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Selective Alkyne Hydrogenation over Nano-metal Systems: Closing the Gap between Model and Real Catalysts for Industrial Applications

机译:纳米金属系统上的选择性炔烃加氢:缩小工业应用模型催化剂与实际催化剂之间的差距

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摘要

The relationship between catalytic response and properties of the active phase is difficult to establish in classical heterogeneous catalysis due to the number of variables that can affect catalytic performance. Ultrahigh-vacuum surface methods applied to model catalyst surfaces are useful tools to assess fundamental issues related to catalytic processes but they are limited by the significant differences with catalysts in the working state. In an attempt to overcome this issue, (unsupported) nano-metal systems with controlled size and shape have been synthesized and tested in selective alkyne hydrogenation. The results revealed a dependency of nano-particles (NPs) morphology (size and shape) and allowed the identification of the active sites for this type of reaction. The nature of the stabilizer (steric and electrostatic stabilization) used in the NPs preparation has been shown to influence catalytic performance. The tailored active phase was subsequently immobilized on suitable nano- and m/cro-structured inorganic (e.g. 3D sintered metal fibers) supports with controlled surface properties in order to corroborate if the results obtained on the optimized nano-metal systems could be extrapolated to real catalysts. This article highlights the advantages and limitations of the analysis of selective alkyne hydrogenation over nano-metal systems that close the gap between model and real catalysts where the main challenges that lie ahead are summarized.
机译:在经典的多相催化中,由于可能影响催化性能的变量数量众多,因此很难建立催化反应与活性相性质之间的关系。应用于模型催化剂表面的超高真空表面方法是评估与催化过程相关的基本问题的有用工具,但它们受到工作状态下催化剂差异的限制。为了克服这个问题,已经合成了尺寸和形状受控的(无支撑的)纳米金属系统,并在选择性炔烃加氢中进行了测试。结果揭示了纳米颗粒(NPs)形态(大小和形状)的依赖性,并允许鉴定此类反应的活性位点。已证明在NPs制备中使用的稳定剂(空间和静电稳定剂)的性质会影响催化性能。随后将定制的活性相固定在具有受控表面特性的合适的纳米和m / cro结构无机(例如3D烧结金属纤维)载体上,以证实是否可以将在优化的纳米金属系统上获得的结果外推至真实值。催化剂。本文着重介绍了选择性炔烃加氢分析相对于纳米金属系统的优势和局限性,这种优势和局限性缩小了模型催化剂与实际催化剂之间的差距,在这些催化剂中总结了未来面临的主要挑战。

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