Relative dispersion slope matched highly birefringent and highly nonlinear dispersion compensating hybrid photonic crystal fiber

被引:8
作者
Haider, Amit [1 ]
Anower, Md Shamim [1 ]
机构
[1] Rajshahi Univ Engn & Technol, Dept Elect & Elect Engn, Rajshahi 6204, Bangladesh
关键词
Birefringence; Dispersion compensating fiber; Hybrid photonic crystal fiber; Nonlinearity; Relative dispersion slope; Sensing; OPTICAL-FIBER; DESIGN; POLARIZATION; PROPAGATION; CONFINEMENT;
D O I
10.1016/j.photonics.2019.100704
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
In this study, we developed the optimum design for a highly birefringent hybrid photonic crystal fiber (Hy-PCF) based on an adapted structure for broadband compensation covering the S, C, and L communication bands, i.e., wavelengths from 1400 nm to 1625 nm. The simulation results showed that high birefringence of 3.039 x 10(-2) was obtained with a high nonlinear coefficient of 33.76 W-1 km(-1) at an effective wavelength of 1550 nm. The fiber also exhibited dispersion compensation properties over a broad range of wavelengths covering the S to L communication bands. The proposed design achieved a negative dispersion coefficient of - 378.6 ps/(nm-km) at an effective wavelength of 1550 nm. This fiber also had a relative dispersion slope of 0.003623 nm(-1) at an operating wavelength of 1550 nm, which is very close to that of a single mode fiber. This Hy-PCF is suitable for high bit rate communication systems because it allows single mode operation, as well as for optical sensing applications due its high birefringent property.
引用
收藏
页数:6
相关论文
共 36 条
[1]   Dispersion compensation using single-material fibers [J].
Birks, TA ;
Mogilevtsev, D ;
Knight, JC ;
Russell, PS .
IEEE PHOTONICS TECHNOLOGY LETTERS, 1999, 11 (06) :674-676
[2]  
Bise R. T., 2005, OFC NFOEC TECHN DIG
[3]   Numerical analysis of highly birefringent photonic crystal fiber for temperature sensing application [J].
Boufenar, R. ;
Bouamar, M. ;
Hocini, A. .
PHOTONICS AND NANOSTRUCTURES-FUNDAMENTALS AND APPLICATIONS, 2017, 24 :47-52
[4]   Complete analysis of the characteristics of propagation into photonic crystal fibers, by the finite element method [J].
Brechet, F ;
Marcou, J ;
Pagnoux, D ;
Roy, P .
OPTICAL FIBER TECHNOLOGY, 2000, 6 (02) :181-191
[5]   Fabrication of photonic crystals for the visible spectrum by holographic lithography [J].
Campbell, M ;
Sharp, DN ;
Harrison, MT ;
Denning, RG ;
Turberfield, AJ .
NATURE, 2000, 404 (6773) :53-56
[6]   Analysis of propagation characteristics for an octagonal photonic crystal fiber (O-PCF) [J].
Chiang, JS ;
Wu, TL .
OPTICS COMMUNICATIONS, 2006, 258 (02) :170-176
[7]   Perturbation analysis of dispersion properties in photonic crystal fibers through the finite element method [J].
Cucinotta, A ;
Selleri, S ;
Vincetti, L ;
Zoboli, M .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 2002, 20 (08) :1433-1442
[8]  
Green Paul Eliot, 1993, FIBER OPTIC NETWORKS, V992
[9]   Dispersion-compensating fibers [J].
Grüner-Nielsen, L ;
Wandel, M ;
Kristensen, P ;
Jorgensen, C ;
Jorgensen, LV ;
Edvold, B ;
Pálsdóttir, B ;
Jakobsen, D .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 2005, 23 (11) :3566-3579
[10]   Residual dispersion compensation over the S plus C plus L plus U wavelength bands using highly birefringent octagonal photonic crystal fiber [J].
Habib, M. Samiul ;
Ahmad, Redwan ;
Habib, M. Selim ;
Hasan, M. Imran .
APPLIED OPTICS, 2014, 53 (14) :3057-3062