Light transmission mechanisms in a SMF-capillary fiber-SMF structure and its application to bi-directional liquid level measurement

Author:

Huang Ziyi1,Liu Dejun12ORCID,Wu Qiang34ORCID,Tian Ke5ORCID,Zhao Haoyu6,Shen Changyu7ORCID,Farrell Gerald8ORCID,Semenova Yuliya8,Wang Pengfei15

Affiliation:

1. College of Physics and Optoelectronic Engineering, Shenzhen University

2. Shenzhen University

3. Nanchang Hangkong University

4. Northumbria University

5. Harbin Engineering University

6. Technical Center, Sichuan Changhong Electric Co.,

7. Institute of Optoelectronic Technology, China Jiliang University

8. Technological University Dublin

Abstract

Capillary fiber (CF) has been extensively investigated in a singlemode fiber (SMF)-CF-SMF (SCS) sensing structure since multiple light guiding mechanisms can be easily excited by simply tuning the air core diameter (cladding diameter) and length of the CF. Understanding the light guiding principles in an SCS structure is essential for improved implementation of a CF based fiber sensor. In this work, light guiding principles in a relatively large air core diameter (≥ 20 µm) and long length of CF (> 1 mm) are investigated theoretically and experimentally. It is found that both multimode interference (MMI) and Anti-Resonant Reflecting Optical Waveguide (ARROW) light guiding mechanisms are excited in the SCS structure in the transmission configuration. However, MMI dips are not observed in the spectrum for the air core diameters of CF smaller than 50 µm in the experiment due to large transmission loss in small air core CFs. Further experimental results demonstrate that a CF with a bigger air core diameter shows a higher sensitivity to curvature, and the highest sensitivity of -16.15 nm/m-1 is achieved when an CF-100 was used. In addition, a SMF-CF-20-CF-30-SMF (SCCS) structure is proposed for high sensitivity bi-direction liquid level measurement for the first time, to the best of our knowledge. Two types of ARROW dips (Dip-20 and Dip-30) are simultaneously excited in transmission, hence both liquid level and liquid flow direction can be detected by tracing the dip strength changes of Dip-20 and Dip-30, respectively.

Funder

National Natural Science Foundation of China

Basic and Applied Basic Research Foundation of Guangdong Province

Shenzhen Fundamental Research Program

National Key Scientific Instrument and Equipment Development Projects of China

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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