Multi-Wavelength Laser Apparatus And Methods
An apparatus includes a laser that includes a plurality of optical cavities, separate optical gain media for each of the cavities, an optical demultiplexer, and a periodic optical filter. The optical demultiplexer demultiplexes a common portion of the optical cavities into separate portions. The periodic optical filter is inserted into the common portion of the optical cavities.
1 . An apparatus comprising a multi-wavelength laser, the laser comprising:
a plurality of optical cavities, each laser optical cavity having a corresponding optical amplifier;
a periodic optical filter being a common segment of the laser optical cavities; and
an optical wavelength demultiplexer including an optical input and a plurality of optical outputs;
wherein each of the laser optical cavities includes an optical path segment between a corresponding optical output of the optical wavelength demultiplexer and the optical input of the optical wavelength demultiplexer.
2 . The apparatus of claim 1 , wherein pass bands of the optical wavelength demultiplexer are wider than the pass bands of the periodic optical filter.
3 . The apparatus of claim 1 , wherein the periodic optical filter has a free spectral range approximately matches the frequency spacing of an ITU grid.
4 . The apparatus of claim 1 , wherein the periodic optical filter include a tunable optical phase shifter enabling frequency-shifting of the pass bands of the optical filter as a group.
5 . The apparatus of claim 1 , wherein the optical wavelength demultiplexer comprises a plurality of optical resonators, an input optical waveguide optically coupled to the optical resonators, and a plurality of output optical waveguides, each output optical waveguide of the optical waveguide demultiplexer being optically coupled to a corresponding one of the optical resonators.
6 . The apparatus of claim 1 , wherein the laser output light of multiple wavelengths as a single beam.
7 . The apparatus of claim 1 , wherein the laser output light of each wavelength as a separate beam.
8 . The apparatus of claim 1 , further comprising an optical data transmitter including the laser and an external optical data modulator, the external optical modulator being configured to modulate light emitted by the laser.
9 . The apparatus of claim 1 , further comprising a coherent optical data receiver comprising the laser and being configured to determine a digital data stream carried by a phase-modulated optical carrier, in part, by optically mixing light of the phase-modulated optical carrier with light emitted by the laser.
10 . A method of generating a laser output of multiple wavelength, comprising:
producing laser light in a sequence of separate frequency bands by pumping a plurality of spatially separate optical gain media to generate stimulated emission of light therefrom in laser cavities;
wherein the producing includes multiplexing the stimulated emission light into a combined light beam, and filtering the combined beam by a periodic optical filter located in a region common to the laser cavities.
11 . The method of claim 8 , further comprising mixing a portion of light emitted by the laser with a received phase-modulated optical carrier to perform coherent detection of the phase modulated optical carrier in a coherent optical receiver.
12 . method of claim 8 , further comprising modulating light emitted by the laser to produce, in an optical transmitter, a modulated optical carrier.