首页> 外文期刊>Research on Chemical Intermediates >Fe3O4@Silica sulfuric acid core-shell composite as a novel nanomagnetic solid acid: synthesis, characterization and application as an efficient and reusable catalyst for one-pot synthesis of 3,4-dihydropyrimidinones/thiones under solvent-free conditions
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Fe3O4@Silica sulfuric acid core-shell composite as a novel nanomagnetic solid acid: synthesis, characterization and application as an efficient and reusable catalyst for one-pot synthesis of 3,4-dihydropyrimidinones/thiones under solvent-free conditions

机译:Fe3O4 @硅硫酸核-壳复合物作为新型纳米磁性固体酸:无溶剂条件下一锅合成3,4-二氢嘧啶酮/硫酮的高效,可重复使用的催化剂的合成,表征和应用

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摘要

A simple and convenient method was used to prepare Fe3O4@Silica sulfuric acid core-shell composite using Fe3O4 spheres as the core and silica sulfuric acid nanoparticles as the shell. Magnetite nanoparticles were synthesized by the co-precipitation of FeCl2 and FeCl3 in ammonia solution. To improve the chemical stability of magnetite nanoparticles, its surface engineering was successfully performed by the suitable deposition of silica onto nano-particles' surface by the ammonia-catalyzed hydrolysis of tetraethoxysilane. Next, the SiO2 spheres served as a support for the immobilization of SO3H groups by simple mixing of the core-shell composite and chlorosulfonic acid in CH2Cl2. The resulting solid acid nanoparticles were characterized by infrared spectroscopy, scanning electron microscope, thermogravimetric analysis, and vibrating sample magnetometer. The catalytic activity of this solid acid nanocomposite was probed through one-pot synthesis of 3,4-dihydropyrimidinones via three-component couplings of aldehydes, beta-diketone, and urea or thiourea under solvent-free conditions. In this reaction, Fe3O4@Silica sulfuric acid shows a highly catalytic nature, easy to handle procedure, short reaction time, recycle exploitation, and excellent isolated yields. The nanomagnetic catalyst could be readily separated from the solution via application of an external magnet, allowing straightforward recovery and reuse.
机译:采用一种简单方便的方法,以Fe3O4球为核,以二氧化硅硫酸盐纳米粒子为壳,制备了Fe3O4 @二氧化硅硫酸核-壳复合材料。通过在氨溶液中共沉淀FeCl2和FeCl3合成磁铁矿纳米颗粒。为了改善磁铁矿纳米粒子的化学稳定性,通过氨催化四乙氧基硅烷水解将二氧化硅适当沉积到纳米粒子的表面上,成功地完成了其表面工程设计。接下来,SiO2球通过将核壳复合物和氯磺酸简单地混合在CH2Cl2中作为固定SO3H基团的载体。通过红外光谱,扫描电子显微镜,热重分析和振动样品磁力计对所得的固体酸纳米颗粒进行表征。在无溶剂条件下,通过醛,β-二酮,尿素或硫脲的三组分偶合,通过一锅合成3,4-二氢嘧啶酮来探测这种固体酸纳米复合材料的催化活性。在此反应中,Fe3O4 @ Silica硫酸显示出高催化性能,易于操作,反应时间短,可循环利用并具有优异的分离产率。纳米磁性催化剂可以通过施加外部磁体而容易地与溶液分离,从而可以直接回收和再利用。

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