4.5 Article

A novel photonic crystal fiber Mach Zehnder interferometer for enhancing refractive index measurement sensitivity

Journal

OPTICS COMMUNICATIONS
Volume 402, Issue -, Pages 368-374

Publisher

ELSEVIER
DOI: 10.1016/j.optcom.2017.06.033

Keywords

Mach Zehnder interferometer (MZI); Photonic crystal fiber (PCF); Refractive index (RI) sensing; Improve RI.sensitivity

Categories

Funding

  1. National Natural Science Foundation of China [61425003, 61403074]
  2. Fundamental Research Funds for the Central Universities [N160408001, N150401001]
  3. State Key Laboratory of Synthetical Automation for Process Industries [2013ZCX09]

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A novel refractive index (RI) sensor based on photonic crystal fiber Mach Zehnder interferometer (PCF-MZI) was proposed. It was realized by cascading a section of PCF with half-taper collapse regions (HTCRs) between two single mode fibers (SMFs). The relationship between RI sensitivity and interference length of the PCF-MZI was firstly investigated. Both simulation and experimental results showed that RI sensitivity increased with the increase of interference length. Afterwards, influence of HTCR parameters on RI sensitivity was experimentally investigated to further improve the sensitivity. With intensification of arc discharge intensity in HTCR fabrication process, HTCR with larger maximum taper diameter and longer collapsed region length was obtained, which enhanced evanescent field of the PCF-MZI and then generated higher RI sensitivity. Consequently, a high RI sensitivity of 181.96 nm/refractive index unit (RIU) was achieved in the RI range of 1.3333-1.3574. Increasing arc discharge intensity in HTCR fabrication process has the capacity to improve RI sensitivity of PCF-MZI and meanwhile provides higher mechanical strength and longer sensor life compared to the traditional method of tapering the fiber, which improves the RI sensitivity at the cost of reducing mechanical strength of the sensor. This PCF-MZI was characterized by high RI sensitivity, ease of fabrication, high mechanical strength, and robustness. (C) 2017 Elsevier B.V. All rights reserved.

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