1.湖北大学 材料科学与工程学院/功能材料绿色制备与应用教育部重点实验室,湖北 武汉 430062
2.天津工业大学 化学学院/分离膜和膜过程国家重点实验室,天津 300387
许子强,刘义.男,博士,副教授,现从事面向生物医学分析的碳量子点的构建。E-mail:ziqiang.xu@hubu.edu.cn
E-mail:yiliuchem@whu.edu.cn
收稿:2021-11-02,
纸质出版:2022-04-24
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许子强,刘义.用于残留农药检测的碳量子点荧光探针研究进展[J].武汉大学学报(理学版),2022,68(2):113-122.
XU Ziqiang,LIU Yi.Research Progress of Carbon Quantum Dots Fluorescent Probes for the Detection of Pesticide Residues [J].J Wuhan Univ (Nat Sci Ed),2022,68(2):113-122. DOI:10.14188/j.1671-8836.2021.0304(Ch).
许子强,刘义.用于残留农药检测的碳量子点荧光探针研究进展[J].武汉大学学报(理学版),2022,68(2):113-122. DOI:10.14188/j.1671-8836.2021.0304
XU Ziqiang,LIU Yi.Research Progress of Carbon Quantum Dots Fluorescent Probes for the Detection of Pesticide Residues [J].J Wuhan Univ (Nat Sci Ed),2022,68(2):113-122. DOI:10.14188/j.1671-8836.2021.0304(Ch). DOI:
农药的广泛使用促进了粮食作物产量的显著增加,但农药的滥用又导致了严重的环境污染。因此,农业产品中残留农药的实时、快速检测对于全球食物及环境安全有重要意义。碳量子点具有优异的荧光性能、可调的发射波长、优异的生物相容性以及显著的光稳定性,可用于构建残留农药检测的荧光探针。本文简要阐明了碳量子点荧光探针用于农药检测的技术优势,系统分析了基于金属离子、纳米颗粒、酶以及抗体的碳量子点荧光探针构建策略,并对其在残留农药检测中的应用进行了总结和展望。本文将有助于科研工作者合理设计性能更优的碳量子点荧光探针用于残留农药检测。
The widespread application of chemical pesticides has promoted the significant increase of grain crop yield
while its abuse has resulted in serious environmental pollution. Herein
the real-time and rapid detection of pesticide residues in agricultural products is of great significance for global food and environmental safety. Carbon quantum dots possess excellent fluorescence properties
adjustable emission wavelength
excellent biocompatibility and significant optical stability
which can be used to construct fluorescent probes for the detection of residual pesticides. This review briefly expounds the advantages of carbon quantum dots based fluorescent probe for pesticide detection
systematically analyzes the construction strategies of carbon quantum dots based fluorescent probe for residual pesticide detection via metal ions
nanoparticles
various enzymes and various antibodies
and its application in residual pesticide detection has been summarized and prospected. The conclusion of this paper will favor for researchers to reasonably design more excellent carbon quantum dots based fluorescent probes for residual pesticide detection.
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