首页> 外文期刊>Fuel >Grafting copolymerization of dual acidic ionic liquid on core-shell structured magnetic silica: A magnetically recyclable Bronsted acid catalyst for biodiesel production by one-pot transformation of low-quality oils
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Grafting copolymerization of dual acidic ionic liquid on core-shell structured magnetic silica: A magnetically recyclable Bronsted acid catalyst for biodiesel production by one-pot transformation of low-quality oils

机译:双酸性离子液体在芯壳结构磁性二氧化硅上的接枝共聚:通过低质量油的一锅转化产生磁性可回收的抗核酸催化剂。

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The objective of the current research is to prepare an efficient and magnetically separable Bronsted acid catalyst for one-pot transformation of low-quality oils to biodiesel. In this premise, the core shell structured magnetic composites were firstly prepared by coating of silica shells on magnetic Fe3O4 nanoparticles. Thereafter, the grafting copolymerization of dual acidic ionic liquids (ILs, 1 vinyl 3 (3 sulfopropyl)imidazolium hydrogen sulfate as an monomer and 1.4-butanediy1-3,3'-bis-l-vinylimidazoliu hydrogen sulfate as a cross-linker agent) on the magnetic silica composite was conducted to impart the richer Bronsted acidic functionality on the support. The detailed catalyst characterization results showed that the magnetic silica support was really formed, and moreover the polymeric acidic ILs were successfully grafted on the magnetic support. The so-prepared solid catalyst had a large surface acidity (3.93 meq H+/g) and strong magnetism (27.5 emu/g). Benefiting from the synergism between the polymeric ILs and magnetic porous support, this developed catalyst displayed good catalytic activities toward both the transesterification of soybean oil and esterification of free fatty acids (FFAs), which endowed it to be a robust solid acid catalyst for one-pot biodiesel production from low-quality acidic oils. The solid catalyst could be simply recovered by an external magnet with minor loss of catalytic activity within five cycles, and further showed insensitivities to moisture and FFAs present in the feedstocks, possessing both feconomic and environmental advantages for the application in biodiesel production especially from the low-quality oils.
机译:目前研究的目的是制备一种高效且磁性可分离的耐磨酸催化剂,用于对生物柴油的低质量油转化。在这种前提下,首先通过在磁Fe3O4纳米颗粒上涂覆二氧化硅壳来制备芯壳结构磁性复合材料。此后,双酸性离子液体(ILS,1乙烯基3(3磺基)咪唑硫酸铵作为单体和1.4-丁二烯1-3,3'-Bis-L-乙烯基咪唑硫酸盐作为交联剂的双酸性离子液体(ILS,1乙烯基)硫酸盐的共聚共聚。在磁性二氧化硅复合材料上进行,以赋予载体上的更丰富的抗饱和酸性官能团。详细的催化剂表征结果表明,磁性二氧化硅载体真正形成,此外,在磁性载体上成功地接枝了聚合物酸性IL。所制备的固体催化剂具有大的表面酸度(3.93meq H + / g)和强磁性(27.5 emu / g)。受益于聚合物ILS和磁多孔载体之间的协同作用,这种发育催化剂朝向豆油和游离脂肪酸(FFA)的酯化酯化的酯交换术语显示出良好的催化活性,这赋予其一个稳健的固体酸催化剂锅生物柴油生产低质量的酸性油。固体催化剂可以通过外部磁铁简单地回收,在五个循环中具有少量催化活性的催化活性,并且进一步显示出对原料中存在的水分和FFA的内部内部有敏感性,具有尤其是从低电平的生物柴油生产中的应用施用和环境优势。 - 质量油。

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