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Magnetic nanomaterials in catalysis: advanced catalysts for magnetic separation and beyond

机译:磁性纳米材料在催化中的应用:用于磁性分离的先进催化剂

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摘要

While magnetic separation techniques have long been in use, intensive research into superparamagnetic nanomaterials has accelerated the development of magnetically recoverable catalysts. Preparation techniques are currently undergoing rapid development and magnetic separation has been studied to facilitate the handling and recovery of enzyme, organo-, metal complex-, and nanoparticle-catalysts. In this article, we emphasize the preparation of support materials, because the choice of the correct support and the immobilization strategy are of primary importance in the development of high-quality magnetically recoverable catalysts. We summarize the representative methods for the synthesis of well-defined uncoated and coated magnetic nanomaterials. Recent scientific progress on the preparation of surface-modified magnetic nanomaterials and the most common synthetic approaches to attach or immobilize non-magnetic catalytic active phases onto magnetic nanomaterials were discussed. Moreover, better control and understanding of the magnetic properties is now an essential tool not only in selecting the best preparation route for recoverable catalysts, but also for designing reactors (e.g., magnetic fluidized-bed reactors) and for developing magnetic field-driven technologies (e.g., changes in the catalytic output operating under an applied magnetic field).
机译:尽管磁分离技术已长期使用,但对超顺磁性纳米材料的深入研究加速了可磁回收催化剂的开发。制备技术目前正在快速发展,并且已经研究了磁分离以促进酶,有机催化剂,金属络合物催化剂和纳米颗粒催化剂的处理和回收。在本文中,我们强调载体材料的制备,因为正确载体的选择和固定化策略对开发高质量的可磁回收催化剂至关重要。我们总结了合成的定义明确的未涂层和涂层磁性纳米材料的代表性方法。讨论了表面改性磁性纳米材料制备的最新科学进展以及将非磁性催化活性相附着或固定到磁性纳米材料上的最常用合成方法。而且,现在,更好地控制和了解磁性能不仅是为可回收催化剂选择最佳制备途径的重要工具,而且对于设计反应器(例如,磁性流化床反应器)和开发磁场驱动的技术(例如,在外加磁场下运行的催化输出的变化)。

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