Kaiser Selina K, Fako Edvin, Surin Ivan, Krumeich Frank, Kondratenko Vita A, Kondratenko Evgenii V, Clark Adam H, López Núria, Pérez-Ramírez Javier
Institute for Chemical and Bioengineering, Department of Chemistry and Applied Biosciences, ETH Zurich, Zurich, Switzerland.
Institute of Chemical Research of Catalonia, The Barcelona Institute of Science and Technology, Tarragona, Spain.
Nat Nanotechnol. 2022 Jun;17(6):606-612. doi: 10.1038/s41565-022-01105-4. Epub 2022 Apr 28.
Controlling the precise atomic architecture of supported metals is central to optimizing their catalytic performance, as recently exemplified for nanostructured platinum and ruthenium systems in acetylene hydrochlorination, a key process for vinyl chloride production. This opens the possibility of building on historically established activity correlations. In this study, we derived quantitative activity, selectivity and stability descriptors that account for the metal-dependent speciation and host effects observed in acetylene hydrochlorination. To achieve this, we generated a platform of Au, Pt, Ru, Ir, Rh and Pd single atoms and nanoparticles supported on different types of carbon and assessed their evolution during synthesis and under the relevant reaction conditions. Combining kinetic, transient and chemisorption analyses with modelling, we identified the acetylene adsorption energy as a speciation-sensitive activity descriptor, further determining catalyst selectivity with respect to coke formation. The stability of the different nanostructures is governed by the interplay between single atom-support interactions and chlorine affinity, promoting metal redispersion or agglomeration, respectively.
控制负载型金属的精确原子结构对于优化其催化性能至关重要,最近在乙炔氢氯化反应中纳米结构铂和钌体系的情况就证明了这一点,乙炔氢氯化反应是氯乙烯生产的关键过程。这为基于历史建立的活性相关性提供了可能性。在本研究中,我们推导了定量的活性、选择性和稳定性描述符,这些描述符考虑了在乙炔氢氯化反应中观察到的与金属相关的物种形成和载体效应。为了实现这一点,我们生成了一个由负载在不同类型碳上的金、铂、钌、铱、铑和钯单原子及纳米颗粒组成的平台,并评估了它们在合成过程中和相关反应条件下的演变。将动力学、瞬态和化学吸附分析与建模相结合,我们确定乙炔吸附能是一种对物种形成敏感的活性描述符,进一步确定了催化剂对焦炭形成的选择性。不同纳米结构的稳定性由单原子 - 载体相互作用和氯亲和力之间的相互作用决定,分别促进金属的再分散或团聚。