Title :
Modeling an electrically driven graphene-nanoribbon laser for optical interconnects
Author :
Guangcun Shan ; Chan-Hung Shek
Author_Institution :
Dept. of Phys. & Mater. Sci., City Univ. of Hong Kong, Hong Kong, China
Abstract :
Graphene has two very important optical properties of population inversion of electrons, and broadband optical gain. As a result, graphene has potential for use in lasers and amplifiers. In this work, we presented a quantum master model and analyzed the properties for the electrically pumped single-AGNR vertical-cavity surface-emitting lasers (VCSELs) to investigate the lasing action and laser properties for realistic experimental parameters. A semiclassical approximation for the output power and laser linewidth is also derived. The laser threshold power was several orders of magnitude lower than that currently achievable with semiconductor microlasers. Our results have demonstrated that a single-AGNR VCSEL can serve as a nanolaser with ultralow lasing threshold. Implementation of such a GNR-based VCSEL is especially promising for optical interconnection systems since VCSELs emit low optical power and single longitudinal mode over a wide wavelength spectral range through tailoring GNRs.
Keywords :
graphene; nanoribbons; optical interconnections; population inversion; semiconductor lasers; surface emitting lasers; C; broadband optical gain; electrically driven graphene nanoribbon laser; laser linewidth; laser threshold power; optical interconnects; population inversion; quantum master model; semiconductor microlasers; single AGNR VCSEL; vertical cavity surface emitting lasers; Atomic measurements; Optical coupling; Optical interconnections; Optical pumping; Photonics; Stimulated emission; Vertical cavity surface emitting lasers; graphene; graphene nanoribbon; laser; optical interconnects;
Conference_Titel :
Photonics Global Conference (PGC), 2012
Conference_Location :
Singapore
Print_ISBN :
978-1-4673-2513-4
DOI :
10.1109/PGC.2012.6458072