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功能化磁性纳米粒子:合成、表征、催化应用及毒性评估。

Functionalized magnetic nanoparticles: Synthesis, characterization, catalytic application and assessment of toxicity.

机构信息

Alexandru Ioan Cuza University of Iasi, Interdisciplinary Research Department - Field Science, Lascar Catargi Str. 54, 700107, Iasi, Romania.

Bundesanstalt für Materialforschung und -prüfung (BAM), Unter den Eichen 87, 12205, Berlin, Germany.

出版信息

Sci Rep. 2018 Apr 19;8(1):6278. doi: 10.1038/s41598-018-24721-4.

Abstract

Cost-effective water cleaning approaches using improved treatment technologies, for instance based on catalytic processes with high activity catalysts, are urgently needed. The aim of our study was to synthesize efficient Fenton-like photo-catalysts for rapid degradation of persistent organic micropollutants in aqueous medium. Iron-based nanomaterials were chemically synthesized through simple procedures by immobilization of either iron(II) oxalate (FeO) or iron(III) citrate (FeC) on magnetite (M) nanoparticles stabilized with polyethylene glycol (PEG). Various investigation techniques were performed in order to characterize the freshly prepared catalysts. By applying advanced oxidation processes, the effect of catalyst dosage, hydrogen peroxide concentration and UV-A light exposure were examined for Bisphenol A (BPA) conversion, at laboratory scale, in mild conditions. The obtained results revealed that BPA degradation was rapidly enhanced in the presence of low-concentration HO, as well as under UV-A light, and is highly dependent on the surface characteristics of the catalyst. Complete photo-degradation of BPA was achieved over the M/PEG/FeO catalyst in less than 15 minutes. Based on the catalytic performance, a hierarchy of the tested catalysts was established: M/PEG/FeO > M/PEG/FeC > M/PEG. The results of cytotoxicity assay using MCF-7 cells indicated that the aqueous samples after treatment are less cytotoxic.

摘要

需要采用改进的处理技术来实现具有成本效益的水清洁方法,例如基于高活性催化剂的催化工艺。我们研究的目的是合成高效的类芬顿光催化剂,用于快速降解水介质中的持久性有机微污染物。通过简单的程序,通过将草酸亚铁(FeO)或柠檬酸铁(FeC)固定在由聚乙二醇(PEG)稳定的磁铁矿(M)纳米颗粒上,化学合成铁基纳米材料。为了对新制备的催化剂进行表征,进行了各种研究技术。通过应用高级氧化工艺,在实验室规模、温和条件下,研究了催化剂用量、过氧化氢浓度和 UV-A 光照射对双酚 A(BPA)转化的影响。结果表明,在低浓度 HO 和 UV-A 光的存在下,BPA 的降解迅速增强,并且高度依赖于催化剂的表面特性。在不到 15 分钟的时间内,M/PEG/FeO 催化剂即可实现 BPA 的完全光降解。根据催化性能,建立了测试催化剂的层次结构:M/PEG/FeO>M/PEG/FeC>M/PEG。使用 MCF-7 细胞进行的细胞毒性测定结果表明,处理后的水样的细胞毒性较低。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/56be/5908962/2c5019a35f86/41598_2018_24721_Fig1_HTML.jpg

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