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How to Control the Selectivity of Palladium-based Catalysts in Hydrogenation Reactions: The Role of Subsurface Chemistry

机译:如何控制钯基催化剂在加氢反应中的选择性:地下化学的作用

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摘要

Discussed are the recent experimental and theoretical results on palladium-based catalysts for selective hydrogenation of alkynes obtained by a number of collaborating groups in a joint multi-method and multi-material approach. The critical modification of catalytically active Pd surfaces by incorporation of foreign species X into the sub-surface of Pd metal was observed by in situ spectroscopy for X=H, C under hydrogenation conditions. Under certain conditions (low H2 partial pressure) alkyne fragmentation leads to formation of a PdC surface phase in the reactant gas feed. The insertion of C as a modifier species in the sub-surface increases considerably the selectivity of alkyne semi-hydrogenation over Pd-based catalysts through the decoupling of bulk hydrogen from the outmost active surface layer. DFT calculations confirm that PdC hinders the diffusion of hydridic hydrogen. Its formation is dependent on the chemical potential of carbon (reactant partial pressure) and is suppressed when the hydrogen/alkyne pressure ratio is high, which leads to rather unselective hydrogenation over in situ formed bulk PdH. The beneficial effect of the modifier species X on the selectivity, however, is also present in intermetallic compounds with X=Ga. As a great advantage, such PdxGay catalysts show extended stability under in situ conditions. Metallurgical, clean samples were used to determine the intrinsic catalytic properties of PdGa and Pd3Ga7. For high performance catalysts, supported nanostructured intermetallic compounds are more preferable and partial reduction of Ga2O3, upon heating of Pd/Ga2O3 in hydrogen, was shown to lead to formation of PdGa intermetallic compounds at moderate temperatures. In this way, Pd5Ga2 and Pd2Ga are accessible in the form of supported nanoparticles, in thin film models, and realistic powder samples, respectively.
机译:讨论是关于一种用于在联合多方法和多材料的方法由多个协作基团而获得炔烃选择性氢化的钯基催化剂的最近的实验和理论结果。催化活性的Pd的临界修改通过掺入外来物种X的成Pd金属次表面被观察到原位光谱对于X = H,C氢化条件下面。在某些条件下(低的H 2分压)炔碎裂导致反应物气体进料在形成PDC表面相。 C的插入作为在副面增大通过批量氢从最外层表面活性层中的去耦炔半氢化过基于Pd的催化剂的显着的选择性改性剂物种。 DFT计算确认PDC阻碍氢负离子的氢的扩散。其形成依赖于碳(反应体分压)的化学势,并且当氢气/炔压力比高时,被抑制从而导致相当非选择性氢化,在原位形成的散装PDH。对选择性改性剂物种X的有益效果,但是,也存在于与X =镓金属间化合物。作为一个很大的优势,例如PdxGay催化剂下显示在现场条件下延长稳定。冶金,清洁样品用于确定的PdGa和Pd3Ga7的固有催化性能。对于高性能催化剂,负载型纳米结构的金属间化合物是更优选的和部分还原的Ga2O3,当在氢的Pd / Ga2O3的加热中,示出在中等温度下,以导致形成的PdGa金属间化合物。以这种方式,Pd5Ga2和Pd2Ga是在支持纳米颗粒,在薄膜的模型,和现实的粉末样品的形式访问,分别。

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