IP Library Patent Application 15137048
Patent Application
App. No. 15/137,048

Compact optical fiber splitters

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Patent No.
US None
App. No.
15/137,048
Abstract

An apparatus includes one or more optical waveguides, one or more first micro-lenses, and one or more second micro-lenses. The one or more optical waveguides are formed in a substrate and are configured to convey respective optical signals between first ends and second ends of the optical waveguides. The one or more first micro-lenses are disposed on the respective first ends of the optical waveguides and are configured to couple the optical signals between the first ends and respective first optical elements. The one or more second micro-lenses are disposed on the respective second ends of the optical waveguides and are configured to couple the optical signals between the second ends and respective second optical elements.

Claims (33)

1 . An optical interconnect to direct optical signals between first and second ferrules of optical fibers, comprising:

a substrate;

a first optical interface, configured to connect to the first ferrule of optical fibers, located on a first face of the substrate;

a second optical interface, configured to connect to the second ferrule of optical fibers, located on a second face of the substrate;

a plurality of optical waveguides, which are formed in the substrate and are configured to convey respective optical signals between the first optical interface and the second optical interface;

one or more first micro-lenses, which are disposed on respective first ends of the optical waveguides and are configured to couple the optical signals between the first ends and the first ferrule; and

one or more second micro-lenses, which are disposed on respective second ends of the optical waveguides and are configured to couple the optical signals between the second ends and the second ferrule,

wherein each of the plurality of waveguides includes at least one horizontal bend and wherein the at least one horizontal bends of the plurality of waveguides are included in a single plane.

2 . The optical interconnect according to claim 1 , wherein the first micro-lenses are disposed on a face of the substrate, and wherein the first ends of the optical waveguides terminate at a predefined distance from the face of the substrate, opposite the first micro-lenses.

3 . The optical interconnect according to claim 1 , and comprising a mechanical fixture that fixes the first optical elements at a predefined distance from the respective first micro-lenses, so as to form an air gap between the first optical elements and the first micro-lenses.

4 . The optical interconnect according to claim 1 , wherein the at least one horizontal bend of each of the plurality of waveguides bends at least 30° off a straight line.

5 . The optical interconnect according to claim 1 , wherein each optical waveguide comprises a plurality of horizontal bends within the single plane.

6 . The optical interconnect according to claim 1 , wherein the plurality of optical waveguides include optical waveguides having different lengths.

7 . The optical interconnect according to claim 1 , wherein the plurality of optical waveguides include optical waveguides having different lengths within the single plane.

8 . The optical interconnect according to claim 1 , comprising a third optical interface and an additional plurality of optical waveguides formed in the substrate and configured to convey respective optical signals between the first optical interface and the third optical interface, wherein the additional plurality of optical waveguides includes respective bends includes in an additional single plane.

9 . The optical interconnect according to claim 1 , wherein the optical waveguides comprise waveguides formed in the substrate by etching grooves on the layers of optical materials, filling the etched grooves with a second optical material with an index of refraction higher than that of the layers, and subsequently bonding the layers together.

10 . The optical interconnect according to claim 1 , wherein the first face is parallel with the second face.

11 . The optical interconnect according to claim 1 , wherein the first face is perpendicular to the second face.

12 . The optical interconnect according to claim 1 , wherein the plurality of optical waveguides include optical reflectors formed in the waveguides to implement the horizontal bends.

13 . The optical interconnect according to claim 12 , wherein the optical reflectors formed in the waveguides comprise parabolic optical reflectors.

14 . The optical interconnect according to claim 12 , wherein the optical reflectors formed in the waveguides comprise straight optical reflectors.

15 . The optical interconnect according to claim 12 , wherein the optical reflectors formed in the waveguides comprise curved concave optical reflectors.

16 . The optical interconnect according to claim 12 , wherein the optical reflectors comprise optical reflectors formed by etching the waveguides in the substrate.

17 . A method for forming an optical interconnect to direct optical signals between first and second ferrules of optical fibers, comprising:

providing a substrate;

forming in the substrate a plurality of optical waveguides, for conveying respective optical signals between first ends and second ends of the optical waveguides;

disposing one or more first micro-lenses on the respective first ends of the optical waveguides, for coupling the optical signals between the first ends and respective first optical elements; and

disposing one or more second micro-lenses on the respective second ends of the optical waveguides, for coupling the optical signals between the second ends and respective second optical elements,

wherein each of the plurality of waveguides includes at least one horizontal bend and wherein the at least one horizontal bends of the plurality of waveguides are included in a single plane.

18 . The method according to claim 17 , wherein disposing the first micro-lenses comprises placing the first micro-lenses on a face of the substrate, and wherein forming the optical waveguides comprises terminating the first ends of the optical waveguides at a predefined distance from the face of the substrate, opposite the first micro-lenses.

19 . The method according to claim 17 , wherein forming the optical waveguides comprises forming waveguides each including a plurality of horizontal bends.

20 . The method according to claim 17 , wherein forming the optical waveguides comprise forming optical waveguides having different lengths.

21 . The method according to claim 17 , wherein forming the optical waveguides comprise forming a first subset of the optical waveguides whose second ends lie on a first face of the substrate, and forming a second subset of the optical waveguides whose second ends lie on a second face of the substrate, different from the first face.

Assignments (3)
RELEASE OF SECURITY INTEREST IN PATENT COLLATERAL AT REEL/FRAME NO. 42962/0859 Recorded Jul 13, 2018
From: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
To: MELLANOX TECHNOLOGIES, LTD.; MELLANOX TECHNOLOGIES TLV LTD.; MELLANOX TECHNOLOGIES SILICON PHOTONICS INC.
Reel/Frame 046551/0459 →
SECURITY INTEREST Recorded Jun 23, 2017
From: MELLANOX TECHNOLOGIES, LTD.; MELLANOX TECHNOLOGIES TLV LTD.; MELLANOX TECHNOLOGIES SILICON PHOTONICS INC.
To: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 042962/0859 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 17, 2016
From: LAGZIEL, RAFI; KHAZEN, NIMER; LEVY, SHMUEL
To: MELLANOX TECHNOLOGIES LTD.
Reel/Frame 038609/0959 →