IP Library Granted Patent US 12,732,300
Granted Patent B2
US 12,732,300 · App. 18/686,215 · Granted Sep 8, 2026

Technique to reduce signal crosstalk between cores in a multi-core optical fiber transmission

Inventors: Yuto Sagae (Musashino, JP); Kazuhide Nakajima (Musashino, JP); Taiji Sakamoto (Musashino, JP); Takayoshi Mori (Musashino, JP); Takashi Matsui (Musashino, JP)
Assignee: NTT, Inc.
H04J14/052G02B6/02042H04B10/2507H04B10/2916
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Quick Facts
Patent No.
US 12,732,300
App. No.
18/686,215
Granted
Sep 8, 2026
Kind
B2
Abstract

The present disclosure relates to an optical transmission system that transmits signal light by using a multi-core optical fiber having two or more cores as transmission paths, the optical transmission system including two or more transmitters that transmit signal light to adjacent cores, in opposite directions, of the cores, and two or more pump light oscillators that inject pump light into the same cores as transmission cores to which the signal light is transmitted of the adjacent cores such that the pump light propagates in the same directions as or directions reverse to the directions of the signal light, and perform distributed Raman amplification of the signal light by using the pump light, in which a signal light gain of the signal light transmitted from the transmitters is set such that a signal intensity ratio to a crosstalk noise intensity leaked from the adjacent transmission cores is high.

Claims (161)

1 . An optical transmission system that transmits signal light by using a multi-core optical fiber having two or more cores as transmission paths, the optical transmission system comprising:

two or more transmitters that transmit signal light to adjacent cores, in opposite directions; and

two or more pump light oscillators that inject pump light into the same cores as transmission cores to which the signal light is transmitted of the adjacent cores such that the pump light propagates in the same directions as or directions reverse to the directions of the signal light, and perform distributed Raman amplification of the signal light by using the pump light,

wherein a signal light gain of the signal light transmitted from the transmitters is set such that a ratio of signal intensity to a crosstalk noise intensity leaked from the adjacent transmission cores is maximized,

wherein a signal light gain G s of the signal light satisfies the following formula with respect to a transmission distance L of the adjacent transmission cores:

G

s

1

2

.

1

-

1

8

.

1

×

1

0

3

L

-

1.9

.

2 . An optical transmission system that transmits signal light by using a multi-core optical fiber having two or more cores as transmission paths, the optical transmission system comprising:

two or more transmitters that transmit signal light to adjacent cores, in opposite directions; and

two or more pump light oscillators that inject pump light into the same cores as transmission cores to which the signal light is transmitted of the adjacent cores such that the pump light propagates in the same directions as or directions reverse to the directions of the signal light, and perform distributed Raman amplification of the signal light by using the pump light,

wherein a signal light gain of the signal light transmitted from the transmitters is set such that a ratio of signal intensity to a crosstalk noise intensity leaked from the adjacent transmission cores is maximized,

wherein signal light gains of the signal light in the adjacent transmission cores are G 1 and G 2 , and

the signal light gain G 1 satisfies the following formula with respect to a signal light gain difference ΔG, which is a difference of G 1 to G 2 , and the transmission distance L:

G

1

-

2

.

0

+

0

.2

L

+

(

-

0.4

-

140.5

L

-

1.27

)

Δ

G

+

(

-

0

.

0

4

+

1

.

1

×

1

0

-

4

)

Δ

G

2

and

G

1

(

-

0

.40

-

44

3

.

8

L

-

1.54

)

Δ

G

+

(

-

0

.10

-

8.

×

1

0

6

L

-

4

)

Δ

G

2

provided

ΔG

0

.

3 . An optical transmission method of transmitting signal light by using a multi-core optical fiber having two or more cores as transmission paths, the optical transmission method comprising:

transmitting, by means of two or more transmitters, signal light to adjacent cores, in opposite directions; and

injecting, by means of two or more pump light oscillators, pump light into the same cores as transmission cores to which the signal light is transmitted of the adjacent cores such that the pump light propagates in the same directions as or directions reverse to the directions of the signal light, and performing distributed Raman amplification of the signal light by using the pump light,

wherein a signal light gain of the signal light transmitted from the transmitters is set such that a ratio of signal intensity to a crosstalk noise intensity leaked from the adjacent transmission cores is maximized high,

wherein a signal light gain G s of the signal light satisfies the following formula with respect to a transmission distance L of the adjacent transmission cores:

G

s

1

2.1

-

18.

1

×

1

0

3

L

-

1

9

.

Assignments (2)
CHANGE OF NAME Recorded Oct 3, 2025
From: NIPPON TELEGRAPH AND TELEPHONE CORPORATION
To: NTT, INC.
Reel/Frame 072995/0203 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 26, 2024
From: SAGAE, YUTO; NAKAJIMA, KAZUHIDE; SAKAMOTO, TAIJI; MORI, TAKAYOSHI; MATSUI, TAKASHI
To: NIPPON TELEGRAPH AND TELEPHONE CORPORATION
Reel/Frame 066552/0302 →
Continuity (1)
Related Publication 20250192888A1 · Jun 12, 2025
References Cited (8)
US 20130136404A1 · Feuer · 2013 [cited by examiner]
US 20180259707A1 · Zalevsky · 2018 [cited by examiner]
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Yuto Sagae et al., “Ultra-Low Crosstalk Multi-Core Fiber with Standard 125-μm Cladding Diameter for 10,000km-Class Long-Haul Transmission,” IEICE Transactions on Communications, vol. E103-B, No. 11, Nov. 2020, pp. 1199-… [cited by applicant]
S. Nozoe et al., “125 μm-cladding 2LP-mode and 4-core Multi-core Fibre with Air-hole Structure for Low Crosstalk in C+L Band,” 2017 European Conference on Optical Communication (ECOC), 2017, pp. 1-3, doi: 10.1109/ECOC.2… [cited by applicant]
A. Sano et al., “Crosstalk-Managed High Capacity Long Haul Multicore Fiber Transmission With Propagation-Direction Interleaving,” in Journal of Lightwave Technology, vol. 32, No. 16, pp. 2771-2779, Aug. 15, 2014, doi: 1… [cited by applicant]
K. Kitamura et al., “Cross-talk characteristics of a hybrid multi-core fiber transmission system using distributed raman amplification,” 2013 18th OptoElectronics and Communications Conference held jointly with 2013 Int… [cited by applicant]