Title :
Finite element analysis of doped photonic crystal fiber for communication systems
Author :
Kheareddine, Khemiri ; Tahar, Ezzedine ; Rezig, H.
Author_Institution :
Ecole Nat. d´Ing. de Tunis, Univ. de Tunis El Manar, Tunis, Tunisia
Abstract :
In the studies of photonic crystal optical fiber (PCF), is brought into effect profile of the geometry of the structure of an important criterion for the optical fibers namely the confinement loss. To optimize an optical fiber structure constituted with a doped core (doped PCF), the value of confinement loss must be as low as possible, a modified structure is introduced in our analysis. It is a structure formed by a doped core surrounded by a cladding which is composed by a photonic air holes in silica. The arrangement of the holes is different. Indeed, there are two different air ring around the core with various hole diameter (d and d´), various pitch (Λ and Λ´) and different filling factor (d / Λ and d´ / Λ´). The study of such a structure leads us to the study of Maxwell´s equations therefore a numerical method is required, we chose the finite element method (FEM) with perfectly matched layers (PML).
Keywords :
Maxwell equations; finite element analysis; holey fibres; optical fibre communication; photonic crystals; Maxwell equations; SiO2; communication systems; confinement loss; doped photonic crystal fiber; filling factor; finite element analysis; geometry; hole diameter; perfectly matched layers; photonic air holes; silica; Finite element analysis; Indexes; Materials; Maxwell equations; Optical losses; Out of order; Photonics; Doped Photonic Crystal Fiber; confinement loss; finite element method FEM; perfectly matched layers PML;
Conference_Titel :
Microelectronics (ICM), 2013 25th International Conference on
Conference_Location :
Beirut
Print_ISBN :
978-1-4799-3569-7
DOI :
10.1109/ICM.2013.6734958