DocumentCode :
1114356
Title :
Realistic Design of Large-Hollow-Core Photonic Band-Gap Fibers With Suppressed Higher Order Modes and Surface Modes
Author :
Saitoh, Kunimasa ; Florous, Nikolaos John ; Murao, Tadashi ; Koshiba, Masanori
Author_Institution :
Hokkaido Univ., Sapporo
Volume :
25
Issue :
9
fYear :
2007
Firstpage :
2440
Lastpage :
2447
Abstract :
This paper theoretically describes effective suppression of higher order modes (HOMs) in realistic large-hollow-core photonic band-gap fibers (PBGFs) and utilizes the use of this class of waveguides for low-loss data-transmission applications and high-power beam delivery systems. The proposed design strategy is based on the resonant-coupling mechanism of central air-core modes with defected outer core modes. By incorporating six 7-unit-cell air cores in the cladding of the PBGF with sixfold symmetry, it is possible by resonantly coupling the light corresponding to the HOMs in a central 19-unit-cell core into the outer 7-unit-cell core, thus significantly increasing the leakage losses of the HOMs in comparison to those of fundamental mode. We consider a realistic PBGF structure with hexagonal airholes having rounded corners and derive a surface-mode-free condition of a silica-ring thickness surrounding the hollow core for both 7-unit-cell and 19-unit-cell cores. Verification regarding the propagation properties of the proposed design is ensured with a PBGF analysis based on a finite element modal solver. Numerical results show that the leakage losses of the HOMs can be enhanced in a level of at least three orders of magnitude over 200-nm wavelength range in comparison to those of the fundamental mode, while in addition, we show that the incorporation of a realistic air core with optimized silica-ring thickness can eliminate surface modes and achieve strong confinement into the central core and very low eta-factor for the fundamental mode.
Keywords :
finite element analysis; optical design techniques; optical fibre losses; optical materials; photonic band gap; photonic crystals; PBGF cladding; central air-core modes; finite element modal solver; hexagonal airholes; high-power beam delivery systems; higher-order mode suppression; large-hollow-core photonic band-gap fiber design; leakage losses; low-loss data-transmission waveguides; outer core modes; resonant-coupling mechanism; silica-ring thickness; surface mode suppression; surface-mode-free condition; Light scattering; Optical attenuators; Optical fibers; Optical scattering; Optical surface waves; Particle scattering; Photonic band gap; Resonance; Surface waves; Waveguide theory; Finite-element method (FEM); high-power beam delivery; large mode area fibers; low attenuation; low nonlinearity; photonic band-gap fibers (PBGFs); single-mode fibers;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/JLT.2007.902749
Filename :
4299010
Link To Document :
بازگشت