Title :
Coupled photonic-crystal cavities and quantum-wire microlasers
Author :
Atlasov, Kirill A. ; Karlsson, Karl Fredrik ; Gallo, Pascal ; Calic, Milan ; Rudra, Alok ; Dwir, Benjamin ; Kapon, Eli
Author_Institution :
Lab. of Phys. of Nanostruct., Ecole Polytech. Fed. de Lausanne (EPFL), Lausanne, Switzerland
fDate :
June 28 2009-July 2 2009
Abstract :
Strong optical confinement implemented with 2D photonic-crystal (PhC) microcavities provides a powerful tool for controlling the features of light-matter interaction. Combined with nanostructures such as quantum wells, quantum wires (QWRs) or quantum dots, the PhC cavities - efficiently controlling spontaneous emission [1] - are envisaged to bring superior semiconductor-laser performance [2], which could be exploited for applications in low-power-consumption integrated optoelectronics. Furthermore, inter-cavity optical coupling may allow for optimizing the laser output power [3] and realizing ultra-fast switching devices [4]. Here, we present experimental and numerical studies of directly coupled L3-type PhC microcavities that employ monolithically embedded site-controlled QWRs acting as local internal light sources. Using microphotoluminescence (PL) experiments [5], it is shown that such PhC system supports coupled modes with distinct resonant wavelengths and delocalized optical fields. It is also demonstrated that the cavity losses of these modes may ldquosplitrdquo as well, in general. Furthermore, we demonstrate single-mode QWR-PhC microlasers. Low thresholds (~1 muW) and relatively high spontaneous-emission coupling factors (beta ~ 0.3) are achieved. Lasing is established based on power-dependent linewidth narrowing [6] and time-resolved photon dynamics [7]. This work provides grounds for the development of more complex PhC systems for experiments in quantum physics [8] and microlasers [4].
Keywords :
microcavity lasers; photoluminescence; photonic crystals; quantum optics; quantum well lasers; 2D photonic crystal microcavity; coupled photonic crystal cavity; intercavity optical coupling; light matter interaction; microphotoluminescence experiment; optical confinement; quantum wire microlasers; Integrated optoelectronics; Lighting control; Microcavities; Optical control; Optical coupling; Quantum dot lasers; Semiconductor nanostructures; Spontaneous emission; Stimulated emission; Wires; microcavity lasers; optical coupling; photonic crystals; semiconductor nanostructures;
Conference_Titel :
Transparent Optical Networks, 2009. ICTON '09. 11th International Conference on
Conference_Location :
Azores
Print_ISBN :
978-1-4244-4825-8
Electronic_ISBN :
978-1-4244-4827-2
DOI :
10.1109/ICTON.2009.5185120