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用于活性调控FeO介质的磁场辅助表面工程技术,以实现具有可见条纹图案的邻苯二酚漆酶电化学生物传感。

Magnetic field-assisted surface engineering technology for active regulation of FeO medium to enable the laccase electrochemical biosensing of catechol with visible stripe patterns.

作者信息

Wang Feng, Zhang Jie, Xu Ling, Ma Anzhou, Zhuang Guoqiang, Huo Shuhao, Zou Bin, Qian Jingya, Cui Yi, Zhang Wen

机构信息

School of Food and Biological Engineering, Jiangsu University, Zhenjiang, 212013, PR China; Institute of Agricultural Products Processing Engineering, Jiangsu University, Zhenjiang, 212013, PR China.

School of Food and Biological Engineering, Jiangsu University, Zhenjiang, 212013, PR China.

出版信息

Anal Chim Acta. 2024 Jul 4;1311:342739. doi: 10.1016/j.aca.2024.342739. Epub 2024 May 18.

Abstract

BACKGROUND

Catechol (CC), a prevalent phenolic compound, is a byproduct in various agricultural, chemical, and industrial processes. CC detection is crucial for safeguarding water quality and plays a pivotal role in enhancing the overall quality of life of individuals. Electrochemical biosensors exhibit rapid responses, have small sizes, and can be used for real-time monitoring. Therefore, the development of a fast and sensitive electrochemical biosensor for CC detection is crucial.

RESULT

In this study, a laccase-based electrochemical biosensor for detection of CC is successfully developed using FeO nanoparticles as medium and optimized by applying a magnetic field. This research proposes a unique strategy for biosensor enhancement by actively controlling the distribution of magnetic materials on the electrode surface through the application of a magnetic field, resulting in a visibly alternating stripe pattern. This approach effectively disperses magnetic particles, preventing their aggregation and reducing the boundary layer thickness, enhancing the electrochemical response of the biosensor. After fabrication condition optimization, CC is successfully detected using this biosensor. The fabricated sensor exhibits excellent performance with a wide linear detection range of 10-1000 μM, a low detection limit of 1.25 μM, and a sensitivity of 7.9 μA/mM. The fabricated sensor exhibits good selectivity and reliable detection in real water samples. In addition, the laccase-based sensor has the potential for the fast and accurate monitoring of CC in olive oil.

SIGNIFICANCE

The magnetic field optimization in this study significantly improved the performance of the electrochemical biosensor for detecting CC in environmental samples. Overall, the sensor developed in this study has the potential for fast and accurate monitoring of CC in environmental samples, highlighting the potential importance of a magnetic field environment in improving the performance of catechol electrochemical biosensors.

摘要

背景

儿茶酚(CC)是一种普遍存在的酚类化合物,是各种农业、化学和工业过程中的副产物。CC检测对于保障水质至关重要,并且在提高个人整体生活质量方面发挥着关键作用。电化学生物传感器具有响应迅速、体积小且可用于实时监测的特点。因此,开发一种用于CC检测的快速灵敏的电化学生物传感器至关重要。

结果

在本研究中,以FeO纳米颗粒为介质成功开发了一种用于检测CC的基于漆酶的电化学生物传感器,并通过施加磁场进行优化。本研究提出了一种独特的生物传感器增强策略,即通过施加磁场主动控制磁性材料在电极表面的分布,从而产生明显的交替条纹图案。这种方法有效地分散了磁性颗粒,防止其聚集并减小了边界层厚度,增强了生物传感器的电化学响应。经过制造条件优化后,使用该生物传感器成功检测到了CC。所制备的传感器表现出优异的性能,线性检测范围宽达10 - 1000 μM,检测限低至1.25 μM,灵敏度为7.9 μA/mM。所制备的传感器在实际水样中表现出良好的选择性和可靠的检测能力。此外,基于漆酶的传感器具有快速准确监测橄榄油中CC的潜力。

意义

本研究中的磁场优化显著提高了用于检测环境样品中CC的电化学生物传感器的性能。总体而言,本研究开发的传感器具有快速准确监测环境样品中CC的潜力,突出了磁场环境在提高儿茶酚电化学生物传感器性能方面的潜在重要性。

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