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兰州理工大学 理学院,甘肃 兰州,730050
收稿日期:2009-07-14,
修回日期:1900-01-02,
网络出版日期:2010-06-30,
纸质出版日期:2010-06-30
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侯尚林, 韩佳巍, 朱 鹏, 等. 基于双芯光子晶体光纤的 低非线性宽带色散补偿光纤的设计[J]. 发光学报, 2010,31(3):449-453.
HOU Shang-lin, HAN Jia-wei, ZHU Peng, et al. A Novel Design of a Dual-core Photonic Crystal Fiber for Broadband Dispersion Compensation with Low Nonlinearity[J]. Chinese journal of luminescence, 2010, 31(3): 449-453.
侯尚林, 韩佳巍, 朱 鹏, 等. 基于双芯光子晶体光纤的 低非线性宽带色散补偿光纤的设计[J]. 发光学报, 2010,31(3):449-453. DOI:
HOU Shang-lin, HAN Jia-wei, ZHU Peng, et al. A Novel Design of a Dual-core Photonic Crystal Fiber for Broadband Dispersion Compensation with Low Nonlinearity[J]. Chinese journal of luminescence, 2010, 31(3): 449-453. DOI:
采用矢量光束传输法数值模拟了基于模式耦合的双芯光子晶体光纤的色散和非线性与其结构的关系。结果表明:通过在包层中移除一层空气孔以形成外纤芯并调整内外纤芯之间的距离及包层空气孔的占空比
内外纤芯间的模式耦合可以在宽带范围内发生
导致产生大负色散。同时
由于光场分布在两个纤芯内
增大了模场面积
产生低非线性
可以实现低非线性宽带色散补偿。
Dispersion and nonlinearity are the main adverse factor in modern long-distance and high bit-rate optical transmission systems. Recently
the dual-concentric-core structures
used in conventional dispersion compensation fibers have also been adopted in the design of photonic crystal fibers (PCFs). Large negative dispersion is always associated with small effective area
which leads to undesirable nonlinear effects during optical signal transmission. By employing the vectorial beam propagation method
a novel dual-core photonic crystal fiber based on pure silica for broadband dispersion compensation with low nonlinearity was proposed. The influence of the air-filing fraction in cladding and the distance between the inner and outer cores on the dispersion and nonlinear coefficient was numerically investigated. The simulation results showed that
by introducing the outer core by removing one air-hole ring in the cladding and adjusting the distance between the inner and outer cores and the air-filing fraction
the mode coupling of the inner and outer cores can take place in a wide wavelength range
which can induce larger negative dispersion. Meanwhile
since the light field is distributed in the two cores
the effective mode field area is larger so that the nonlinear coefficient is lower. These simulation results will be useful for designing broadband dispersion compensation fibers with low nonlinearity.
. Yang Guangqiang, Zhang Xia, Ren Xiaomin, et al. Experimental research on dispersion compensation of 10 Gb/s clock signal using photonic crystal fiber [J]. Chin. J. Lasers (中国激光), 2005, 32 (9):1221-1224 (in Chinese).
. Hou Shanglin, Han Jiawei. Design of a novel microstructure fiber for broadband dispersion compensation with low nonlinearity [J]. Chin. J. Lumin. (发光学报), 2009, 30 (6):882-887 (in Chinese).
. Grüner-Nielsen L, Wandel M, Kristensen P, et al. Dispersion-compensating fibers [J]. J. Lightwave Technol., 2005, 23 (11):3566-3579.
. Thyagarajan K, Varshney R K, Palai P, et al. A novel design of a dispersion compensating fiber [J]. IEEE Photon. Technol. Lett., 1996, 8 (11):1510-1512.
. Auguste J L, Jindal R, Blondy J M, et al. 1800 ps·nm-1·km-1 chromatic dispersion at 1.55 μm in dual cocentric core fibre [J]. Electronics Lett., 2000, 36 (20):1689-1691.
. Gérme F, Auguste J L, Blondy J M. Design of dispersion-compensating fibers based on a dual concentric-core photonic crystal fiber [J]. Opt. Lett., 2004, 29 (23):2725-2727.
. Ni Y, Zhang L, An L, et al. Dual-core photonic crystal fiber for dispersion compensation [J]. IEEE Photonics Technol. Lett., 2004, 16 (6):1516-1518.
. Wang Daobin, Hou Shanglin, Ren Guodong, et al. Band structure of Suzuki phase photonic crystal [J]. Chin. J. Lumin. (发光学报), 2008, 29 (5):885-890 (in Chinese).
. Huttunen A, Torma P. Optimization of dual-core and microstructure fiber geometries for dispersion compensation and large mode area [J]. Opt. Express, 2005, 13 (2):627-635.
. Kim S, Kee C S, Ko D K, et al. A dual-concentric-core photonic crystal fiber for broadband dispersion compensation [J]. J. Korean Phys. Soc., 2006, 49 (4):1434-1437.
. Yang S, Zhang Y, Peng X. Theoretical study and experimental fabrication of high negative dispersion photonic crystal fiber with large area mode field [J]. Opt. Express, 2006, 14 (7):3015-3023.
. Fujisawa T, Saitoh K, Wada K, et al. Chromatic dispersion profile optimization of dual-concentric-core photonic crystal fibers for broadband dispersion compensation [J]. Opt. Express, 2006, 14 (2):893-900.
. Zhang Z, Shi Y, Bian B, et al. Large negative dispersion in dual-core photonic crystal fibers based on optional mode coupling [J]. IEEE Photonics Technology Lett., 2008, 20 (16):1402-1404.
. Yu C, Liou J, Huang S, et al. Tunable dual-core liquid-filled photonic crystal fibers for dispersion compensation [J]. Opt. Express, 2008, 16 (7):4443-4451.
. Saitoh K, Koshiba M. Full-vectorial imaginary-distance beam propagation method based on a finite element scheme: application to photonic crystal fibers [J]. IEEE J. Quant. Electron., 2002, 38 (7):927-933.
. Scarmozzino R, Osgood Jr R M. Comparison of finite-difference and Fourier-transform solutions of the parabolic wave equation with emphasis on integrated-optics applications [J]. J. Opt. Soc. Am. A, 1991, 8 (5):724-731.
. Scarmozzino R, Gopinath A, Pregla R, et al. Numerical techniques for modeling guided-wave photonic devices [J]. J. Sel. Top. Quantum Electron., 2000, 6 (1):150-162.
. Liu Y, Berkey G. Single-mode dispersion-shifted fibers with effective area over 100 μm2 . New Jersey: IEEE, 1998, 41-42.
. Shen L P, Huang W P, Chen G X, et al. Design and optimization of photonic crystal fibers for broad-band dispersion compensation [J]. IEEE Photon. Tech. Lett., 2003, 15 (4):540-542.
. Mortensen N A. Effective area of photonic crystal fibers [J]. Opt. Express, 2002, 10 (7):341-348.
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