Malta Grazia, Kondrat Simon A, Freakley Simon J, Morgan David J, Gibson Emma K, Wells Peter P, Aramini Matteo, Gianolio Diego, Thompson Paul B J, Johnston Peter, Hutchings Graham J
Cardiff Catalysis Institute, School of Chemistry, Cardiff University Main Building, Park Place Cardiff CF10 3AT UK
Department of Chemistry, Loughborough University Loughborough Leicestershire LE11 3TU UK.
Chem Sci. 2020 Jun 24;11(27):7040-7052. doi: 10.1039/d0sc02152k.
The replacement of HgCl/C with Au/C as a catalyst for acetylene hydrochlorination represents a significant reduction in the environmental impact of this industrial process. Under reaction conditions atomically dispersed cationic Au species are the catalytic active site, representing a large-scale application of heterogeneous single-site catalysts. While the metal nuclearity and oxidation state under operating conditions has been investigated in catalysts prepared from and thiosulphate, limited studies have focused on the ligand environment surrounding the metal centre. We now report K-edge soft X-ray absorption spectroscopy of the Cl and S ligand species used to stabilise these isolated cationic Au centres in the harsh reaction conditions. We demonstrate the presence of three distinct Cl species in the materials; inorganic Cl, Au-Cl, and C-Cl and how these species evolve during reaction. Direct evidence of Au-S interactions is confirmed in catalysts prepared using thiosulfate precursors which show high stability towards reduction to inactive metal nanoparticles. This stability was clear during gas switching experiments, where exposure to CH alone did not dramatically alter the Au electronic structure and consequently did not deactivate the thiosulfate catalyst.
用Au/C替代HgCl/C作为乙炔氢氯化反应的催化剂,可显著降低该工业过程对环境的影响。在反应条件下,原子分散的阳离子金物种是催化活性位点,这代表了多相单中心催化剂的大规模应用。虽然已经对由[具体物质]和硫代硫酸盐制备的催化剂在操作条件下的金属核数和氧化态进行了研究,但对金属中心周围配体环境的研究有限。我们现在报告用于在苛刻反应条件下稳定这些孤立阳离子金中心的Cl和S配体物种的K边软X射线吸收光谱。我们证明了材料中存在三种不同的Cl物种:无机Cl、Au-Cl和C-Cl,以及这些物种在反应过程中的演变。在使用硫代硫酸盐前驱体制备的催化剂中证实了Au-S相互作用的直接证据,这些催化剂对还原为无活性的金属纳米颗粒具有高稳定性。在气体切换实验中,这种稳定性很明显,单独暴露于CH时,不会显著改变金的电子结构,因此不会使硫代硫酸盐催化剂失活。