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用于电流测量的琼脂基光学传感器。

Agar-based optical sensors for electric current measurements.

作者信息

Fujiwara Eric, Rosa Lidia O, Oku Hiromasa, Cordeiro Cristiano M B

机构信息

School of Mechanical Engineering, University of Campinas, Campinas, 13083-860, Brazil.

Faculty of Informatics, Gunma University, Kiryu, 376-8518, Japan.

出版信息

Sci Rep. 2023 Aug 19;13(1):13517. doi: 10.1038/s41598-023-40749-7.

Abstract

Biodegradable optical waveguides are breakthrough technologies to light delivery and sensing in biomedical and environmental applications. Agar emerges as an edible, soft, low-cost, and renewable alternative to traditional biopolymers, presenting remarkable optical and mechanical characteristics. Previous works introduced agar-made optical fibers for chemical measurements based on their inherent response to humidity and surrounding concentration. Therefore, we propose, for the first time, an all-optical, biodegradable electric current sensor. As flowing charges heat the agar matrix and modulate its refractive index, we connect the optical device to a DC voltage source using pin headers and excite the agar sample with coherent light to project spatiotemporally deviating speckle fields. Experiments proceeded with spheres and no-core fibers comprising 2 wt% agar/water. Once the increasing current stimulates the speckles' motion, we acquire such images with a camera and evaluate their correlation coefficients, yielding exponential decay-like functions whose time constants provide the input amperage. Furthermore, the light granules follow the polarization of the applied voltage drop, providing visual information about the current direction. The results indicate a maximum resolution of [Formula: see text]0.4 [Formula: see text]A for electrical stimuli [Formula: see text] 100 [Formula: see text]A, which fulfills the requirements for bioelectrical signal assessment.

摘要

可生物降解光波导是生物医学和环境应用中光传输与传感的突破性技术。琼脂作为一种可食用、柔软、低成本且可再生的材料,可替代传统生物聚合物,具有卓越的光学和机械特性。此前的研究基于琼脂对湿度和周围浓度的固有响应,介绍了用于化学测量的琼脂制成的光纤。因此,我们首次提出了一种全光学、可生物降解的电流传感器。由于流动的电荷会使琼脂基质升温并调制其折射率,我们使用插脚将光学器件连接到直流电压源,并使用相干光激发琼脂样品,以投射时空偏离的散斑场。实验使用了含2 wt%琼脂/水的球体和无芯光纤。一旦不断增加的电流刺激散斑运动,我们就用相机获取此类图像并评估其相关系数,得到类似指数衰减的函数,其时间常数可提供输入电流值。此外,光颗粒会跟随施加电压降的极化方向,提供有关电流方向的视觉信息。结果表明,对于100 μA以下的电刺激,最大分辨率为0.4 μA,满足生物电信号评估的要求。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a8b0/10439927/e3cb4f4c036f/41598_2023_40749_Fig1_HTML.jpg

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