期刊文献+

Design procedure for photonic crystal fibers with ultra-flattened chromatic dispersion 被引量:1

Design procedure for photonic crystal fibers with ultra-flattened chromatic dispersion
原文传递
导出
摘要 A simple design procedure is used to generate photonic crystal fibers (PCFs) with ultra-flattened chromatic dispersion. Only four parameters are required, which not only considerably saves the computing time, but also distinctly reduces the air-hole quantity. The influence of the air-hole diameters of each ring of hexagonal PCFs (H-PCF, including 1-hole-missing and 7-hole-missing H-PCFs), circular PCFs (C-PCF), square PCFs (S-PCF), and octagonal PCFs (O-PCF) is investigated through simulations. Results show that regardless of the cross section structures of the PCFs, the 1st ring air-hole diameter has the greatest influence on the dispersion curve followed by that of the 2nd ring. The 3rd ring diameter only affects the dispersion curve within longer wavelengths, whereas the 4th and 5th rings have almost no influence on the dispersion curve. The hole-to-hole pitch between rings changes the dispersion curve as a whole. Based on the simulation results, a procedure is proposed to design PCFs with ultra-flattened dispersion. Through the adjustment of air-hole diameters of the inner three rings and hole-to-hole pitch, a flattened dispersion of 0±0.5 ps/(nm·km) within a wavelength range of 1.239 – 2.083 μm for 5-ring 1-hole-missing H-PCF, 1.248 – 1.992 μm for 5-ring C-PCF, 1.237 – 2.21 μm for 5-ring S-PCF, 1.149 – 1.926 μm for 5-ring O-PCF, and 1.294 – 1.663 μm for 7-hole-missing H-PCF is achieved. A simple design procedure is used to generate photonic crystal fibers (PCFs) with ultra-flattened chromatic dispersion. Only four parameters are required, which not only considerably saves the computing time, but also distinctly reduces the air-hole quantity. The influence of the air-hole diameters of each ring of hexagonal PCFs (H-PCF, including 1-hole-missing and 7-hole-missing H-PCFs), circular PCFs (C-PCF), square PCFs (S-PCF), and octagonal PCFs (O-PCF) is investigated through simulations. Results show that regardless of the cross section structures of the PCFs, the 1st ring air-hole diameter has the greatest influence on the dispersion curve followed by that of the 2nd ring. The 3rd ring diameter only affects the dispersion curve within longer wavelengths, whereas the 4th and 5th rings have almost no influence on the dispersion curve. The hole-to-hole pitch between rings changes the dispersion curve as a whole. Based on the simulation results, a procedure is proposed to design PCFs with ultra-flattened dispersion. Through the adjustment of air-hole diameters of the inner three rings and hole-to-hole pitch, a flattened dispersion of 0±0.5 ps/(nm·km) within a wavelength range of 1.239 – 2.083 μm for 5-ring 1-hole-missing H-PCF, 1.248 – 1.992 μm for 5-ring C-PCF, 1.237 – 2.21 μm for 5-ring S-PCF, 1.149 – 1.926 μm for 5-ring O-PCF, and 1.294 – 1.663 μm for 7-hole-missing H-PCF is achieved.
出处 《Chinese Optics Letters》 SCIE EI CAS CSCD 2011年第5期15-18,共4页 中国光学快报(英文版)
基金 supported by the National "863" Program of China(Nos.2009AA01Z256,2009AA01Z253,and 2008AA01A331) the National Natural Science Foundation of China(Nos.61001121,60736036,and 61006041)
关键词 Chromatic dispersion Crystal whiskers Design Dispersion (waves) DISPERSIONS Photonic crystals Chromatic dispersion Crystal whiskers Design Dispersion (waves) Dispersions Photonic crystals
  • 相关文献

参考文献19

  • 1J. C. Knight, T. A. Birks, P. St. J. Russell, and D. M. Atkin, Opt. Lett. 21, 1547 (1996).
  • 2T. A. Birks, J. C. Knight, and P. St. J. Russell, Opt. Lett. 22, 961 (1997).
  • 3S. M. A. Razzak and Y. Namihira, IEEE Photon. Tech- nol. Lett. 20, 249 (2008).
  • 4F. Couny, P. J. Roberts, T. A. Birks, and F. Benabid, Opt. Express 16 20626 (2008).
  • 5M. D. Nielsen, C. Jacobsen, N. A. Mortensen, J. R. Folkenberg, and H. R. Simonsen, Opt. Express 12, 1372 (2004).
  • 6B. A. Cumberland, J. C. 1h-avers, S. V. Popov, and J. R. Taylor, Opt. Express 16, 5954 (2008).
  • 7L. Fang, J. Zhao, and X. Gan, Chin. Opt. Lett. 8, 1028 (2010).
  • 8W. HI Reeves, J. C. Knight, P. St. J. Russell, and P. J. Roberts, Opt. Express 10, 609 (2002).
  • 9A. Ferrando, E. Silvestre, J. J. Miret, and P. Andres, Opt. Lett. 25, 790 (2000).
  • 10K. Saitoh, M. Koshiba, T. Hasegawa, and E. Sasaoka, Opt. Express 11 843 (2003).

同被引文献3

引证文献1

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部