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基于长周期光栅的用于传感应用的微纤维马赫-曾德尔干涉仪。

Microfiber Mach-Zehnder interferometer based on long period grating for sensing applications.

作者信息

Tan Yanzhen, Sun Li-Peng, Jin Long, Li Jie, Guan Bai-Ou

机构信息

Institute of Photonics Technology, Jinan University, Guangzhou 510632, China.

出版信息

Opt Express. 2013 Jan 14;21(1):154-64. doi: 10.1364/OE.21.000154.

Abstract

A Mach-Zehnder interferometer (MZI) composed by a pair of long period gratings (LPGs) fabricated in silica microfiber for sensing applications is demonstrated. Each LPG is fabricated with a pulsed CO2 laser by creating six periodical deformations along fiber length with only one scanning cycle. The length of the MZI can reach as short as 8.84 mm when the diameter of the microfiber is 9.5 μm. Compared with the ones fabricated in single-mode fibers, the present MZI is much shorter owing to the large effective-index difference between the fundamental and higher order modes. The microfiber MZI exhibits a sensitivity to surrounding refractive index (RI) of 2225 nm per refractive index unit and the temperature sensitivity of only 11.7 pm/°C. Theoretical analysis suggests that the performances of the MZI sensor can be improved by using thinner microfibers with a diameter down to 3.5 μm: The sensitivity can be greatly enhanced due to the stronger evanescent-field interaction and reduced dispersion factor; the transmission dips become narrower which benefits high-resolution measurement; the thinner fiber also allows further reduction in device length. The present device has great potential in biochemical and medical sensing due to the advantages including easy fabrication, excellent compactness and high sensitivity.

摘要

展示了一种由一对在二氧化硅微纤维中制造的长周期光栅(LPG)组成的马赫-曾德尔干涉仪(MZI),用于传感应用。每个LPG通过使用脉冲二氧化碳激光在仅一个扫描周期内沿光纤长度创建六个周期性变形来制造。当微纤维直径为9.5μm时,MZI的长度可短至8.84mm。与在单模光纤中制造的干涉仪相比,由于基模和高阶模之间存在较大的有效折射率差,当前的MZI要短得多。微纤维MZI对周围折射率(RI)的灵敏度为每折射率单位2225nm,温度灵敏度仅为11.7pm/°C。理论分析表明,通过使用直径低至3.5μm的更细微纤维,可以提高MZI传感器的性能:由于更强的倏逝场相互作用和降低的色散因子,灵敏度可以大大提高;传输凹陷变窄,有利于高分辨率测量;更细的光纤还可以进一步缩短器件长度。由于具有易于制造、出色的紧凑性和高灵敏度等优点,当前器件在生化和医学传感方面具有巨大潜力。

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