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Gitrate-capped superparamagnetic iron oxide (Fe3O4-CA) nanocatalyst for synthesis of pyrimidine derivative compound as antioxidative agent

机译:用于合成嘧啶衍生物化合物作为抗氧化剂的乙酸盐 - 盖超顺磁性氧化铁(Fe3O4-CA)纳米催化剂

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The development of a recyclable catalyst based on magnetic nanoparticles has attracted an increasing interest as the emerging application in the heterogeneous catalyst field. Superparamagnetic iron oxide nanoparticle with citric acid as capping agent was successfully obtained from iron (III) chloride solution via two steps synthesis. The first step involving the formation of magnetite nanoparticle by bioreduction using Sargassum Sp, then its surface was modified by adding citric acid solution in the second step. The structural, surface morphology and magnetic properties of the nanocatalyst were investigated by various instrumentations such as scanning electron microscope with energy dispersive (SEM-EDS), and particle size analyser (PSA). Fe3O4-CA was then applied as reusable catalyst for Knoevenagel condensation of barbituric acid and cinnamaldehyde to produce (E)-5-(3-phenylallylidene)pyrimidine-2,4,6(lH,3H,5H)-trione. The optimum condition of this reaction was achieved by using 7.5% mole of catalyst at 50°C for 6 h to give 83% yield. Some spectroscopy techniques such as UV-Vis, FTIR, LC-MS and 'H-NMR were used to confirm the product's structure. Furthermore, the synthesized compound has an attractive antioxidant activity based on the in-vitro analysis using DPPH method.
机译:基于磁性纳米颗粒的可回收催化剂的开发引起了随着非均相催化剂领域的新兴应用而增加的兴趣。通过两步合成从铁(III)氯化物溶液成功地获得柠檬酸的超顺磁性氧化铁纳米粒子。涉及使用Sargassum SP通过生物植物形成磁铁矿纳米粒子的第一步,然后通过在第二步中加入柠檬酸溶液来改变其表面。通过各种仪器研究纳米催化剂的结构,表面形态和磁性,例如扫描电子显微镜,具有能量分散(SEMEDS)和粒度分析仪(PSA)。然后的Fe3O4-CA如对巴比妥酸和肉桂醛的Knoevenagel缩合以产生(E)-5-(3- phenylallylidene)嘧啶-2,4,6(LH,3H,5H) - 三酮可重复使用的催化剂施加。通过在50℃下使用7.5%摩尔催化剂来实现该反应的最佳条件6小时,得到83%的产率。一些光谱技术,例如UV-Vis,FTIR,LC-MS和'H-NMR用于确认产品的结构。此外,合成化合物基于使用DPPH方法的体外分析具有吸引性的抗氧化活性。

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