Haiwei Zhang , Sibo Zhang , Zhengyu Liu , Qi Lu , Zhihong Chen , Lifang Xue , Jia Shi , Wei Shi , Jianquan Yao
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引用次数: 0
Abstract
A no-core and few-mode fiber-based structure coating with polyacrylic acid acrylamide hydrogel is used to realize pH and temperature measurement simultaneously. The proposed structure can be obtained through splicing the no-core fiber, few-mode fiber and no-core fiber (NFN) with a certain length in sequence. Its measurement range can cover 2 to 12 for pH and 20 °C to 90 °C for temperature. Meanwhile, surface silanization of the optical fiber is performed to facilitate the adhesion of the hydrogel and to refine the silanization process. The pH-based transmission-sensitivity is measured to be 0.959 dB/pH and the highest pH-based wavelength-sensitivity is 0.837 nm/pH. The temperature-based wavelength-sensitivities are measured to be 0.01 nm/°C and 0.02 nm/°C, respectively, in two different pH environments of 2 ∼ 5 and 5 ∼ 12, while the temperature-based transmission-sensitivities are measured to be 0.432 dB/°C and 0.356 dB/°C, respectively. The pH response of hydrogel and inherent temperature response of NFN-based Mach-Zehnder interferometer enable the sensor to perform dual parameter measurements for pH and temperature. The dual-parameter matrices are established and validation experiments are carried out. It is demonstrated that the pH and temperature measurement errors can be as low as 0.088 and 1.112°C respectively. This sensor is expected to have broad prospects in environmental monitoring, chemical analysis, and other related fields.
期刊介绍:
Contributions are invited on novel achievements in all fields of measurement and instrumentation science and technology. Authors are encouraged to submit novel material, whose ultimate goal is an advancement in the state of the art of: measurement and metrology fundamentals, sensors, measurement instruments, measurement and estimation techniques, measurement data processing and fusion algorithms, evaluation procedures and methodologies for plants and industrial processes, performance analysis of systems, processes and algorithms, mathematical models for measurement-oriented purposes, distributed measurement systems in a connected world.