Optical signal transmitter
An optical signal transmitter (AXEL) in which a quality of an optical signal waveform is maintained includes a distributed Bragg reflector to be coupled with an emission end surface of an SOA in an optical circuit unit including an optical waveguide core portion formed on an upper surface of a substrate. In the optical circuit unit, a diffraction grating formed on an upper surface side opposite to an absorption layer of an EA optical modulator and a diffraction grating formed on an upper surface side of a reflection layer of the distributed Bragg reflector have a wavelength selectivity.
1 . An optical signal transmitter in which a distributed feedback laser, an electro absorption optical modulator, and one or more semiconductor optical amplifiers are integrally integrated, and a diffraction grating is formed in a region overlapping a light propagation mode of the electro absorption optical modulator so that a light intensity is modulated according to an intensity of an electric field added to the electro absorption optical modulator when light generated by the distributed feedback laser passes through the electro absorption optical modulator and the one or more semiconductor optical amplifiers in order, the optical signal transmitter comprising:
a distributed Bragg reflector coupled to an emission end surface of the one or more semiconductor optical amplifiers,
wherein
the distributed feedback laser, the electro absorption optical modulator, and the one or more semiconductor optical amplifiers, and the distributed Bragg reflector are integrally integrated in an optical circuit unit provided on an upper surface of one main surface of a substrate,
the diffraction grating is formed on each of a side of a clad layer opposite to an active layer of the distributed feedback laser and an absorption layer of the electro absorption optical modulator and a side of an upper surface of a reflection layer of the distributed Bragg reflector, and
an optical waveguide core portion formed by combining the active layer of the distributed feedback laser, the absorption layer of the electro absorption optical modulator, an active layer of the semiconductor optical amplifier, and the reflection layer of the distributed Bragg reflector is included.
2 . The optical signal transmitter according to claim 1 , wherein
the optical circuit unit includes a passive layer in which the active layer of the distributed feedback laser, the absorption layer of the electro absorption optical modulator, and the active layer of the one or more semiconductor optical amplifiers are integrally integrated, and
the optical waveguide core portion is formed by butt coupling the passive layer and the reflection layer.
3 . The optical signal transmitter according to claim 1 , wherein
in a case where a bias is not applied to the electro absorption optical modulator, a reflection wavelength of the diffraction grating of the electro absorption optical modulator is longer than a reflection wavelength of the distributed Bragg reflector by 0.1 to 10 nm, and in a case where a bias is applied to the electro absorption optical modulator, the reflection wavelength of the diffraction grating of the electro absorption optical modulator is shifted to be the same as the reflection wavelength of the distributed Bragg reflector.
4 . The optical signal transmitter according to claim 1 , wherein
the optical signal transmitter has an electrode structure capable of injecting a current to the distributed Bragg reflector, and adjustment of a reflection wavelength of the distributed Bragg reflector is possible by injecting the current to the electrode structure.
5 . The optical signal transmitter according to claim 1 , wherein
a wavelength of light oscillated with the one or more semiconductor optical amplifiers as a gain is different from a wavelength of light oscillated by the distributed feedback laser.