A capillary-aided microfiber Bragg grating pH sensor for hydrovoltaic technology

超细纤维 光纤布拉格光栅 化学 毛细管作用 检出限 水溶液 光纤 光纤传感器 光学 光电子学 分析化学(期刊) 材料科学 色谱法 物理 有机化学 复合材料 物理化学
作者
Yongkang Zhang,Heyi Xia,Qiaochu Yang,Zhiyuan Xu,Ruikang K. Wang,Ziyu Yuan,Zesen Li,Shifang Cao,Bai‐Ou Guan,Ling Qiu,Yang Ran
出处
期刊:Talanta [Elsevier]
卷期号:274: 125958-125958 被引量:1
标识
DOI:10.1016/j.talanta.2024.125958
摘要

Hydrovoltaic is an emerging technology that aims to harvest energy from water flow and evaporation, in which the plasmonic hydrogen ions are generated by the interaction between water and hydrovoltaic device. However, the volume of the water sample for the interaction is usually ultra-small due to the compact size of hydrovoltaic device, making the quantification and characterization of the hydrogen ions in such water sample an elusive goal. To address this issue, a miniature fiber-optic pH probe is proposed using a unilaterally tapered-microfiber Bragg grating. The microfiber Bragg grating has an intrinsic Bragg reflection signal with a narrow linewidth. The fiber probe is functionalized by coating the sodium alginate, which can respond to the variation of pH mediated by the alteration of the hydrophilicity. The rigidity and robustness of microfiber Bragg grating facilitates the encapsulation of the sensor into a sampling capillary, allowing for the detection of trace aqueous sample less than 2 μL. The pH sensitivity of the tapered-μFBG-based sensor is 62.8 p.m./pH (R2 = 0.995) with a limit resolution of 0.096 pH. The sensor performed a practical application in the monitoring and characterization of the hydrovoltaic microdevice, which can generate microcurrent as soaked in the water. This work demonstrates a promising technology in the fields of materials, energy, biology and medicine, in which the detection of the microsamples is inevitable.
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