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磁性纳米粒子包被漆酶纳米花:用于孔雀石绿降解的酶活性和可重复使用性评价。

Magnetic nanoparticles encapsulated laccase nanoflowers: evaluation of enzymatic activity and reusability for degradation of malachite green.

机构信息

Department of Pharmaceutical Engineering, School of Chemical Engineering and Technology, Tianjin University, Key Laboratory of Systems Bioengineering (Ministry of Education), Tianjin 300072, China E-mail:

出版信息

Water Sci Technol. 2020 Jan;81(1):29-39. doi: 10.2166/wst.2020.068.

Abstract

Magnetic laccase nanoflowers (MNFs-Lac) were successfully prepared through encapsulating FeO magnetic nanoparticles into the interior of laccase nanoflowers by grafting N-(phosphonomethyl)iminodiacetic acid (PMIDA) as an interconnecting bridge between the magnetic nanoparticles and copper ions. The characterizations by scanning electron microscopy and transmission electron microscopy showed that MNFs-Lac were spherical, porous and flower-like crystals with diameters of ∼10 μm, and FeO nanoparticles were encapsulated in the interior of MNFs-Lac evenly. The enzymatic activity and reusability of MNFs-Lac were evaluated based on the degradation efficiency for malachite green (MG). The degradation parameters, concerning initial MG concentration, dosage of MNFs-Lac, reaction temperature, pH value and reaction time, were optimized through single-factor experiments. Under the optimal conditions, 25 mg·L MG can be degraded almost completely by 1.5 g·L MNFs-Lac within 15 min. When the MNFs-Lac were reused for 18 times, the degradation efficiency of MG was still as high as 90%. These results suggested that the modified preparation method improved greatly the reusability of MNFs-Lac, which made them more suitable to degrade MG in a water environment.

摘要

磁性漆酶纳米花(MNFs-Lac)通过将 FeO 磁性纳米粒子接枝到 N-(膦酸甲基)亚氨基二乙酸(PMIDA)作为磁性纳米粒子和铜离子之间的连接桥内,成功地封装到漆酶纳米花的内部而制备。扫描电子显微镜和透射电子显微镜的表征表明,MNFs-Lac 是具有约 10μm 直径的球形、多孔和花状晶体,FeO 纳米粒子均匀地封装在 MNFs-Lac 的内部。通过孔雀石绿(MG)的降解效率来评估 MNFs-Lac 的酶活性和可重复使用性。通过单因素实验优化了初始 MG 浓度、MNFs-Lac 用量、反应温度、pH 值和反应时间等降解参数。在最佳条件下,1.5 g·L 的 MNFs-Lac 在 15 min 内可将 25 mg·L 的 MG 几乎完全降解。当 MNFs-Lac 重复使用 18 次时,MG 的降解效率仍高达 90%。这些结果表明,改进的制备方法大大提高了 MNFs-Lac 的可重复使用性,使其更适合在水环境中降解 MG。

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