IP Library › Granted Patent US 10,020,638
Granted Patent B2
US 10,020,638 · App. 15/454,444 · Granted Jul 10, 2018

Optical semiconductor device, semiconductor laser module, and optical fiber amplifier

Inventors: Junji Yoshida (Tokyo, JP); Hirokazu Itoh (Tokyo, JP); Satoshi Irino (Tokyo, JP); Yuichiro Irie (Tokyo, JP); Taketsugu Sawamura (Tokyo, JP)
Assignee: FURUKAWA ELECTRIC CO., LTD.
H01S5/3216H01S3/0675H01S3/06754H01S5/02284H01S5/02288H01S5/1064H01S5/2077H01S5/2205H01S5/2206H01S5/227H01S5/3434H01S5/34306H01S3/04
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Quick Facts
Patent No.
US 10,020,638
App. No.
15/454,444
Granted
Jul 10, 2018
Kind
B2
Abstract

An optical semiconductor device outputting a predetermined wavelength of laser light includes: a quantum well active layer positioned between a p-type cladding layer and an n-type cladding layer in thickness direction; a separate confinement heterostructure layer positioned between the quantum well active layer and the n-type cladding layer; and an electric-field-distribution-control layer positioned between the separate confinement heterostructure layer and the n-type cladding layer and configured by at least two semiconductor layers having band gap energy greater than band gap energy of a barrier layer constituting the quantum well active layer.

Claims (20)

1. A semiconductor laser module comprising:

an optical semiconductor device outputting a predetermined wavelength of laser light including:

a quantum well active layer positioned between a p-type cladding layer and an n-type cladding layer in thickness direction;

a separate confinement heterostructure layer positioned between the quantum well active layer and the n-type cladding layer; and

an electric-field-distribution-control layer positioned between the separate confinement heterostructure layer and the n-type cladding layer and configured by at least two semiconductor layers having band gap energy greater than band gap energy of a barrier layer constituting the quantum well active layer;

an optical fiber guiding the laser light outputted from the optical semiconductor device to outside;

a fiber grating returning a part of the laser light propagating in the optical fiber to the optical semiconductor device; and

an optical-coupling lens system coupling the optical semiconductor device and the optical fiber optically.

2. The semiconductor laser module according to claim 1 , wherein

the optical semiconductor device further includes a current constriction structure positioned at both sides of width direction of the quantum well active layer, and

the electric-field-distribution-control layer is formed to overlap with the current constriction structure in the thickness direction.

3. The semiconductor laser module according to claim 1 , wherein

semiconductor layers constituting the electric-field-distribution-control layer of the optical semiconductor device are constituted by a first semiconductor layer made from semiconductor material having band gap energy that is the same as the n-type cladding layer, and a second semiconductor layer made from semiconductor material having band gap energy greater than the barrier layer constituting the quantum well active layer.

4. The semiconductor laser module according to claim 3 , wherein

the first semiconductor layer is made from InP, and

the second semiconductor layer is made from III-V group compound semiconductor including an As atom and a P atom as composition.

5. The semiconductor laser module according to claim 4 , wherein

the second semiconductor layer is made from GaInAsP, and

a sum of layer thickness of the first and second semiconductor layers constituting the electric-field-distribution-control layer is equal to or smaller than 1 μm.

6. The semiconductor laser module according to claim 5 , wherein a band gap composition wavelength of GaInAsP constituting the second semiconductor layer is equal to or greater than 1 μm.

Continuity (5)
Continuation 14795387 · Jul 9, 2015
Continuation 14507374 · Oct 6, 2014
Continuation PCTJP2013060391 · Apr 4, 2013
Provisional Application 61621013 · Apr 6, 2012
Related Publication 20170187168A1 · Jun 29, 2017
Cited By (1)
US 12,327,983