Kang Gyeongwon, Hu Shu, Guo Chenyang, Arul Rakesh, Sibug-Torres Sarah M, Baumberg Jeremy J
Department of Physics, Cavendish Laboratory, Nanophotonics Centre, University of Cambridge, Cambridge, CB3 0HE, UK.
Department of Chemistry, Kangwon National University, Chuncheon, 24341, South Korea.
Nat Commun. 2024 Oct 25;15(1):9220. doi: 10.1038/s41467-024-53544-3.
Plasmonic nanostructures can both drive and interrogate light-driven catalytic reactions. Sensitive detection of reaction pathways is achieved by confining optical fields near the active surface. However, effective control of the reaction kinetics remains a challenge to utilize nanostructure constructs as efficient chemical reactors. Here we present a nanoreactor construct exhibiting high catalytic and optical efficiencies, based on a nanoparticle-on-mirror (NPoM) platform. We observe and track pathways of the Pd-catalysed C-C coupling reaction of molecules within a set of nanogaps presenting different chemical surfaces. Atomic monolayer coatings of Pd on the different Au facets enable tuning of the reaction kinetics of surface-bound molecules. Systematic analysis shows the catalytic efficiency of NPoM-based nanoreactors greatly improves on platforms based on aggregated nanoparticles. More importantly, we show Pd monolayers on the nanoparticle or on the mirror play significantly different roles in the surface reaction kinetics. Our data provides clear evidence for catalytic dependencies on molecular configuration in well-defined nanostructures. Such nanoreactor constructs therefore yield clearer design rules for plasmonic catalysis.
等离子体纳米结构既能驱动又能探测光驱动的催化反应。通过将光场限制在活性表面附近,可以实现对反应路径的灵敏检测。然而,有效控制反应动力学仍然是利用纳米结构构建体作为高效化学反应器的一个挑战。在此,我们展示了一种基于镜上纳米粒子(NPoM)平台的具有高催化和光学效率的纳米反应器构建体。我们观察并追踪了一组具有不同化学表面的纳米间隙内分子的钯催化碳 - 碳偶联反应路径。在不同金晶面上的钯原子单层涂层能够调节表面结合分子的反应动力学。系统分析表明,基于NPoM的纳米反应器的催化效率在基于聚集纳米粒子的平台上有很大提高。更重要的是,我们表明纳米粒子或镜上的钯单层在表面反应动力学中发挥着显著不同的作用。我们的数据为明确的纳米结构中催化对分子构型的依赖性提供了清晰的证据。因此,这种纳米反应器构建体为等离子体催化产生了更清晰的设计规则。