IP Library Granted Patent US 8,923,678
Granted Patent B2
US 8,923,678 · App. 12/959,184 · Granted Dec 30, 2014

Techniques for manipulating crosstalk in multicore fibers

Inventors: John Michael Fini (Metuchen, NJ); Thierry Franck Taunay (Bridgewater, NJ); Man F. Yan (Berkeley Heights, NJ); Benyuan Zhu (Princeton, NJ)
Assignee: OFS Fitel, LLC
G02B6/02042G02B6/4403
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Quick Facts
Patent No.
US 8,923,678
App. No.
12/959,184
Granted
Dec 30, 2014
Kind
B2
Abstract

A multicore optical fiber includes a plurality of core regions disposed within a common cladding region. Each of the plurality of core regions is configured, in combination with the common cladding region, to propagate light along a longitudinal axis of the fiber. At least two core regions are configured to inhibit resonant coupling of propagated light therebetween within a selected region of operation. At least one segment of the fiber includes a twist that is configured such that when the twisted segment is subjected to a bend having a selected radius, the twist creates a controlled change in the amount of crosstalk between the at least two core regions, compared with the amount of crosstalk between the at least two core regions when a bend having the selected radius is introduced into a non-twisted segment of the fiber.

Claims (107)

1. A multicore optical fiber, comprising:

a plurality of core regions disposed within a common cladding region, wherein each of the plurality of core regions is configured, in combination with the common cladding region, to propagate light along a longitudinal axis of the fiber,

wherein at least two core regions are configured to inhibit resonant coupling of propagated light therebetween within a selected longitudinal region of operation,

wherein at least one segment of the longitudinal region includes a twist that is configured such that when the twisted segment is subjected to a bend having a selected radius, the twist creates a controlled change in the amount of crosstalk between the at least two core regions, compared with the amount of crosstalk between the at least two core regions w hen a bend having the selected radius is introduced into a non-twisted segment of the fiber,

wherein the twist has a configuration based on the relationship

U

n

.

m

2

2

π

C

nm

λ

2

(

z

2

-

z

1

)

S

ff

(

Δβ

m

.

n

)

where

U represents a matrix of unperturbed mismatch values,

C represents resonant coupling,

λ is wavelength,

z 2 -z 1 represents a fiber interval, and

S ff represents power spectral density of an autocorrelation function R ff of a random process f.

2. A method for making a multicore optical fiber, comprising:

(a) providing a multicore optical fiber having a plurality of core regions disposed within a common cladding region, wherein each of the plurality of core regions is configured, in combination with the common cladding region, to propagate light along a longitudinal axis of the fiber;

(b) configuring at least two core regions to inhibit resonant coupling of propagated light therebetween within a selected longitudinal region of operation;

(c) introducing a twist into at least one segment of the fiber within the longitudinal region, wherein the twist is configured such that when a bend having a selected radius is introduced into the twisted segment, the twist creates a controlled change in the amount of crosstalk between the at least two core regions, compared with the amount of crosstalk between the at feast two core regions when a bend having the selected radius is introduced into a non-twisted segment of the fiber,

wherein step (c) includes fabricating the multicore fiber using a draw process in which a spinning technique is used to apply a spin profile to the drawn fiber,

and wherein step (c) further includes:

constructing a spin profile based on the relationship

U

n

.

m

2

2

π

C

nm

λ

2

(

z

2

-

z

1

)

S

ff

(

Δβ

m

.

n

)

where

U is a matrix of unperturbed mismatch values,

C is coupling

z 2 -z 1 is a fiber interval, and

S ff is power spectral density of an autocorrelation function R ff of a random process f.

3. The multicore optical fiber of claim 1 , wherein the twist is configured to reduce the amount of crosstalk between the at least two core regions within the region of operation.

4. The multicore optical fiber of claim 1 , wherein the twist is configured to increase the amount of crosstalk between the at least two core regions within the region of operation.

5. The multicore optical fiber claim 1 , wherein the at least two core regions are configured such that there is a sufficient amount of skew therebetween to reduce resonant coupling in the region of operation in an unbent segment of the fiber, compared with the amount of resonant coupling in an unbent segment of an unskewed fiber.

6. The method of claim 2 , wherein the twist is configured to reduce the amount of crosstalk between the at least two core regions within the region of operation.

7. The multicore optical fiber of claim 2 , wherein the twist is configured to increase the amount of crosstalk between the at least two core regions within the region of operation.

8. The multicore optical fiber claim 2 , wherein the at least two core regions are configured such that there is a sufficient amount of skew therebetween to reduce resonant coupling in the region of operation in an unbent segment of the fiber, compared with the amount of resonant coupling, in an unbent segment of an unskewed fiber.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 3, 2010
From: FINI, JOHN MICHAEL; TAUNAY, THIERRY FRANCK; YAN, MAN F.; ZHU, BENYUAN
To: OFS FITEL, LLC
Reel/Frame 025442/0314 →
Continuity (5)
Provisional Application 61265997 · Dec 2, 2009
Provisional Application 61311177 · Mar 5, 2010
Provisional Application 61314165 · Mar 16, 2010
Provisional Application 61392472 · Oct 12, 2010
Related Publication 20110129190A1 · Jun 2, 2011