises substantially no gap between the coupler housing structure and the at least one of said plurality of longitudinal waveguides.

3 . The optical coupler array of claim 1 , wherein the at least one hole comprises a plurality of holes.

4 . The optical coupler array of claim 3 , wherein at least one of the holes has a different dimension than another one of the holes.

5 . The optical coupler array of claim 3 , wherein at least one of the holes has a different shape than another one of the holes.

6 . The optical coupler array of claim 3 , wherein the holes are isolated.

7 . The optical coupler array of claim 3 , wherein some of the holes are connected.

8 . The optical coupler array of claim 1 , wherein the at least one of said plurality of longitudinal waveguides comprises a non-vanishing core waveguide.

9 . The optical coupler array of claim 1 , wherein the at least one of said plurality of longitudinal waveguides comprises a vanishing core waveguide.

10 . The optical coupler array of claim 9 , wherein individual ones of the plurality of longitudinal waveguides have a capacity for at least one optical mode, wherein the plurality of longitudinal waveguides is embedded in said housing structure at a proximity to the second end, wherein said vanishing core waveguide comprises:

an inner vanishing core, having a first refractive index (N-1), and having an inner core size;

an outer core, longitudinally surrounding said inner core, having a second refractive index (N-2), and having an outer core size; and

an outer cladding, longitudinally surrounding said outer core, having a third refractive index (N-3), and having a cladding size;

wherein said coupler housing structure comprises a medium having a fourth refractive index (N-4) surrounding said plurality of longitudinal waveguides, wherein N-1>N-2>N-3,

wherein said inner core size, said outer core size, and said spacing between said plurality of longitudinal waveguides reduce along said optical element from said first end to said second end such that at said second end, said inner core size is insufficient to guide light therethrough, and said outer core size is sufficient to guide at least one optical mode.

11 . The optical coupler array of claim 10 , wherein the coupler housing structure comprises a common single coupler housing structure.

12 . The optical coupler array of claim 10 , wherein the medium is a transversely contiguous medium.

13 . The optical coupler array of claim 10 , wherein a total volume of said medium of said coupler housing structure is greater than a total volume of all the inner and outer cores of the vanishing core waveguide confined within said coupler housing structure.

14 . The optical coupler array of claim 10 , wherein said inner core size, said outer core size, and said spacing between said plurality of longitudinal waveguides simultaneously and gradually reduce from said first end to said second end.

15 . The optical coupler array of claim 10 , wherein N-4 is greater than N-3.

16 . The optical coupler array of claim 1 , wherein a medium of said common coupler housing structure is pure silica.

17 . The optical coupler array of claim 1 , wherein said at least one hole comprises at least one hole created by a tube surrounded by the plurality of convex portions of the coupler housing structure.

18 . A method of fabricating the optical coupler array of claim 1 , comprising creating the at least one hole with a tube surrounded by the plurality of convex portions of the coupler housing structure.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 21, 2024
From: KOPP, VICTOR IL'ICH; PARK, JONGCHUL; NEUGROSCHL, DANIEL
To: CHIRAL PHOTONICS, INC.
Reel/Frame 066860/0078 →
Continuity (14)
Continuation 17452173 · Oct 25, 2021
Continuation In Part 16600219 · Oct 11, 2019
Continuation In Part 16159310 · Oct 12, 2018
Continuation In Part 15811462 · Nov 13, 2017
Continuation In Part 15617684 · Jun 8, 2017
Continuation In Part 15459730 · Mar 15, 2017
Continuation In Part 15459730 · Mar 15, 2017
Continuation In Part 14306217 · Jun 16, 2014
Provisional Application 63203052 · Jul 6, 2021
Provisional Application 63147128 · Feb 8, 2021
Provisional Application 62564178 · Sep 27, 2017
Provisional Application 62417180 · Nov 3, 2016
Provisional Application 61834957 · Jun 14, 2013
Related Publication 20240219661A1 · Jul 4, 2024
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A. Z. Genack, V. I. Kopp, V. M. Churikov, J. Singer, N. Chao, and D. Neugroschl, “Chiral fiber Bragg gratings”, Proceedings of SPIE 5508, 57, pp. 1-8 (2004). [cited by applicant]
A. Z. Genack, V. I. Kopp, V. M. Churikov, J. Singer, N. Chao, and D. Neugroschl, “From planar to fiber chiral gratings”, (Invited Paper), Proceedings of SPIE 5741, 90-97 (2005). [cited by applicant]
B.G. Lee, F.E.Doany, S. Assefa, W.M.J. Green, M. Yang, C.L. Schow, C.V. Jahnes, S. Zhang, J. Singer, V.I. Kopp, J.A. Kash, and Y.A. Vlasov, “20-um-Pitch Eight-Channel Monolithic Fiber Array Coupling 160 GB/s/Channel to … [cited by applicant]
Bin Huang et al., “All-fiber mode-group-selective photonic lantern using graded-index multimode fibers”, Optics Express, Optical Society of America, pp. 224-234 (2015). [cited by applicant]
C. R. Doerr, L. Zhang, P. J. Winzer, “Monolithic InP Multi-Wavelength Coherent Receiver”, Proc. OFC, paper PDPB1, Optical Society of America, pp. 1-3, (2010). [cited by applicant]
C.R. Doerr, L. Zhang, L. Buhl, V.I. Kopp, D. Neugroschl, and G. Weiner, “Tapered Dual-Core Fiber for Efficient and Robust Coupling to InP Photonic Integrated Circuits”, Proc. OFC, Optical Society of America, pp. 1-3 (20… [cited by applicant]
D. Neugroschl, J. Park, M. Wlodawski, J. Singer, and V.I. Kopp, “High-efficiency (6+1)x1 combiner for high power fiber lasers and amplifiers”, Proc. SPIE 8601, Fiber Lasers X: Technology, Systems, and Applications, 8601… [cited by applicant]
D. Neugroschl, V.I. Kopp, J. Singer, and G. Zhang, “Vanishing-core tapered coupler for interconnect applications”, Proceedings of SPIE 7221, 72210G, pp. 1-8 (2009). [cited by applicant]
F.E. Doany, B.G. Lee, S.Assefa, W.M.J. Green, M. Yang, C.L. Schow, C.V. Jahnes, S. Zhang, J. Singer, V.I. Kopp, J.A. Kash, and Y.A. Vlasov, “Multichannel High-Bandwidth Coupling of Ultra-Dense Silicon Photonic Waveguide… [cited by applicant]
G. Shvets, S. Trendafilov, V.I. Kopp, D. Neugroschl, and A.Z. Genack, “Polarization properties of chiral fiber gratings”, J. Opt. A: Pure Appl. Opt. 11, 074007, pp. 1-10 (2009). [cited by applicant]
H. Henschel, S.K. Hoeffgen, J. Kuhnhenn and U. Weinand, “High Radiation Sensitivity of Chiral Long Period Gratings”, IEEE Transaction on Nuclear Science, 57, 5, 2915-2922 (2010). [cited by applicant]
International Preliminary Report on Patentability in International Application No. PCT/US2017/059578, mailed May 16, 2019 in 6 pages. [cited by applicant]
International Preliminary Report on Patentability in International Application No. PCT/US2018/036539, mailed Dec. 19, 2019 in 5 pages. [cited by applicant]
International Search Report and Written Opinion of PCT/US2009/050506 dated Jan. 7, 2010 in 8 pages. [cited by applicant]
International Search Report and Written Opinion in International Application No. PCT/US2017/059578, Mailed Feb. 19, 2018 in 9 pages. [cited by applicant]
International Search Report and Written Opinion in International Application No. PCT/US2018/036539, mailed Sep. 28, 2018 in 7 pages. [cited by applicant]
International Search Report and Written Opinion in International Application No. PCT/US2019/052481, mailed Jan. 10, 2020 in 11 pages. [cited by applicant]
International Search Report and Written Opinion in International Application No. PCT/US2019/055965, mailed Jan. 31, 2020 in 10 pages. [cited by applicant]
International Search Report and Written Opinion in International Application No. PCT/US2020/055778, mailed Feb. 2, 2021. [cited by applicant]
International Search Report and Written Opinion in International Application No. PCT/US2022/015518, mailed May 26, 2022 in 11 pages. [cited by applicant]
J. Park, M.S. Wlodawski, J. Singer, D. Neugroschl, A.Z. Genack, V.I. Kopp, “Temperature and Pressure Sensors Based on Chiral Fibers”, Proc. of SPIE 8370, 837008, pp. 1-8 (2012). [cited by applicant]
M. Wlodawski, V.I. Kopp, J. Park, J. Singer, E. Hubner, D. Neugroschl, N. Chao, and A.Z. Genack, “A new generation of ultra-dense optical I/O for silicon photonics,” Proceedings of SPIE—The International Society for Opt… [cited by applicant]
Monica L. Minden, “Passive Coherent Combining of Fiber Oscillators”, Fiber Lasers IV: Technology, Systems, and Applications, Proc. of SPIE vol. 6453, 64530P, pp. 1-8—(2007). [cited by applicant]
N.K. Fontaine, “Photonic Lantern Spatial Multiplexers in Space-Division Multiplexing”, IEEE Photonics Society Summer Topical Meeting Series, Jul. 8, 2013, pp. 97-98. [cited by applicant]
P. De Heyn, V.I. Kopp, S. A. Srinivasan, P. Verheyen, J. Park, M.S. Wlodawski, J. Singer, D. Neugroschl, B. Snyder, S. Balakrishnan, G. Lepage, M. Pantouvaki, P. Absil, and J. Van Campenhout, “Ultra-dense 16x56Gb/s NRZ … [cited by applicant]
P. Liao, M. Sakib, F. Lou, J. Park, M. Wodawski, V.I. Kopp, D. Neugroschl, and O. Liboiron-Ladouceur, “Ultradense Silicon Photonic Interface for Optical Interconnection,” in IEEE Photonics Technology Letters, vol. 27, N… [cited by applicant]
P.V. Shibaev, K. Tang, A.Z. Genack, V. Kopp, and M. M. Green, “Lasing from a stiff chain polymeric lyotropic cholesteric liquid crystal”, Macromolecules 35(8), 3022-3025 (2002). [cited by applicant]
P.V. Shibaev, V.I. Kopp, and A.Z. Genack, “Photonic materials based on mixtures of cholesteric liquid crystals with polymers”, J. Phys. Chem. B. 107, 6961-6964 (2003). [cited by applicant]
S. Guillemet, D. Kinet, A. Bertrand, Y. Hernandez, and D. Giannone, “Experimental study and comparison of three innovative high power CW polarised all-in-fibre laser designs”, IEEE Photonics Benelux Chapter, 141-144 (20… [cited by applicant]
S. Guillemet, D. Kinet, A. Bertrand, Y. Hernandez, and D. Giannone, “High Power All-In-Fibre Linearly Polarized Laser Using Chiral Grating-Based Polarizer”, 4th EPS-QEOD Europhoton Conference, 1 page (2010). [cited by applicant]
S. Mitani, K. Nigo, S. Karasawa, H. Endo, and T. Takahata, “Interferometric multi-core fiber optic gyroscope under temperature changing environment”, International Conference on Space Optics, Proc. of SPIE 11180, 111805… [cited by applicant]
S. Zhang, V.I. Kopp, V. Churikov, and G. Zhang, “PANDA-based chiral in-fiber polarizer”, Proceedings of SPIE 7212, 72120D, pp. 1-8 (2009). [cited by applicant]
T. J. Seok, V. Kopp, D. Neugroschl, J. Henriksson, J. Luo, and M. C. Wu, “High density optical packaging of high radix silicon photonic switches,” 2017 Optical Fiber Communications Conference and Exhibition (OFC), Los A… [cited by applicant]
V. I. Kopp and A. Z. Genack, “Chiral fibers”, Chapter 12 in Specialty Optical Fibers Handbook edited by Alexis Mendez and T. F. Morse. Academic Press, 401-427 (2007). [cited by applicant]
V. I. Kopp and A. Z. Genack, “Density of states and lasing at the edge of a photonic stop band in dye-doped cholesteric liquid crystals”, Proceedings of SPIE 3623, 71-79 (1999). [cited by applicant]
V. I. Kopp, A. Z. Genack, V. M. Churikov, Jonathan Singer and Norman Chao, “Chiral Fiber Gratings Polarize Light”, Photonics Spectra 38, 78-79 (2004). [cited by applicant]
V. I. Kopp, J. Park, M. S. Wlodawski, E. Hubner, J. Singer, D. Neugroschl, and A. Z. Genack, “Vanishing Core Optical Waveguides for Coupling, Amplification, Sensing, and Polarization Control,” in Advanced Photonics, OSA… [cited by applicant]
V. I. Kopp, J. Park, M. Wlodawski, J. Singer, D. Neugroschl and A. Z. Genack, “Chiral Fibers:Microformed Optical Waveguides for Polarization Control, Sensing, Coupling, Amplification, and Switching,” in Journal of Light… [cited by applicant]
V. I. Kopp, J. Park, M. Wlodawski, J. Singer, D. Neugroschl and A. Z. Genack, “Pitch Reducing Optical Fiber Array and multicore fiber for space-division multiplexing,” 2013 IEEE Photonics Society Summer Topical Meeting … [cited by applicant]
V. I. Kopp, J. Park, M. Wlodawski, J. Singer, D. Neugroschl and A. Z. Genack, “Pitch Reducing Optical Fiber Array for dense optical interconnect,” IEEE Avionics, Fiber-Optics and Photonics Digest CD, Cocoa Beach, FL, 20… [cited by applicant]
V. I. Kopp, P. V. Shibaev, R. Bose, and A. Z. Genack, “Anisotropic photonic-bandgap structures”, Proceedings of SPIE 4655, 141-149 (2002). [cited by applicant]
V. I. Kopp, V. M. Churikov, and A. Z. Genack, “Chiral Fiber Gratings Sense the Environment”, Laser Focus World, 76-79 (2008). [cited by applicant]
V. I. Kopp, V. M. Churikov, and A. Z. Genack, “Synchronization of optical polarization conversion and scattering in chiral fibers”, Optics Letters 31(5), 571-573 (2006). [cited by applicant]
V. I. Kopp, V. M. Churikov, G. Zhang, J. Singer, C. W. Draper, N. Chao, D. Neugroschl, and A.Z. Genack, “Chiral fiber gratings: perspectives and challenges for sensing applications”, (Invited Paper), Proceedings of SPIE… [cited by applicant]
V. I. Kopp, V. M. Churikov, G. Zhang, J. Singer, C. W. Draper, N. Chao, D. Neugroschl, and A.Z. Genack, “Single- and double-helix chiral fiber sensors”, J. Opt. Soc. Am. B 24(10), A48-A52 (2007). [cited by applicant]
V.I. Kopp and A.Z. Genack, “Chiral Fibres: Adding Twist”, Nature Photonics 5, 470-472 (2011). [cited by applicant]
V.I. Kopp and A.Z. Genack, “Double-helix chiral fibers”, Optics Letters 28(20), 1876-1878 (2003). [cited by applicant]
V.I. Kopp and A.Z. Genack, “Lasing at the edge of a photonic stop band in cholesteric liquid crystals”, IEEE Leos 13, No. 2, 8-10 (1999). [cited by applicant]
V.I. Kopp and A.Z. Genack, “Twist defect in chiral photonic structures”, Physical Review Letters 89(3), 033901, pp. 1-4 (2002). [cited by applicant]
V.I. Kopp, B.Fan, H.K.M. Vithana, and A.Z. Genack, “Low-threshold lasing at the edge of a photonic stop band in cholesteric liquid crystals”, Optics Letters 23(21), 1707-1709 (1998). [cited by applicant]
V.I. Kopp, G. Zhang, S. Zhang, A.Z. Genack, and D. Neugroschl, “Chiral fiber optical isolator”, Proceedings of SPIE 7195, 71950B, pp. 1-8 (2009). [cited by applicant]
V.I. Kopp, J. Park, M. Wlodawski, E. Hubner, J. Singer, D. Neugroschl, A. Z. Genack, P. Dumon, J. Van Campenhout, and P. Absil, “Two-Dimensional, 37-Channel, High-Bandwidth, Ultra-Dense Silicon Photonics Optical Interfa… [cited by applicant]
V.I. Kopp, J. Park, M. Wlodawski, J. Singer, and D. Neugroschl, “Polarization maintaining, high-power and high-efficiency (6+1)x1 pump/signal combiner”, Proc. SPIE 8961, Fiber Lasers XI: Technology, Systems, and Applica… [cited by applicant]
V.I. Kopp, J. Park, M.S. Wlodawski, J. Singer, D. Neugroschl, P. de Heyn, B. Snyder, J. Van Campenhout, and P. Absil, “Flexible, Multi-channel, Ultra-dense Optical Interface for Silicon Photonics,” ECOC 2016; 42nd Europ… [cited by applicant]
V.I. Kopp, J. Singer, D. Neugroschl, and A.Z. Genack, “Chiral fiber sensors for harsh environments”, Proc. SPIE 8028, Fiber Optic Sensors and Applications VIII, 802803, pp. 1-8 (2011). [cited by applicant]
V.I. Kopp, R. Bose, and A.Z. Genack, “Transmission through chiral twist defects in anisotropic periodic structures”, Optics Letters 28(5), 349-351 (2003). [cited by applicant]
V.I. Kopp, V.M. Churikov, J. Singer, D. Neugroschl, and A.Z. Genack, “Chiral fiber sensors,” Proc. SPIE 7677, Fiber Optic Sensors and Applications Vii, 76770U, pp. 1-6 (2010). [cited by applicant]
V.I. Kopp, V.M. Churikov, J. Singer, N. Chao, D. Neugroschl, and A. Z. Genack, “Chiral fiber gratings”, Science 305, 74-75 (2004). [cited by applicant]
V.I. Kopp, Z.-Q. Zhang and A.Z. Genack, “Large coherence area thin-film photonic stop-band lasers”, Physical Review Letters 86(9), 1753-1756 (2001). [cited by applicant]
V.I. Kopp, Z.-Q. Zhang and A.Z. Genack, “Lasing in chiral photonic structures”, Progress in Quantum Electronics 27, 369-416 (2003). [cited by applicant]
V.M. Churikov, V.I. Kopp, A.Z. Genack, “Dual-twist fiber long period gratings”, Proceedings of SPIE 7212, 72120H, pp. 1-9 (2009). [cited by applicant]
V.M. Churikov, V.I. Kopp, and A.Z. Genack, “Chiral diffraction gratings in twisted microstructured fibers”, Opt. Lett. 35(3), 342-344 (2010). [cited by applicant]