在电解反应过程中通过光纤对质子浓度的微观观察:电介质探针微电流监测的潜力

IF 23.4 Q1 OPTICS
Yunyun Huang, Jiaxuan Liang, Haotian Wu, Pengwei Chen, Aoxiang Xiao, Bai-Ou Guan
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引用次数: 0

摘要

局部微电流监测对生物系统和电池系统具有重要意义,但也面临着巨大的挑战。目前的测量技术依赖于电磁材料,这不可避免地会给被测系统带来干扰。为了解决这一问题,提出了一种基于介电光纤传感器的有前途的方法。该微光纤能够通过监测质子浓度的局域信号来检测微电流,pH分辨率为0.0052 pH单位。该传感机制通过倏逝场感知局部质子浓度变化与氧化剂处理过的超细光纤表面相互作用引起的传感器周围折射率变化,有效避免了电磁材料对被测系统性能的干扰。该传感器对微电流的检测限为1 μA。传感区域为直径为8.8 μm的超细光纤。它可以获得通过常规电化学方法无法获得的宝贵信息。示例包括光照期间光产生的载流子材料中的光电流衰减、神经细胞中的电激活以及电池放电期间电能产生效率的波动。该方法为阐明微尺度反应机理提供了电化学方法的有力补充。所制备的介电光纤传感器所提供的信息将进一步揭示质子动力学、电化学和电生物学机理,这可能填补当前生物电和电池监测方法的重要空白。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Microscale insight into the proton concentration during electrolytic reaction via an optical microfiber: potential for microcurrent monitoring by a dielectric probe

Microscale insight into the proton concentration during electrolytic reaction via an optical microfiber: potential for microcurrent monitoring by a dielectric probe

Local microcurrent monitoring is of great significance for biological and battery systems, yet it poses a formidable challenge. The current measurement techniques rely on electromagnetic materials which inevitably introduce interference to the system under examination. To address this issue, a promising approach based on a dielectric fiber-optic sensor is demonstrated. The microfiber is capable of detecting microcurrent through monitoring the localized proton concentration signal with a pH resolution of 0.0052 pH units. By sensing the refractive index variation surrounding the sensor induced by the interaction between local proton concentration changes and oxidizer-treated microfiber surface through the evanescent field, this sensing mechanism effectively avoids the interference of the electromagnetic material on the performance of the tested system. This sensor exhibits a limit of detection for microcurrent of 1 μA. The sensing region is a microfiber with a diameter of 8.8 μm. It can get invaluable information that cannot be obtained through conventional electrochemical methods. Examples include photocurrent attenuation in photogenerated carrier materials during illumination, electrical activation in nerve cells, and fluctuations in the efficiency of electrical energy generation during battery discharge. This approach provides a powerful complement to electrochemical methods for the elucidation of microscale reaction mechanisms. The information provided by the prepared dielectric fiber-optic sensor will shed more light on proton kinetics and electrochemical and electrobiological mechanisms, which may fill an important gap in the current bioelectricity and battery monitoring methods.

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来源期刊
Light-Science & Applications
Light-Science & Applications 数理科学, 物理学I, 光学, 凝聚态物性 II :电子结构、电学、磁学和光学性质, 无机非金属材料, 无机非金属类光电信息与功能材料, 工程与材料, 信息科学, 光学和光电子学, 光学和光电子材料, 非线性光学与量子光学
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