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Thermo-optic Characteristics of Micro-structured Optical Fiber Infiltrated with Mixture Liquids

  • Wang, Ran (College of Precision Instruments and Opto-electronics Engineering, Institute of Laser & Optoelectronics, Tianjin University) ;
  • Wang, Yuye (College of Precision Instruments and Opto-electronics Engineering, Institute of Laser & Optoelectronics, Tianjin University) ;
  • Miao, Yinping (College of Precision Instruments and Opto-electronics Engineering, Institute of Laser & Optoelectronics, Tianjin University) ;
  • Lu, Ying (College of Precision Instruments and Opto-electronics Engineering, Institute of Laser & Optoelectronics, Tianjin University) ;
  • Luan, Nannan (College of Precision Instruments and Opto-electronics Engineering, Institute of Laser & Optoelectronics, Tianjin University) ;
  • Hao, Congjing (College of Precision Instruments and Opto-electronics Engineering, Institute of Laser & Optoelectronics, Tianjin University) ;
  • Duan, Liangcheng (College of Precision Instruments and Opto-electronics Engineering, Institute of Laser & Optoelectronics, Tianjin University) ;
  • Yuan, Cai (College of Precision Instruments and Opto-electronics Engineering, Institute of Laser & Optoelectronics, Tianjin University) ;
  • Yao, Jianquan (College of Precision Instruments and Opto-electronics Engineering, Institute of Laser & Optoelectronics, Tianjin University)
  • 투고 : 2013.01.21
  • 심사 : 2013.04.15
  • 발행 : 2013.06.25

초록

We present both theoretically and experimentally the thermo-optic characteristics of micro-structured optical fiber (MOF) filled with mixed liquid. The performance of MOF depends on the efficient interaction between the fundamental mode of the transmitted light wave and the tunable thermo-optic materials in the cladding. The numerical simulation indicates that the confinement loss of MOF presents higher temperature dependence with higher air-filling ratios $d/{\Lambda}$, longer incident wavelength and fewer air holes in the cladding. For the 4cm liquid-filled grapefruit MOF, we demonstrate from experiments that different proportions of solutions lead to tunable temperature sensitive ranges. The insertion loss and the extinction ratio are 3~4 dB and approximate 20 dB, respectively. The proposed liquid-filling MOF will be developed as thermo-optic sensor, attenuator or optical switch with the advantages of simple structure, compact configuration and easy fabrication.

키워드

참고문헌

  1. J. C. Knight, "Photonic crystal fibres," Nature 424, 847-851 (2003). https://doi.org/10.1038/nature01940
  2. P. Russell, "Photonic crystal fibers," Science 299, 358-362 (2003). https://doi.org/10.1126/science.1079280
  3. J. C. Knight, T. Birks, P. Russell, and D. Atkin, "All-silica single-mode optical fiber with photonic crystal cladding," Opt. Lett. 21, 1547-1549 (1996). https://doi.org/10.1364/OL.21.001547
  4. J. C. Knight, J. Broeng, T. Birks, and P. Russell, "Photonic band gap guidance in optical fibers," Science 282, 1476-1478 (1998). https://doi.org/10.1126/science.282.5393.1476
  5. W. J. Lee, D. C. Kim, S. G. Park, E. H. Lee, and S. G. Lee, "Measurement of the internal structure of an optical waveguide embedded in a flexible optical circuit board by enhancing the signal contrast of a confocal microscope," J. Opt. Soc. Korea 15, 9-14 (2011). https://doi.org/10.3807/JOSK.2011.15.1.009
  6. M. Bozorgi and N. Granpayeh, "Directional emission from photonic crystal waveguide output by terminating with CROW and employing the PSO algorithm," J. Opt. Soc. Korea 15, 187-195 (2011). https://doi.org/10.3807/JOSK.2011.15.2.187
  7. B. Eggleton, C. Kerbage, P. Westbrook, R. Windeler, and A. Hale, "Microstructured optical fiber devices," Opt. Express 9, 698-713 (2001). https://doi.org/10.1364/OE.9.000698
  8. R. He, P. Sazio, A. Peacock, N. Healy, J. Sparks, M. Krishnamurthi, V. Gopalan, and J. Badding, "Integration of gigahertz-bandwidth semiconductor devices inside microstructured optical fibres," Nat. Photonics 6, 174-179 (2012). https://doi.org/10.1038/nphoton.2011.352
  9. M. Danaie and H. Kaatuzian, "Bandwidth Improvement for a photonic crystal optical Y-splitter," J. Opt. Soc. Korea 15, 283-288 (2011). https://doi.org/10.3807/JOSK.2011.15.3.283
  10. C. S. Park, K. I. Joo, S. W. Kang, and H. R. Kim, "A PDMS-coated optical fiber Bragg grating sensor for enhancing temperature sensitivity," J. Opt. Soc. Korea 15, 329-334 (2011). https://doi.org/10.3807/JOSK.2011.15.4.329
  11. T. Larsen, A. Bjarklev, D. Hermann, and J. Broeng, "Optical devices based on liquid crystal photonic bandgap fibres," Opt. Express 11, 2589-2596 (2003). https://doi.org/10.1364/OE.11.002589
  12. Y. Yu, X. Li, X. Hong, Y. Deng, K. Song, Y. Geng, H. Wei, and W. Tong, "Some features of the photonic crystal fiber temperature sensor with liquid ethanol filling," Opt. Express 18, 15383-15388 (2010). https://doi.org/10.1364/OE.18.015383
  13. Y. Wang, W. Jin, L. Jin, X. Tan, H. Bartelt, W. Ecke, K. Moerl, K. Schroeder, R. Spittel, and R. Willsch, "Optical switch based on a fluid-filled photonic crystal fiber Bragg grating," Opt. Lett. 34, 3683-3685 (2009). https://doi.org/10.1364/OL.34.003683
  14. Y. Wang, X. Tan, W. Jin, D. Ying, Y. Hoo, and S. Liu, "Temperature-controlled transformation in fiber types of fluid-filled photonic crystal fibers and applications," Opt. Lett. 35, 88-90 (2010). https://doi.org/10.1364/OL.35.000088
  15. Y. Wang, H. Bartelt, W. Ecke, K. Moerl, H. Lehmann, K. Schroeder, R. Willsch, J. Kobelke, M. Rothhardt, and R. Spittel, "Thermo-optic switching effect based on fluid-filled photonic crystal fiber," IEEE Photon. Technol. Lett. 22, 164-166 (2010). https://doi.org/10.1109/LPT.2009.2037242
  16. A. Samoc, "Dispersion of refractive properties of solvents: chloroform, toluene, benzene, and carbon disulfide in ultraviolet, visible, and near-infrared," J. Appl. Phys. 94, 6167-6174 (2003). https://doi.org/10.1063/1.1615294
  17. W. Heller, "Remarks on refractive index mixture rules," J. Phys. Chem. 69, 1123-1129 (1964).

피인용 문헌

  1. Efficient Logical Topology Design Considering Multiperiod Traffic in IP-over-WDM Networks vol.19, pp.1, 2015, https://doi.org/10.3807/JOSK.2015.19.1.013
  2. Simulation of surface plasmon resonance temperature sensor based on liquid mixture-filling microstructured optical fiber vol.53, pp.6, 2014, https://doi.org/10.1117/1.OE.53.6.067103