食品科学 ›› 2024, Vol. 45 ›› Issue (2): 283-289.doi: 10.7506/spkx1002-6630-20230407-065

• 安全检测 • 上一篇    下一篇

表面增强拉曼光谱法同时检测果汁中的啶虫脒和福美双

马立鑫,吴玮,许骞,尹丽梅,韩恩,白竣文,蔡健荣   

  1. (1.江苏大学食品与生物工程学院,江苏 镇江 212013;2.江苏大学农业工程学院,江苏 镇江 212013)
  • 出版日期:2024-01-25 发布日期:2024-02-05
  • 基金资助:
    国家自然科学基金面上项目(51975259);财政部和农业农村部:国家现代农业产业技术体系资助项目(CARS-26)

Simultaneous Detection of Acetamiprid and Thiram in Juice by Surface-Enhanced Raman Spectroscopy

MA Lixin, WU Wei, XU Qian, YIN Limei, HAN En, BAI Junwen, CAI Jianrong   

  1. (1. School of Food and Biological Engineering, Jiangsu University, Zhenjiang 212013, China; 2. School of Agricultural Engineering, Jiangsu University, Zhenjiang 212013, China)
  • Online:2024-01-25 Published:2024-02-05

摘要: 目的:基于优化的金银合金纳米颗粒基底的表面增强拉曼光谱(surface-enhanced Raman spectroscopy,SERS)同时检测果汁中啶虫脒和福美双。方法:对不同质量浓度的啶虫脒和福美双标准溶液及其混合物采集拉曼光谱并进行峰位归属分析,选择苹果汁作为代表果汁样本,对不同质量浓度梯度的混合农药残留进行检测分析,利用两种农药的拉曼特征峰强度与农药残留质量浓度分别建立校正曲线。最后通过回收率实验评估此方法的准确性和精密度。结果:631 cm-1处的拉曼特征峰作为啶虫脒的识别峰,1 380 cm-1处的拉曼峰作为福美双的识别峰,同时检测苹果汁中混合农药残留,得到啶虫脒和福美双的检测限分别为0.422 31 mg/L和0.035 56 mg/L,均低于国家规定的苹果中啶虫脒(0.8 mg/L)和福美双(5 mg/L)的农药残留限量。回收率实验显示苹果汁中福美双和啶虫脒的平均回收率分别为81.67%~101.25%和98.70%~119.36%,相对标准偏差范围分别为2.72%~7.68%和5.44%~15.15%。结论:利用SERS技术的峰尖锐、峰宽窄的特点,结合金银合金纳米颗粒基底可实现果汁中啶虫脒和福美双的同时定量检测。此方法可以进一步应用于其他多种污染物的现场同时快速检测。

关键词: 表面增强拉曼光谱;啶虫脒;福美双;同时检测;果汁

Abstract: Objective: To simultaneously detect acetamiprid and thiram in juice by surface-enhanced Raman spectroscopy (SERS) based on optimized Au-Ag alloy nanoparticles as substrate. Methods: Raman spectra of acetamiprid and thiram standard solutions and their mixtures at different concentrations were collected, and the Raman peaks were assigned. Apple juice was selected as a representative sample to detect and analyze mixed pesticide residues at different concentration gradients. Calibration curves between the Raman characteristic peak intensities and the concentrations of the two pesticides were established. Finally, the accuracy and precision of the method were evaluated by recovery experiments. Results: Acetamiprid was identified based on its Raman characteristic peak at 631 cm-1, and thiram based on its Raman characteristic peak at 1 380 cm-1. The limits of detection (LOD) of acetamiprid and thiram in apple juice were 0.422 31 and 0.035 56 mg/L, respectively, which were lower than the national maximum residue limits (MRL) for acetamiprid (0.8 mg/L) and thiram (5 mg/L) in apples. The average recoveries of acetamiprid and thiram were 81.67%–101.25% and 98.70%–119.36% with relative standard deviations (RSDs) of 2.72­%–7.68% and 5.44%–15.15%, respectively. Conclusion: SERS, characterized by sharp peak and narrow peak width, combined with Au-Ag alloy nanoparticles allows the simultaneous quantitative detection of acetamiprid and thiram in apple juice, and thus can be further applied to the on-site simultaneous detection of a variety of other pollutants.

Key words: surface-enhanced Raman spectroscopy; acetamiprid; thiram; simultaneous detection; juice

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