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利用低温等离子体技术降解养殖水中微囊藻毒素的性能和机制。

Degradation performance and mechanism of microcystins in aquaculture water using low-temperature plasma technology.

机构信息

Fishery Machinery and Instrument Research Institute of Chinese Academy of Fishery Sciences, 63 Chifeng Road, Shanghai, 200092, China; Key Laboratory of Aquaculture Facilities Engineering, Ministry of Agriculture and Rural Affairs, 63 Chifeng Road, Shanghai, 200092, China.

Fishery Machinery and Instrument Research Institute of Chinese Academy of Fishery Sciences, 63 Chifeng Road, Shanghai, 200092, China; Key Laboratory of Aquaculture Facilities Engineering, Ministry of Agriculture and Rural Affairs, 63 Chifeng Road, Shanghai, 200092, China.

出版信息

Environ Pollut. 2024 Apr 15;347:123744. doi: 10.1016/j.envpol.2024.123744. Epub 2024 Mar 8.

Abstract

The eutrophication of aquaculture water bodies seriously restricts the healthy development of the aquaculture industry. Among them, microcystins are particularly harmful. Therefore, the development of technologies for degrading microcystins is of great significance for maintaining the healthy development of the aquaculture industry. The feasibility and mechanism of removing microcystins-LR by dielectric barrier discharge (DBD) plasma were studied. DBD discharge power of 49.6 W and a treatment time of 40 min were selected as the more suitable DBD parameters, resulting in microcystin-LR removal efficiency of 90.4%. Meanwhile, the effects of initial microcystin-LR concentration, initial pH value, turbidity, anions on the degradation effect of microcystin-LR were investigated. The removal efficiency of microcystin-LR decreased with the increase of initial microcystin-LR concentration and turbidity. The degradation efficiency of microcystin-LR at pH 4.5 and 6.5 is significantly higher than that at pH 8.5 and 3.5. HCO can inhibit the removal efficiency of microcystin-LR. Furthermore, five intermediates products (m/z = 1029.5, 835.3, 829.3, 815.4, 642.1) were identified in this study, and the toxicity analysis of these degradation intermediates indicated that DBD treatment can reduce the toxicity of microcystin-LR. e-aq, •OH, HO, and O have been shown to play a major role in the degradation of microcystin-LR, and the contribution ranking of these active species is e-aq > •OH > HO > O. The application of DBD plasma technology in microcystin-LR removal and detoxification has certain development potential.

摘要

养殖水体的富营养化严重制约了水产养殖业的健康发展。其中,微囊藻毒素的危害尤其严重。因此,开发降解微囊藻毒素的技术对于维持水产养殖业的健康发展具有重要意义。本文研究了介质阻挡放电(DBD)等离子体去除微囊藻毒素-LR 的可行性和机理。选择 49.6 W 的 DBD 放电功率和 40 min 的处理时间作为更合适的 DBD 参数,得到微囊藻毒素-LR 的去除率为 90.4%。同时,考察了初始微囊藻毒素-LR 浓度、初始 pH 值、浊度、阴离子对微囊藻毒素-LR 降解效果的影响。随着初始微囊藻毒素-LR 浓度和浊度的增加,微囊藻毒素-LR 的去除效率降低。在 pH 4.5 和 6.5 时,微囊藻毒素-LR 的降解效率显著高于在 pH 8.5 和 3.5 时的降解效率。HCO 可以抑制微囊藻毒素-LR 的去除效率。此外,在本研究中鉴定了五个中间产物(m/z=1029.5、835.3、829.3、815.4、642.1),并对这些降解中间产物的毒性分析表明,DBD 处理可以降低微囊藻毒素-LR 的毒性。e-aq、•OH、HO 和 O 被证明在微囊藻毒素-LR 的降解中起主要作用,这些活性物质的贡献排名为 e-aq>•OH>HO>O。DBD 等离子体技术在微囊藻毒素-LR 去除和解毒中的应用具有一定的发展潜力。

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