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Engineering preformed cobalt-doped platinum nanocatalysts for ultraselective hydrogenation

机译:工程预制的钴掺杂铂纳米催化剂用于超选择性加氢

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摘要

Bimetallic heterostructures are used as industrial catalysts for many important transformations. However, conventional catalysts are primarily prepared in cost-effective manners without much appreciation in metal size control and metal-metal interaction. By employing recent nanotechnology, Pt nanocrystals with tailored sizes can be decorated with Co atoms in a controlled manner in colloid solution as preformed nanocatalysts before they are applied on support materials. Thus, we show that the terminal C=0 hydrogenation can be achieved in high activity, while the undesirable hydrogenation of the C=C group can be totally suppressed in the selective hydrogenation of α,β- unsaturated aldehydes to unsaturated alcohols, when Co decorated Pt nanocrystals within a critical size range are used. This is achieved through blockage of unselective low coordination sites and the optimization in electronic influence of the Pt nanoparticle of appropriate size by the Co decoration. This work clearly demonstrates the advantage in engineering preformed nanoparticles via a bottom-up construction and illustrates that this route of catalyst design may lead to improved catalytic processes.
机译:双金属异质结构被用作许多重要转变的工业催化剂。然而,常规催化剂主要以成本有效的方式制备,而没有对金属尺寸控制和金属-金属相互作用进行太多了解。通过采用最新的纳米技术,可以将具有定制尺寸的Pt纳米晶体以胶体溶液的受控方式用Co原子修饰为预先形成的纳米催化剂,然后将其应用于载体材料上。因此,我们表明当Co修饰时,在高活性下可以实现末端C = 0的氢化,而在将α,β-不饱和醛选择性氢化成不饱和醇时,可以完全抑制C = C基团的不希望的氢化。使用临界尺寸范围内的Pt纳米晶体。这是通过阻止非选择性低配位位点和通过Co装饰优化适当大小的Pt纳米粒子的电子影响来实现的。这项工作清楚地证明了通过自下而上的结构工程化预制的纳米颗粒的优势,并说明了这种催化剂设计方法可能会改善催化过程。

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