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中国精品科技期刊2020
李善瑞,赵璐玲,严文静,等. 低温等离子体对黄曲霉毒素B1的降解效能[J]. 食品工业科技,2023,44(4):271−277. doi: 10.13386/j.issn1002-0306.2022050309.
引用本文: 李善瑞,赵璐玲,严文静,等. 低温等离子体对黄曲霉毒素B1的降解效能[J]. 食品工业科技,2023,44(4):271−277. doi: 10.13386/j.issn1002-0306.2022050309.
LI Shanrui, ZHAO Luling, YAN Wenjing, et al. Degradation Efficiency of Aflatoxin B1 by Cold Plasma[J]. Science and Technology of Food Industry, 2023, 44(4): 271−277. (in Chinese with English abstract). doi: 10.13386/j.issn1002-0306.2022050309.
Citation: LI Shanrui, ZHAO Luling, YAN Wenjing, et al. Degradation Efficiency of Aflatoxin B1 by Cold Plasma[J]. Science and Technology of Food Industry, 2023, 44(4): 271−277. (in Chinese with English abstract). doi: 10.13386/j.issn1002-0306.2022050309.

低温等离子体对黄曲霉毒素B1的降解效能

Degradation Efficiency of Aflatoxin B1 by Cold Plasma

  • 摘要: 目的:确定低温等离子体降解黄曲霉毒素B1(Aflatoxin B1,AFB1)最佳工艺条件,并探究其在农产品中应用的可行性。方法:选取低温等离子体不同激发条件(峰值电压、工作频率、作用时间),研究其对溶液中AFB1的降解效果。通过Center Composite Design(CCD)法进行响应面试验,获取最优降解组合及各因素交互作用机制,并考察此条件下玉米中AFB1降解效果。结果:当AFB1浓度为1000 μg/L时,其降解率随峰值电压及作用时间(除90~120 s)的增加,工作频率的下降而极显著升高(P<0.01)。响应面优化后最佳工艺条件为峰值电压160 kV、工作频率50 Hz、作用时间165 s,此时AFB1降解率为99.62%。此外,将优化后的降解条件在受AFB1污染的玉米(23.18±0.06 μg/kg)中进行应用,发现180 s处理时间下,其降解率可达39.29%。结论:通过CCD法确定了低温等离子体技术降解AFB1最优工艺,证实了其在玉米中的降解效果。表明低温等离子体技术在降低谷物黄曲霉毒素污染方面具有巨大潜力。

     

    Abstract: Objective: To determine the optimal process conditions for the degradation of aflatoxin B1 (AFB1) by cold plasma and explore the feasibility of its application in agricultural products, this study was performed. Methods: Different excitation conditions (peak voltage, working frequency and treatment time) of cold plasma were selected to investigate the degradation effect of AFB1 in solution. The optimal degradation combination and the interaction mechanism of various factors were obtained by center composite design (CCD) response surface test, under these conditions, the degradation effect of AFB1 in corn was investigated. Results: When the concentration of AFB1 was 1000 μg/L, the degradation rate increased significantly (P<0.01) with the increasing of peak voltage, treatment time (except for 90 to 120 s), and the decrease of working frequency. After response surface optimization, the degradation rate of AFB1 was 99.62% under the optimum degradation conditions of peak voltage 160 kV, working frequency 50 Hz, and treatment time 165 s. In addition, the optimized conditions were used for corn (23.18±0.06 μg/kg) contaminated by AFB1, the degradation rate reached 39.29% at 180 s. Conclusion: The optimal degradation process of AFB1 by cold plasma technology was determined by the CCD method, and its degradation effect in corn was confirmed. The results indicated that cold plasma technology had enormous potential to reduce aflatoxin contamination in cereals.

     

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