光电化学农业检测传感器研究进展:光电信号放大机理与传感机理的探讨

IF 2.9 Q1 AGRICULTURE, MULTIDISCIPLINARY
Zhenhua Zhi, Yanfang He* and Dawei Cao*, 
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引用次数: 0

摘要

光电化学(PEC)传感器以其高灵敏度、快速响应和低成本在农业检测中显示出巨大的潜力。虽然在优化光电极结构和设计用于农业检测的高效光活性材料方面已经进行了大量的研究,但在光电化学(PEC)传感器中,对光能转换与目标识别之间的机制相互作用仍然缺乏系统的讨论。本文综述了PEC农业传感器的最新进展,重点介绍了三个核心设计原理:(1)增强光吸收(掺杂、纳米结构);(2)优化电荷输运(表面等离子体共振效应、量子点敏化、二维材料/金属有机框架(mof));(3)开发特定识别元件。PEC传感器通过光电极将光能转化为电信号,并整合特定的识别元件(如酶、抗体、适体或分子印迹聚合物)来实现目标检测。此外,本文还总结了PEC传感器在农业检测中的典型应用场景(如土壤成分分析、农药残留检测、抗生素和真菌毒素监测),并对未来的发展进行了展望。这些进展为智慧农业的精准监测提供了重要的理论参考和技术支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Recent Progress on Photoelectrochemical Agricultural Detection Sensors: Elucidating the Optoelectronic Signal Amplification Mechanism and the Sensing Mechanism

Recent Progress on Photoelectrochemical Agricultural Detection Sensors: Elucidating the Optoelectronic Signal Amplification Mechanism and the Sensing Mechanism

Photoelectrochemical (PEC) sensors have demonstrated significant potential in agricultural detection due to their high sensitivity, rapid response, and low cost. While significant research efforts have been dedicated to optimizing photoelectrode architectures and designing efficient photoactive materials for agricultural detection, there remains a lack of systematic discussion on the mechanistic interplay between light–energy conversion and target recognition in photoelectrochemical (PEC) sensors. This review comprehensively summarizes recent advances in PEC agricultural sensors, focusing on three core design rationales: (1) enhancing light absorption (doping, nanostructures), (2) optimizing charge transport (surface plasmon resonance effect, quantum dot sensitization, 2D materials/metal–organic frameworks (MOFs)), and (3) developing specific recognition elements. PEC sensors achieve target detection by converting light energy into electrical signals through photoelectrodes and integrating specific recognition elements (e.g., enzymes, antibodies, aptamers, or molecularly imprinted polymers). Furthermore, the article summarizes typical application scenarios of PEC sensors in agricultural detection (e.g., soil component analysis, pesticide residue detection, and antibiotic and mycotoxin monitoring) and provides insights into future developments. These advancements offer crucial theoretical references and technical support for precision monitoring in smart agriculture.

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