IP Library Granted Patent US 12665373
Granted Patent B2
US 12665373 · App. 18/016,695 · Granted Jun 23, 2026

Fiber laser device

Inventors: Masatoshi Sato (Hamamatsu, JP); Hirotake Fukuoka (Hamamatsu, JP)
Assignee: HAMAMATSU PHOTONICS K.K.
H01S3/06712H01S3/06791H01S3/10061H01S3/1112H01S3/06729H01S3/09415H01S2301/02
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 12665373
App. No.
18/016,695
Filed
Jan 18, 2023
Granted
Jun 23, 2026
Kind
B2
Art Unit
2828
USPC
372/6
Abstract

A fiber laser device includes a first optical fiber, a second optical fiber, and a third optical fiber configured by polarization maintaining fibers. The first optical fiber includes at least one first part and at least two second parts alternatively disposed with the first part. The first part and the second part adjacent to each other are connected to each other such that a fast axis of the first part coincides with a slow axis of the second part at a connection point. A total length of the first part is equal to a total length of the second parts. A mode field diameter of the first optical fiber is smaller than each of a mode field diameter of the second optical fiber and a mode field diameter of the third optical fiber.

Claims (40)

1 . A fiber laser device comprising:

a first optical fiber configured by a polarization maintaining fiber;

a second optical fiber configured by a polarization maintaining fiber and connected to one end of the first optical fiber; and

a third optical fiber configured by a polarization maintaining fiber and connected to the other end of the first optical fiber, wherein

the first optical fiber includes at least one first part and at least two second parts alternatively disposed with the first part,

the first part and the second part adjacent to each other are connected to each other such that a fast axis of the first part coincides with a slow axis of the second part at a connection point,

a total length of the first part is equal to a total length of the second parts, and

a mode field diameter of the first optical fiber is smaller than each of a mode field diameter of the second optical fiber and a mode field diameter of the third optical fiber.

2 . The fiber laser device according to claim 1 , wherein at least one of the second optical fiber and the third optical fiber is connected to the first optical fiber by fusion.

3 . The fiber laser device according to claim 1 , wherein

the second optical fiber includes a first part and a second part,

the first part of the second optical fiber is connected to the one end of the first optical fiber such that a fast axis of the first part of the second optical fiber coincides with a slow axis of the first optical fiber at a connection point, and

the second part of the second optical fiber is connected to the first part of the second optical fiber such that an angle between a fast axis of the second part of the second optical fiber and a fast axis of the first part of the second optical fiber is an angle other than 0 degrees or 90 degrees at a connection point.

4 . The fiber laser device according to claim 3 , wherein

the third optical fiber includes a first part and a second part,

the first part of the third optical fiber is connected to the other end of the first optical fiber such that a fast axis of the first part of the third optical fiber coincides with a fast axis of the first optical fiber at a connection point, and

the second part of the third optical fiber is connected to the first part of the third optical fiber such that an angle between a fast axis of the second part of the third optical fiber and a fast axis of the first part of the third optical fiber is an angle other than 0 degrees or 90 degrees at a connection point.

5 . The fiber laser device according to claim 4 , wherein a length of the first part of the second optical fiber is equal to a length of the first part of the third optical fiber.

6 . The fiber laser device according to claim 1 , wherein

the second optical fiber includes a first part,

the first part of the second optical fiber is connected to the one end of the first optical fiber such that a fast axis of the first part of the second optical fiber coincides with a slow axis of the first optical fiber at a connection point,

the third optical fiber includes a first part,

the first part of the third optical fiber is connected to the other end of the first optical fiber such that a fast axis of the first part of the third optical fiber coincides with a fast axis of the first optical fiber at a connection point, and

a length of the first part of the second optical fiber is equal to a length of the first part of the third optical fiber.

7 . The fiber laser device according to claim 1 , further comprising a first bridge fiber configured by a polarization maintaining fiber and connected between the first optical fiber and the second optical fiber,

wherein a mode field diameter of the first bridge fiber is larger than the mode field diameter of the first optical fiber and smaller than the mode field diameter of the second optical fiber.

8 . The fiber laser device according to claim 7 , further comprising a second bridge fiber configured by a polarization maintaining fiber and connected between the first optical fiber and the third optical fiber,

wherein a mode field diameter of the second bridge fiber is larger than the mode field diameter of the first optical fiber and smaller than the mode field diameter of the third optical fiber.

9 . The fiber laser device according to claim 8 , wherein

the first optical fiber includes an even number of the first and second parts in total, and

a difference between an angle between a fast axis of the first bridge fiber and a fast axis of the first optical fiber at a connection point and an angle between a fast axis of the second bridge fiber and a fast axis of the first optical fiber at a connection point is 90 degrees.

10 . The fiber laser device according to claim 8 , wherein

the first optical fiber includes an odd number of the first and second parts in total, and

a difference between an angle between a fast axis of the first bridge fiber and a fast axis of the first optical fiber at a connection point and an angle between a fast axis of the second bridge fiber and a fast axis of the first optical fiber at a connection point is 0 degrees.

11 . The fiber laser device according to claim 9 , wherein a difference between an angle between a fast axis of the first bridge fiber and a fast axis of the second optical fiber at a connection point and an angle between a fast axis of the second bridge fiber and a fast axis of the third optical fiber at a connection point is 0 degrees.

12 . The fiber laser device according to claim 8 , wherein a length of the first bridge fiber is equal to a length of the second bridge fiber.

13 . The fiber laser device according to claim 1 , further comprising:

a light source that outputs excitation light; and

an optical fiber that absorbs the excitation light and emits laser light,

wherein the laser light is guided by the first optical fiber, the second optical fiber, and the third optical fiber.