期刊文献+

A novel multi-waveband dispersion compensating fiber based on hybrid photonic crystal fiber

A novel multi-waveband dispersion compensating fiber based on hybrid photonic crystal fiber
原文传递
导出
摘要 In view of dispersion compensating in multiple wavebands at the same time, this paper proposes a novel multi-waveband dispersion compensating fiber (DCF) based on hybrid photonic crystal fiber (PCF). The proposed fiber can compensate multiple wavebands at the same time. The mechanism of the multi-waveband dispersion compensation is analyzed, and the different material-filled structure is discussed numerically. The simulation results show that the multi-waveband DCF can compensate multiple wavelengths at the same time. By a reasonable design, this fiber can replace the multi-dispersion compensating system composed by cascaded multiple devices, and minimize the loads of the system in an efficient way. In view of dispersion compensating in multiple wavebands at the same time, this paper proposes a novel multi-waveband dispersion compensating fiber (DCF) based on hybrid photonic crystal fiber (PCF). The proposed fiber can compensate multiple wavebands at the same time. The mechanism of the multi-waveband dispersion compensation is analyzed, and the different material-filled structure is discussed numerically. The simulation results show that the multi-waveband DCF can compensate multiple wavelengths at the same time. By a reasonable design, this fiber can replace the multi-dispersion compensating system composed by cascaded multiple devices, and minimize the loads of the system in an efficient way.
出处 《Optoelectronics Letters》 EI 2013年第1期53-56,共4页 光电子快报(英文版)
基金 supported by the National Natural Science Foundation of China (No.61032005) the Natural Science Foundation of Jiangsu Province in China (Nos.BK2011114 and BK2012509)
  • 相关文献

参考文献25

  • 1K. Thyagarajan, R. K. Varshney, P. Palai, A. K. Ghatak and L. C. Goyal, IEEE Photon. Technol. Lett. 8, 1510 (1996).
  • 2Jingyuan Wang, Chun Jang, Weisheng Hu and Mingyi Gao, Opt. Laser Technol. 38, 169 (2006).
  • 3T. J. Yang, L. F. Shen, Y. F. Chau, M. J. Sung, D. Chen and D. P. Tsai, Opt. Commun. 281, 4334 (2008).
  • 4J. H. Liou, S. S. Huang and C. E Yu, Opt. Commun. 283, 971 (2010).
  • 5J. L. Auguste, R. Jindal, J. M. Blondy, M. Clapeau, J. Marcou, B. Dussardier, G. Monnom, D. B. Ostrowsky, B. P. Pal and K. Thygarajan, Electron. Lett. 36, 1689 (2000).
  • 6F. Gereme, J.-L.Auguste and J.-M. Blondy, Optics Lett. 29, 2725 (2004).
  • 7Yi Ni, Lei Zhang, Liang An, Jiangde Peng and Chongcheng Fan, IEEE Photon. Technol. Lett. 16, 1516 (2004).
  • 8A. Huttunen, Opt. Express 13,627 (2005).
  • 9Zhihua Zhang, Yifei Shi, Baomin Bian and Jian Ju, IEEE Photon. Technol. Lett. 20, 1402 (2008).
  • 10Wang Honghua, Xue Wenrui and Zhang Wenmei, Acta Optica Sinica 28, 27 (2008).

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