期刊文献+

Tunable and low bending loss of liquid-core fiber 被引量:1

Tunable and low bending loss of liquid-core fiber
原文传递
导出
摘要 The liquid-core fiber with relatively high refractive index difference between the core and cladding is proven to be bending insensitive. The single mode condition and bending loss of the fiber with a mixture of toluene and chloroform as its core material are studied. The results show that the bending loss of this fiber is not only much smaller than the conventional silica single mode fiber but also can be tuned by the temperature and liquid mixture ratio. This kind of fiber may find its potential applications in all-optical network. The liquid-core fiber with relatively high refractive index difference between the core and cladding is proven to be bending insensitive. The single mode condition and bending loss of the fiber with a mixture of toluene and chloroform as its core material are studied. The results show that the bending loss of this fiber is not only much smaller than the conventional silica single mode fiber but also can be tuned by the temperature and liquid mixture ratio. This kind of fiber may find its potential applications in all-optical network.
机构地区 Department of Physics
出处 《Chinese Optics Letters》 SCIE EI CAS CSCD 2010年第1期14-17,共4页 中国光学快报(英文版)
基金 supported by the National Natural Science Foundation of China(No.10874119) the National"973"Program of China(No.2007CB307000) the Shanghai Leading Academic Discipline Project (No.B201)
关键词 Coremaking Fiber optic networks Liquids Refractive index SILICA Single mode fibers TOLUENE Coremaking   Fiber optic networks   Liquids   Refractive index   Silica   Single mode fibers   Toluene
  • 相关文献

参考文献29

  • 1J. Kawataka, K. Hogari, H. Iwata, H. Hakozaki, M. Kanayama, H. Yamamoto, T. Aihara, and K. Sato, 3. Lightwave Technol. 21, 789 (2003).
  • 2C. Yeh and S. Chi, Opt. Express 13, 5494 (2005).
  • 3J. Ye, J. Peng, R. Jones, K. Holman, J. Hall, D. Jones, S. Diddams, J. Kitching, S. Bize, J. Bergquist, L. Hollberg, L. Robertsson, and L. Ma, J. Opt. Soc. Am. B 20, 1459 (2003).
  • 4M. Musha, F. Hong , K. Nakagawa, and K. Ueda, Opt. Express 16, 16459 (2008).
  • 5D. Chiaroni, B. Lavigne, A. Jourdan, M. Sotom, L. Hamon, C. Chauzat, J. Jacquinot, A. Barroso, T. Zami, F. Dorgeuille, C. Janz, J. Emery, E. Grard, and M. Renaud, J. lightwave Technol. 16, 2255 (1998).
  • 6D. Gallant, in Proceedings of NFOEC(OSA), NWC3 (2006).
  • 7Z. Ma, C. Zhang, P. Ou, G. Luo, and Z. Zhang, Chin. Opt. Lett. 6, 261 (2008).
  • 8A: Garg and R. Kaler, Chin. Opt. Lett. 6, 807 (2008).
  • 9W. Tao, Q. Chang, and Y. Su, Chin. Opt. Lett. 7, 339(2009).
  • 10H. Yang, J. Sun, and Q. Du, Chinese. J. Lasers (in Chinese) 36, 1448 (2009).

同被引文献11

  • 1Mori M Vogel, Marwan Abdou-Ahmed. Very-large-mode-area,single-mode multicore fiber[J]. OPTICS LETFERS, 2009,34 (18) :2876.
  • 2Guillaume Canatl, Ron Spittel. Analysis of the multifila- ment core fiber using the effective index theory[J]. OPTICS EXPRESS, 2010, 18 (5) : 4644-4654.
  • 3John M Finil. Large-mode-area muhicore fibers in the sin- gle-moded regime[J]. OPTICS EXPRESS, 2011 , 19 (5): 40-42.
  • 4Ming-Yang Chen, Yong-Kang Zhang. Bend Insensitive De- sign of Large-Mode-AreaMicrostructured Optical Fibers[J]. JOURNAL OF LIGHTWAVE TECHNOLOGY, 2011, 29 (15) : 0733-8724.
  • 5CREGAN R F, MANGAN B J, KNIGHT J C. Singlemode photonic bandgap guidance of light in air[J]. Science, 1999, 285 (5433) : 1537-1539.
  • 6M-J Li, Fellow. Ultra-Low Bending Loss Single-Mode Fi- ber for FTFH[J]. JOURNAL OF LIGHTWAVE TECHNOLO- GY, 2009, 27(3):376.
  • 7COMSOL Muhiphysics, www.comsol.com,2010.
  • 8D Marcuse.Influence of curvature on the losses of doubly clad Fibers[J]. Appl. Opt., 1982,21 : 4208-4213.
  • 9J M Fini.Bend-compensated design of large-mode-area fi- bers[J]. Opt.Lett, 2006,31: 1963-1965.
  • 10S M ABDUR .Theoretical design of a large effective mode area microstructure optical fiber[J] . Optica Applicata, 2010, XL(3):678.

引证文献1

二级引证文献2

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