Title :
Theory of a Directive Optical Leaky Wave Antenna Integrated into a Resonator and Enhancement of Radiation Control
Author :
Guclu, Caner ; Campione, Salvatore ; Boyraz, Ozdal ; Capolino, Filippo
Author_Institution :
Univ. of California, Irvine, Irvine, CA, USA
Abstract :
We provide for the first time the detailed study of the radiation performance of an optical leaky wave antenna (OLWA) integrated into a Fabry-Pérot resonator. We show that the radiation pattern can be expressed as the one generated by the interference of two leaky waves counter-propagating in the resonator leading to a design procedure for achieving optimized broadside radiation, i.e., normal to the waveguide axis. We thus report a realizable implementation of the OLWA made of semiconductor and dielectric regions. The theoretical modeling is supported by full-wave simulation results, which are found to be in good agreement. We aim to control the radiation intensity in the broadside direction via excess carrier generation in the semiconductor regions. We show that the presence of the resonator can provide an effective way of enhancing the radiation level modulation, which reaches values as high as 13.5 dB, paving the way for novel promising radiation control capabilities that might allow the generation of very fast optical switches, as an example.
Keywords :
Fabry-Perot resonators; antenna arrays; antenna radiation patterns; directive antennas; integrated optics; leaky wave antennas; optical design techniques; optical waveguides; Fabry-Perot resonator; broadside direction; carrier generation; design procedure; dielectric region; directive optical leaky wave antenna; full-wave simulation; leaky wave counter-propagation; optical switches; radiation control; radiation intensity; radiation level modulation; radiation pattern; semiconductor region; theoretical modeling; waveguide axis; Directive antennas; Harmonic analysis; Leaky wave antennas; Mirrors; Optical resonators; Optical waveguides; Fabry–Pérot resonator; optical leaky wave antenna (OLWA);
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2014.2304178