Design, fabrication, and characterization of a polymer-based waveguide Bragg grating for blood glucose monitoring

Author:

Li Hongqiang1ORCID,Cao Mengwei1,Cao Lu2,Zhao Ruina1ORCID,Song Zhenya1,Meng Wentao1,Liu Yang3,Ren Feng4,Zhang Shanshan15,Chen Liying1,Zhang Lizhen1,Bai Jinjun1ORCID,Lin Zhilin1,Zhu Zhiyue1,Wang Yingjie1,Li Enbang6ORCID,Prades Joan Daniel7

Affiliation:

1. Tianjin Key Laboratory of Optoelectronic Detection Technology and Systems, School of Electronic and Information Engineering, Tiangong University 1 , Tianjin 300387, China

2. Chest Hospital, Tianjin University 2 , Tianjin 300050, China

3. Tianjin Wavecreating Micro Intelligent Technology Co., Ltd. 3 , Tianjin 300457, China

4. Wearable IC Intelligent Technology (Tianjin) Co., Ltd. 4 , Tianjin 300171, China

5. Tianjin Key Laboratory of Optoelectronic Sensor and Sensing Network Technology, Institute of Modern Optics, Nankai University 5 , Tianjin 300071, China

6. Center for Medical Radiation Physics, University of Wollongong 6 , Wollongong NSW 2522, Australia

7. Department of Electronic and Biomedical Engineering, University of Barcelona 7 , Barcelona E-08028, Spain

Abstract

A waveguide Bragg grating (WBG) can facilitate an adaptable method for glucose monitoring according to the optical properties of polymer materials. We propose the design and fabrication of a WBG for glucose monitoring. By exploiting glucose oxidase as the upper cladding, polydimethylsiloxane was used as the substrate, and polymethyl methacrylate was used as the core layer. We investigated the effects of the diffraction order, waveguide structure, and grating period on the reflected spectrum of the WBG. Finally, process reproducibility after long-term storage and the capability to eliminate background solution interference (to achieve more specific glucose detection) were evaluated. The experimental results showed that when the glucose concentration was in the range of [0, 3.6] mg/ml, as the glucose concentration increased, the wavelength decreased approximately linearly, with a sensitivity of approximately 242.9 pm/(mg/ml) in the range of 0–2.7 mg/ml, while maintaining good selectivity and stability. The WBG for glucose monitoring has the advantages of a large measurement range and high sensitivity. This approach facilitates the application potential of such polymer material-based WBG photonic sensors in wearable technology and realizes the measurement of human blood glucose.

Funder

National Natural Science Foundation of China

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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