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中国精品科技期刊2020
胡维,张筠,蒋栋磊,等. 基于电化学粮油安全检测技术进展J. 食品工业科技,2026,47(4):1−12. doi: 10.13386/j.issn1002-0306.2025040139.
引用本文: 胡维,张筠,蒋栋磊,等. 基于电化学粮油安全检测技术进展J. 食品工业科技,2026,47(4):1−12. doi: 10.13386/j.issn1002-0306.2025040139.
HU Wei, ZHANG Yun, JIANG Donglei, et al. Developments in Electrochemical Sensing Technologies for Grain and Oil Safety DetectionJ. Science and Technology of Food Industry, 2026, 47(4): 1−12. (in Chinese with English abstract). doi: 10.13386/j.issn1002-0306.2025040139.
Citation: HU Wei, ZHANG Yun, JIANG Donglei, et al. Developments in Electrochemical Sensing Technologies for Grain and Oil Safety DetectionJ. Science and Technology of Food Industry, 2026, 47(4): 1−12. (in Chinese with English abstract). doi: 10.13386/j.issn1002-0306.2025040139.

基于电化学粮油安全检测技术进展

Developments in Electrochemical Sensing Technologies for Grain and Oil Safety Detection

  • 摘要: 粮油中存在的霉菌毒素、重金属离子及农药残留等污染物对公共健康构成潜在威胁,迫切需要构建高效、灵敏的检测体系以保障粮油安全。本文系统综述了电化学传感技术在粮油污染物分析中的研究进展,讨论了其在霉菌毒素、重金属离子和农药残留检测中的应用路径,重点介绍了离子印迹聚合物、生物识别分子与纳米材料修饰电极在传感界面构建中的集成策略。针对复杂粮油基质中的检测难题,分析了构型优化、信号放大机制与识别选择性等关键技术突破,展示了电化学传感技术在实际应用中的潜力。本文还探讨了当前面临的挑战,包括复杂样品基质带来的干扰、传感器的长期稳定性和重复使用能力不足,以及成本限制问题。未来研究可聚焦于提升抗干扰能力、增强稳定性与可靠性,并在保证性能的前提下推动传感器的低成本设计,以促进电化学传感技术在粮油安全领域的实用化应用。

     

    Abstract: Mycotoxins, heavy metal ions, and pesticide residues present in grain and oil products pose potential threats to public health, highlighting the urgent need for the development of efficient and sensitive detection systems to ensure food safety. In this review, recent advances in electrochemical detection techniques for analyzing such contaminants in grain and oil matrices are systematically summarized. The application pathways for electrochemical sensing of mycotoxins, heavy metals, and pesticide residues are discussed, with particular emphasis placed on the integrated strategies involving ion-imprinted polymers, biomolecular recognition elements, and nanomaterial-modified electrodes for constructing functional sensing interfaces. Key technical breakthroughs in sensor configuration optimization, signal amplification mechanisms, and selective recognition are analyzed in the context of overcoming challenges posed by complex grain and oil matrices. Furthermore, current limitations—including sample matrix interferences, insufficient long-term stability, limited reusability, and high cost—are also discussed. Future research directions may focus on enhancing anti-interference capability, improving stability and reliability, and developing cost-effective sensor designs, to promote the practical application of electrochemical sensing technologies in grain and oil safety monitoring.

     

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