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新型FeO/Zn金属有机框架磁性纳米结构作为抗菌剂和磁性纳米催化剂在杂环化合物合成中的应用。

Application of novel FeO/Zn-metal organic framework magnetic nanostructures as an antimicrobial agent and magnetic nanocatalyst in the synthesis of heterocyclic compounds.

作者信息

Bashar Bashar S, Kareem Hawraa A, Hasan Yaser Mohamed, Ahmad Nafis, Alshehri A M, Al-Majdi Kadhum, Hadrawi Salema K, Al Kubaisy Munthir Mohammed Radhy, Qasim Maytham T

机构信息

Department of Computing Technologies Engineering, Al-Nisour University College, Baghdad, Iraq.

Anesthesia Techniques Department, Al-Mustaqbal University College, Babylon, Iraq.

出版信息

Front Chem. 2022 Oct 10;10:1014731. doi: 10.3389/fchem.2022.1014731. eCollection 2022.

Abstract

Using the microwave-assisted method, novel FeO/Zn-metal organic framework magnetic nanostructures were synthesized. The crystallinity, thermal stability, adsorption/desorption isotherms, morphology/size distribution, and magnetic hysteresis of synthesized FeO/Zn-metal organic framework magnetic nanostructures were characterized by XRD patterns, TGA curve, BET adsorption/desorption technique, SEM image, and VSM curve, respectively. After confirming the FeO/Zn-metal organic framework magnetic nanostructures, its antimicrobial properties against Gram-positive bacterial, Gram-negative bacterial, and fungal strains based on minimum inhibitory concentration (MIC), minimum bactericidal concentration (MBC), and minimum fungicidal concentration (MFC) values were studied. The MIC values in antimicrobial activity for Gram-positive and Gram-negative bacterial strains, between 16-128 μg/ml, and for fungal strain, 128 μg/ml were observed. The results showed that the high specific surface area of FeO/Zn-metal organic framework magnetic nanostructures caused the antimicrobial power of nanoparticles to be high, and the observed antimicrobial effects were higher than some known commercial antimicrobial drugs. Another advantage of the specific surface area of FeO/Zn-metal organic framework magnetic nanostructures was its high catalytic properties in the three-component reaction of isatin, malononitrile, and dimedone. New spiro [indoline-pyranopyrimidines] derivatives were synthesized with high efficiency. The catalytic activity results of FeO/Zn-metal organic framework magnetic nanostructures showed that, in addition to recyclability, derivatives could be synthesized in less time than previously reported methods. The results of investigating the catalytic activity of FeO/Zn-metal organic framework magnetic nanostructures showed that the spiro [indoline-pyranopyrimidines] derivatives were synthesized in the time range of 10-20 min with an efficiency of over 85%. As a final result, it can be concluded that the microwave synthesis method improves the unique properties of magnetic nanostructures, especially its specific surface area, and has increased its efficiency.

摘要

采用微波辅助法合成了新型FeO/Zn-金属有机框架磁性纳米结构。通过XRD图谱、TGA曲线、BET吸附/脱附技术、SEM图像和VSM曲线分别对合成的FeO/Zn-金属有机框架磁性纳米结构的结晶度、热稳定性、吸附/脱附等温线、形貌/尺寸分布和磁滞进行了表征。在确认了FeO/Zn-金属有机框架磁性纳米结构后,基于最低抑菌浓度(MIC)、最低杀菌浓度(MBC)和最低杀真菌浓度(MFC)值研究了其对革兰氏阳性菌、革兰氏阴性菌和真菌菌株的抗菌性能。观察到革兰氏阳性菌和革兰氏阴性菌菌株的抗菌活性MIC值在16 - 128μg/ml之间,真菌菌株的MIC值为128μg/ml。结果表明,FeO/Zn-金属有机框架磁性纳米结构的高比表面积导致纳米颗粒的抗菌能力较高,且观察到的抗菌效果高于一些已知的商业抗菌药物。FeO/Zn-金属有机框架磁性纳米结构比表面积的另一个优点是其在异吲哚酮、丙二腈和达米酮的三组分反应中具有高催化性能。高效合成了新的螺[吲哚啉-吡喃并嘧啶]衍生物。FeO/Zn-金属有机框架磁性纳米结构的催化活性结果表明,除了可回收性外,与先前报道的方法相比,衍生物的合成时间更短。研究FeO/Zn-金属有机框架磁性纳米结构催化活性的结果表明,螺[吲哚啉-吡喃并嘧啶]衍生物在10 - 20分钟的时间范围内合成,效率超过85%。最终可以得出结论,微波合成法改善了磁性纳米结构的独特性能,尤其是其比表面积,并提高了其效率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/17fc/9589061/2fbf54a775bb/fchem-10-1014731-g001.jpg

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