Institute of Chemical and Bioengineering, Department of Chemistry and Applied Biosciences, ETH Zurich, Vladimir-Prelog-Weg 1-5, Zurich, 8093, Switzerland.
Institute of Chemical Research of Catalonia (ICIQ), Av. Països Catalans 16, Tarragona, 43007, Spain.
Adv Mater. 2023 Jun;35(26):e2211464. doi: 10.1002/adma.202211464. Epub 2023 May 12.
Copper catalysts are attractive candidates for Hg-free vinyl chloride monomer (VCM) production via acetylene hydrochlorination due to their non-toxic nature and high stability. However, the optimal architecture for Cu-based catalysts at the nanoscale is not yet fully understood. To address this gap, the metal precursor and the annealing temperature are modified to prepare copper nanoparticles or single atoms, either in chlorinated or ligand-free form, on an unmodified carbon support. Evaluation in the reaction reveals a remarkable convergence of the performance of all materials to the stable VCM productivity of the single-atom catalyst. In-depth characterization by advanced microscopy, quasi in situ and operando spectroscopy, and simulations uncover a reaction-induced formation of low-valent, single atom Cu(I)Cl site motif, regardless of the initial nanostructure. Various surface oxygen groups promote nanoparticle redispersion by stabilizing single-atom CuCl species. The anchoring site structure does not strongly influence the acetylene adsorption energy or the crucial role they play in stabilizing key reaction intermediates. A life-cycle assessment demonstrates the potential environmental benefits of copper catalysts over state-of-the-art alternatives. This work contributes to a better understanding of optimal metal speciation and highlights the sustainability of Cu-based catalysts for VCM production.
由于铜催化剂无毒且稳定性高,因此在通过乙炔氯化法生产无汞氯乙烯单体(VCM)方面是很有吸引力的候选催化剂。然而,在纳米尺度上,对于基于铜的催化剂的最佳结构还没有完全理解。为了解决这一差距,我们通过改变金属前驱体和退火温度,在未经修饰的碳载体上制备了氯化或无配体形式的纳米铜颗粒或单原子的铜催化剂。在反应中的评估表明,所有材料的性能都非常接近单原子催化剂的稳定 VCM 生产率。通过先进的显微镜、拟原位和操作光谱以及模拟的深入表征揭示了反应诱导的低价单原子 Cu(I)Cl 位基序的形成,而与初始纳米结构无关。各种表面氧基团通过稳定单原子 CuCl 物种促进纳米颗粒的再分散。锚固位结构不会强烈影响乙炔的吸附能,也不会影响它们在稳定关键反应中间体方面的重要作用。生命周期评估表明,铜催化剂相对于最先进的替代方案具有潜在的环境优势。这项工作有助于更好地理解最佳金属形态,并强调了基于铜的催化剂在 VCM 生产中的可持续性。