Title :
Tapered Multi-Mode Interference Waveguide for High-Power Self-Organizing Single-Mode Semiconductor Laser Arrays
Author :
Leidner, Jordan P. ; Marciante, John R.
Author_Institution :
Inst. of Opt., Univ. of Rochester, Rochester, NY, USA
fDate :
7/1/2011 12:00:00 AM
Abstract :
A 1 × N, tapered, multi-mode interference (MMI) coupler is numerically studied for use in a self-organizing semiconductor laser-array system. The MMI structure is linearly tapered in a way such that the single-port side is wider than the N-port side. The single-port waveguide is N times wider than the other ports to maintain intensity similar to that in each of the N-port waveguides. Using such a device, the N-ports of a semiconductor laser array can be coherently combined in a self-organizing architecture. This modified MMI design increases the output power threshold for catastrophic optical damage while maintaining only single-mode excitation of a wide single port output. The device is nonadiabatic with a single-pass power transmission of 98%. A power imbalance up to 40% in a single port reduces the device efficiency by less than 1%, while a waveguide roughness as large as 70 nm rms detracts only 3% from the device efficiency. When designed to work at 1 μm wavelength, the structure has a full-width half-maximum pass-band of 10 nm, which can provide wavelength selectability when used in a self-organized semiconductor laser-array system.
Keywords :
light interference; optical couplers; optical waveguides; semiconductor laser arrays; MMI structure; N-port side; catastrophic optical damage; device efficiency; high-power self-organizing single-mode semiconductor laser arrays; modified MMI design; power imbalance; self-organizing architecture; single-mode excitation; single-pass power transmission; single-port side; single-port waveguide; tapered multimode interference coupler; tapered multimode interference waveguide; waveguide roughness; wavelength 1 mum; wavelength selectability; wide single port output; Correlation; Couplers; Laser beams; Optical waveguides; Semiconductor laser arrays; Waveguide lasers; Broad-area lasers; high-power lasers; laser beam combining; multi-mode interference coupler; semiconductor lasers;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2011.2141118