Title :
Fabrication of GaInAsP/InP photonic Crystal lasers by ICP etching and control of resonant mode in point and line composite defects
Author :
Inoshita, Kyoji ; Baba, Toshihiko
Author_Institution :
Dept. of Electr. & Comput. Eng., Yokohama Nat. Univ., Japan
Abstract :
We theoretically and experimentally investigated lasing and resonant characteristics in photonic crystal lasers with point defects and/or point and line composite defects. The finite-difference time domain simulation showed that various resonant modes can occur in arbitrary defect geometries. A GaInAsP airbridge photonic crystal slab with a lattice constant of ∼0.42 μm, a hole diameter of ∼0.25 μm, a sidewall angle of ∼90°, and a sidewall roughness of ∼10 nm, was fabricated by Cl2/Xe inductively coupled plasma etching, in which ions and radicals were balanced by optimizing the gas pressure and the bias voltage. The room temperature pulsed lasing was observed with a threshold irradiated power of 1.4 mW by photopumping. The possibility of the continuous-wave (CW) lasing was also discussed with the estimation of the thermal resistance. The mode control in some composite defects was confirmed from resonant photoluminescence peaks under CW condition.
Keywords :
arsenic compounds; finite difference time-domain analysis; gallium compounds; indium compounds; laser modes; lattice constants; optical fabrication; optical pulse generation; optical pumping; photoluminescence; photonic band gap; photonic crystals; semiconductor lasers; sputter etching; surface emitting lasers; thermal resistance; 1.4 mW; GaInAsP airbridge photonic crystal slab; GaInAsP-InP; GaInAsP/InP photonic crystal lasers; ICP etching; continuous-wave lasing; finite-difference time domain simulation; inductively coupled plasma etching; lattice constant; line composite defects; optical fabrication; photoluminescence peaks; photopumping; point composite defects; point defects; resonant mode; room temperature pulsed lasing; sidewall roughness; thermal resistance; Etching; Indium phosphide; Laser modes; Laser theory; Optical control; Optical device fabrication; Photonic crystals; Plasma temperature; Resonance; Thermal resistance;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2003.819466