Title :
Modeling, fabrication, and characterization of large aperture two-dimensional antiguided vertical-cavity surface-emitting laser arrays
Author :
Bao, Ling ; Kim, Nam-Heon ; Mawst, Luke J. ; Elkin, N.N. ; Troshchieva, V.N. ; Vysotsky, D.V. ; Napartovich, A.P.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Wisconsin-Madison, Madison, WI, USA
Abstract :
We have investigated the modal behavior of two-dimensional (up to 400 elements) active-photonic-lattice-based antiguided vertical-cavity surface-emitting laser (VCSEL) arrays by both modeling and device characterization. A two-dimensional (2-D) model based on the effective index method has been constructed to analyze 2-D resonance and calculate array mode frequencies in rectangular geometry arrays. A more comprehensive three-dimensional bi-directional beam propagation code has also been developed to theoretically describe 2-D antiguided arrays with the VCSEL structure in the primary wave propagation direction. Gain spatial hole burning (GSHB) effects above laser threshold are applied to find conditions favorable for in-phase mode lasing and high intermodal discrimination. Three rectangular geometry array structures based on different interelement loss mechanisms have been designed and fabricated. Both far-field and spectral characterization were conducted on the devices to make detailed comparison with theoretical results. We found that introducing higher loss within the interelement region can allow the in-phase mode to exhibit the lowest threshold gain for a wide range of interelement widths around the in-phase resonance condition. A detailed spectral study of 5×5 arrays with the highest interelement loss design has demonstrated suppression of competing guided array modes and higher order leaky array modes at drive currents up to 10 times threshold.
Keywords :
laser cavity resonators; laser modes; light propagation; optical fabrication; optical losses; semiconductor device models; semiconductor laser arrays; surface emitting lasers; 2D antiguided arrays; 2D resonance; active-photonic-lattice-based laser; antiguided laser arrays; array mode frequencies; bidirectional beam propagation code; device characterization; device fabrication; device modeling; effective index method; far-field characterization; gain spatial hole burning effects; guided array modes; in-phase mode lasing; interelement loss; intermodal discrimination; large aperture laser arrays; leaky array modes; primary wave propagation direction; rectangular geometry array structures; rectangular geometry arrays; spectral characterization; three-dimensional beam propagation code; two-dimensional laser arrays; two-dimensional laser model; vertical-cavity surface-emitting laser arrays; Apertures; Geometrical optics; Laser modes; Laser theory; Optical arrays; Optical device fabrication; Resonance; Surface emitting lasers; Two dimensional displays; Vertical cavity surface emitting lasers; Antiguide; in-phase mode; leaky waves; out-of-phase mode; resonance; semiconductor laser arrays; vertical-cavity surface-emitting laser (VCSEL);
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2005.853853