Zhang Xuejun, Wu Ze, Liu Fu, Fu Qiangqiang, Chen Xiaoyong, Xu Jian, Zhang Zhaochuan, Huang Yunyun, Tang Yong, Guo Tuan, Albert Jacques
Guangdong Provincial Key Laboratory of Optical Fiber Sensing and Communications, Institute of Photonics Technology, Jinan University, Guangzhou 510632, China.
Guangdong Province Key Laboratory of Molecular Immunology and Antibody Engineering, Department of Bioengineering, Jinan University, Guangzhou 510632, China.
Biomed Opt Express. 2018 Mar 15;9(4):1735-1744. doi: 10.1364/BOE.9.001735. eCollection 2018 Apr 1.
We propose and demonstrate hydrogen peroxide (HO) and glucose concentration measurements using a plasmonic optical fiber sensor. The sensor utilizes a tilted fiber Bragg grating (TFBG) written in standard single mode communication fiber. The fiber is over coated with an nm-scale film of silver that supports surface plasmon resonances (SPRs). Such a tilted grating SPR structure provides a high density of narrow spectral resonances (Q-factor about 10) that overlap with the broader absorption band of the surface plasmon waves in the silver film, thereby providing an accurate tool to measure small shifts of the plasmon resonance frequencies. The HO to be detected acts as an oxidant to etch the silver film, which has the effect of gradually decreasing the SPR attenuation. The etching rate of the silver film shows a clear relationship with the HO concentration so that monitoring the progressively increasing attenuation of a selected surface plasmon resonance over a few minutes enables us to measure the HO concentration with a limit of detection of 0.2 μM. Furthermore, the proposed method can be applied to the determination of glucose in human serum for a concentration range from 0 to 12 mM (within the physiological range of 3-8 mM) by monitoring the HO produced by an enzymatic oxidation process. The sensor does not require accurate temperature control because of the inherent temperature insensitivity of TFBG devices referenced to the core mode resonance. A gold mirror coated on the fiber allows the sensor to work in reflection, which will facilitate the integration of the sensor with a hypodermic needle for measurements. The present study shows that Ag-coated TFBG-SPR can be applied as a promising type of sensing probe for optical detection of HO and glucose detection in human serum.
我们提出并演示了使用等离子体光纤传感器测量过氧化氢(HO)和葡萄糖浓度。该传感器利用写入标准单模通信光纤的倾斜光纤布拉格光栅(TFBG)。光纤表面包覆有一层支持表面等离子体共振(SPR)的纳米级银膜。这种倾斜光栅SPR结构提供了高密度的窄光谱共振(品质因数约为10),与银膜中表面等离子体波的较宽吸收带重叠,从而提供了一种精确的工具来测量等离子体共振频率的微小变化。待检测的HO作为氧化剂蚀刻银膜,这会使SPR衰减逐渐降低。银膜的蚀刻速率与HO浓度呈现明显的关系,因此在几分钟内监测选定表面等离子体共振的逐渐增加的衰减,我们就能测量HO浓度,检测限为0.2 μM。此外,通过监测酶促氧化过程产生的HO,所提出的方法可应用于测定人血清中葡萄糖的浓度范围为0至12 mM(在生理范围3 - 8 mM内)。由于TFBG器件相对于纤芯模式共振具有固有的温度不敏感性,该传感器不需要精确的温度控制。涂覆在光纤上的金镜使传感器能够在反射模式下工作,这将便于传感器与皮下注射针集成以进行测量。本研究表明,涂银TFBG - SPR可作为一种有前景的传感探头,用于光学检测人血清中的HO和葡萄糖。