IP Library Granted Patent US 12695266
Granted Patent B2
US 12695266 · App. 18/569,633 · Granted Jul 28, 2026

Optical amplification transmission line

Inventors: Shigehiro Nagano (Osaka, JP); Takemi Hasegawa (Osaka, JP); Takahiro Suganuma (Osaka, JP); Hirotaka Sakuma (Osaka, JP); Jun Kinugasa (Yokohama, JP)
Assignees: SUMITOMO ELECTRIC INDUSTRIES, LTD.; Sumitomo Electric Optifrontier Co., Ltd.
H01S3/06745H01S3/06716H01S3/1608
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12695266
App. No.
18/569,633
Granted
Jul 28, 2026
Kind
B2
Abstract

An optical amplification transmission line of the present disclosure reduces a connection loss between an EDF located upstream of a signal light path and a SMF located downstream of the path, as compared with a conventional optical amplification transmission lines. The optical amplification transmission line includes an EDF and a SMF fusion-spliced to each other. The EDF has an Er-doped core and an F-doped cladding. A core of the SMF is doped with no Er. The ratio (MFD2/MFD1) of the MFD2 of a stationary section of the SMF to the MFD1 of a stationary section of the EDF falls within a range of 1.9 or more and 2.2 or less.

Claims (16)

1 . An optical amplification transmission line, comprising:

an amplification optical fiber having a first end face, a second end face, a first core extending from the first end face toward the second end face and doped with erbium, and a first cladding surrounding the first core and doped with fluorine; and

a transmission optical fiber transmitting only single-mode light and having a third end face fusion-spliced to the first end face, a fourth end face, a second core extending from the third end face toward the fourth end face without being doped with erbium, and a second cladding surrounding the second core, wherein

the amplification optical fiber includes a transition section which includes the first end face and has a first mode field diameter decreasing from the first end face toward the second end face, and a first stationary section which communicates the transition section and the second end face and in which a composition of the amplification optical fiber and the first mode field diameter are constant from the transition section toward the second end face,

the transmission optical fiber includes a second stationary section in which a composition of the transmission optical fiber and a second mode field diameter are constant from the third end face toward the fourth end face, and

a ratio (MFD2/MFD1) of MFD2 serving as the second mode field diameter of the second stationary section to MFD1 serving as the first mode field diameter of the first stationary section is 1.9 or more and 2.2 or less.

2 . The optical amplification transmission line according to claim 1 , wherein

the first core is doped with germanium and aluminum.

3 . The optical amplification transmission line according to claim 2 , wherein

the MFD1 is 5.3 μm or less in a 1.55-μm wavelength band.

4 . The optical amplification transmission line according to claim 2 , wherein

in the first core, a concentration of the germanium is 3.8% or less by mass fraction, and a concentration of the aluminum is 4.0% or more by mass fraction.

5 . The optical amplification transmission line according to claim 4 , wherein

the MFD1 is 5.3 μm or less in a 1.55-μm wavelength band.

6 . The optical amplification transmission line according to claim 2 , wherein

a relative refractive index difference of the first core with respect to the first cladding is 1% or more and 2% or less.