A surface plasmon resonance haemoglobin concentration sensor based on D-type optical fibre with a graphene-gold surface architecture

IF 2.3 4区 计算机科学 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC
Zhen-Jiang Shi, Shi-Liang Guo, Xin Li, Wen-Chao Li, Zhi-Quan Li
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Abstract

In this study, a surface plasmon resonance sensor for detecting haemoglobin concentration based on a D-type optical fibre with a graphene-gold surface architecture is proposed. The graphene-gold surface architecture included a 50 nm thick gold film and monolayer graphene film, which were decorated on a 10 mm long D-type sensing region. The proposed sensor worked in wavelength interrogation mode, with the light wavelength ranging from 400 to 1100 nm. The authors realised the D-type optical fibre surface polishing process, the gold film vacuum coating process, and the chemical-vapour-deposited graphene's wet transfer process. Furthermore, the fabricated sensors were used to detect the refractive index (RI) of haemoglobin samples, which varied from 1.331 to 1.346. Experiment results show that the fitted RI sensitivity of the sensor decorated with gold and graphene reaches 1874.41 nm/RIU, 4.995% higher than that of the sensor decorated only with gold. The concentration sensitivity of the sensor coated with gold and graphene film is 4.96 nm/(g/dL), and the proposed sensor can provide a resolution of 20.2 mg/dL for haemoglobin concentration detection.

Abstract Image

基于石墨烯-金表面结构的D型光纤的表面等离子体共振血红蛋白浓度传感器
在这项研究中,提出了一种基于石墨烯-金表面结构的d型光纤的表面等离子体共振传感器,用于检测血红蛋白浓度。石墨烯-金表面结构包括50 nm厚的金膜和单层石墨烯膜,它们被装饰在10 mm长的d型传感区域上。该传感器工作在波长询问模式下,波长范围为400 ~ 1100nm。作者实现了d型光纤表面抛光工艺、金膜真空镀膜工艺和化学气相沉积石墨烯湿转移工艺。此外,所制备的传感器用于检测血红蛋白样品的折射率(RI),其变化范围为1.331 ~ 1.346。实验结果表明,金与石墨烯修饰传感器的拟合RI灵敏度达到1874.41 nm/RIU,比纯金修饰传感器的拟合RI灵敏度提高4.995%。该传感器的浓度灵敏度为4.96 nm/(g/dL),可提供20.2 mg/dL的血红蛋白浓度检测分辨率。
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来源期刊
Iet Optoelectronics
Iet Optoelectronics 工程技术-电信学
CiteScore
4.50
自引率
0.00%
发文量
26
审稿时长
6 months
期刊介绍: IET Optoelectronics publishes state of the art research papers in the field of optoelectronics and photonics. The topics that are covered by the journal include optical and optoelectronic materials, nanophotonics, metamaterials and photonic crystals, light sources (e.g. LEDs, lasers and devices for lighting), optical modulation and multiplexing, optical fibres, cables and connectors, optical amplifiers, photodetectors and optical receivers, photonic integrated circuits, photonic systems, optical signal processing and holography and displays. Most of the papers published describe original research from universities and industrial and government laboratories. However correspondence suggesting review papers and tutorials is welcomed, as are suggestions for special issues. IET Optoelectronics covers but is not limited to the following topics: Optical and optoelectronic materials Light sources, including LEDs, lasers and devices for lighting Optical modulation and multiplexing Optical fibres, cables and connectors Optical amplifiers Photodetectors and optical receivers Photonic integrated circuits Nanophotonics and photonic crystals Optical signal processing Holography Displays
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