Title :
Self-Pulsation in a Nonlinear Plasmonic Ring Resonator
Author_Institution :
Dept. of Micro & Nanophotonics, Nat. Inst. for R&D in Microtechnologies, Voluntari, Romania
Abstract :
We demonstrate the self-pulsing behavior in a nonlinear all-pass plasmonic microring resonator (MRR). The structure consists of a nonlinear metal-dielectric-metal (MDM) plasmonic waveguide and supports antisymmetric, backward propagating slow-modes. The slow modes are coupled to a feedback loop realized from a MDM waveguide, which supports symmetric, forward propagating fast modes. We calculate the temporal response of the system with a finite difference time domain method and show a SP behavior for input fields higher than a critical value. We perform a semi-quantitative description of the self-pulsation by solving iteratively, in time domain, the Ikeda equation of an all-pass MRR presenting a nonlinear phase shift. For this system, the pulses have a period of 300 fs with a modulation factor of 0.3. This configuration could be applied as a source of continuous wave terahertz radiation or as an optical clock in highly integrated plasmonic circuits.
Keywords :
finite difference time-domain analysis; nanophotonics; optical waveguides; plasmonics; Ikeda equation; SP behavior; all-pass MRR; continuous wave terahertz radiation; finite difference time domain method; highly integrated plasmonic circuits; nonlinear phase shift; optical clock; symmetric forward propagating fast modes; temporal response; time 300 fs; Cavity resonators; Couplings; Feedback loop; Finite difference methods; Optical waveguides; Plasmons; Time-domain analysis; Nanophotonics; nonlinear optical devices; plasmons;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2013.2287376