IP Library Granted Patent US 9,322,987
Granted Patent B2
US 9,322,987 · App. 14/011,381 · Granted Apr 26, 2016

Multicore fiber coupler between multicore fibers and optical waveguides

Inventors: Fuad Doany (Katonah, NY); Daniel M. Kuchta (Patterson, NY); Petar K. Pepeljugoski (Tarrytown, NY); Laurent Schares (Luxembourg, LU)
Assignee: International Business Machines Corporation
G02B6/02042G02B6/425G02B6/3652G02B6/423G02B6/4214Y10T29/49826
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Quick Facts
Patent No.
US 9,322,987
App. No.
14/011,381
Granted
Apr 26, 2016
Kind
B2
Abstract

An optical connector includes a fiber element incorporating one or more optical fibers, the optical fiber including a plurality of cores, and an optical element including an array of optical waveguides arranged in one or more layers so as to match the geometry of the plurality of cores of the optical fiber.

Claims (30)

1. An optical connection, comprising:

a single-element multicore optical fiber having a substantially circular or elliptical cross-section, and including a plurality of cores, each with a substantially circular cross-section, embedded in a common shared cladding material, each core having a higher index of refraction material compared to the common shared cladding material such that light is guided substantially within said cores along the length of the fiber, and where the multiple cores and cladding constitute a single solid entity with no airgaps; and

an optical waveguide element comprising a plurality of optical waveguides fabricated in one or more layers,

wherein said optical waveguide element includes a plurality of layers of optically-transparent materials, and

wherein the plurality of layers include:

light-guiding materials embedded in a common shared cladding material, each light-guiding material having a higher index of refraction compared to the common shared cladding material; and

an optical coupling interface, and

wherein the arrangement of the optical waveguides at the interface is substantially identical to the arrangement of the plurality of cores within the single multicore optical fiber, and such that light guided in each of the cores of the multicore fiber is substantially coupled to and from the corresponding light-guiding waveguides within the optical waveguide element.

2. An optical connection according to claim 1 , further comprising a coupling element configured so as to provide passive rotational alignment and translational alignment of the multicore optical fiber with the optical waveguides.

3. An optical connection according to claim 1 , further comprising

an array of multicore optical fibers; and

an optical element comprising an array of optical waveguides arranged in one or more layers such that a geometry of the optical waveguides matches a geometry of the plurality of cores within the array of the single-element multicore optical fiber.

4. An optical connection according to claim 1 , further comprising a coupling means for coupling light between the optical waveguides and the optical fiber based on passive alignment of the fiber element with the optical element.

5. An optical connection according to claim 1 , wherein the fiber element is coupled in-plane with the optical element.

6. An optical connection according to claim 1 , wherein the fiber element is coupled out-of-plane with the optical element.

7. An optical connection according to claim 6 , wherein the fiber element is perpendicular to the optical element.

8. An optical connection according to claim 1 , wherein the one or more layers comprise a plurality of chips disposed so as to form a chip stack.

9. An optical connection according to claim 1 , wherein the optical element further comprises lenses disposed between the optical waveguides and the optical fiber.

10. An optical connection according to claim 1 , wherein the optical element includes an optoelectronic element disposed so as to transmit to an optical waveguide of the optical waveguides.

11. An optical connection according to claim 1 , wherein the optical waveguides are disposed on a plurality of vertical layers and a plurality of horizontal layers.

12. A method of coupling a single-element multicore optical fiber element to one or more optoelectronic elements, the method comprising:

providing the single-element multicore optical fiber having a substantially circular or elliptical cross-section, and incorporating a plurality of cores, each with a substantially circular cross-section, embedded in a common shared cladding material, each core having a higher index of refraction material compared to the common shared cladding material such that light is guided substantially within said cores along the length of the fiber, and where the multiple cores and cladding constitute a single solid entity with no airgaps;

providing an optical waveguide element comprising a plurality of optical waveguides fabricated in one or more layers,

coupling the one or more optoelectronic elements with the optical waveguide element; and

coupling the single-element multicore optical fiber element to the optical waveguide element,

wherein said optical waveguide element includes a plurality of layers of optically-transparent materials, and

wherein the plurality of layers include:

light-guiding materials embedded in a common shared cladding material, each light-guiding material having a higher index of refraction compared to the common shared cladding material; and

an optical coupling interface, and

wherein the arrangement of the optical waveguides at the interface is substantially identical to the arrangement of the plurality of cores within the single multicore optical fiber, and such that light guided in each of the cores of the multicore fiber is substantially coupled to and from the corresponding light-guiding waveguides within the optical waveguide element.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 29, 2013
From: DOANY, FUAD; KUCHTA, DANIEL M.; PEPELJUGOSKI, PETAR K.; SCHARES, LAURENT
To: INTERNATIONAL BUSINESS MACHINES CORPORATION
Reel/Frame 031106/0704 →
Continuity (1)
Related Publication 20150063755A1 · Mar 5, 2015