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单铂纳米颗粒上一氧化碳氧化反应的原位等离子体纳米光谱学

In Situ Plasmonic Nanospectroscopy of the CO Oxidation Reaction over Single Pt Nanoparticles.

作者信息

Liu Su, Arce Arturo Susarrey, Nilsson Sara, Albinsson David, Hellberg Lars, Alekseeva Svetlana, Langhammer Christoph

机构信息

Department of Physics , Chalmers University of Technology , 412 96 Göteborg , Sweden.

出版信息

ACS Nano. 2019 May 28;13(5):6090-6100. doi: 10.1021/acsnano.9b02876. Epub 2019 May 17.

Abstract

The ongoing quest to develop single-particle methods for the in situ study of heterogeneous catalysts is driven by the fact that heterogeneity in terms of size, shape, grain structure, and composition is a general feature among nanoparticles in an ensemble. This heterogeneity hampers the generation of a deeper understanding for how these parameters affect catalytic properties. Here we present a solution that in a single benchtop experimental setup combines single-particle plasmonic nanospectroscopy with mass spectrometry for gas phase catalysis under reaction conditions at high temperature. We measure changes in the surface state of polycrystalline platinum model catalyst particles in the 70 nm size range and the corresponding bistable kinetics during the carbon monoxide oxidation reaction via the peak shift of the dark-field scattering spectrum of a closely adjacent plasmonic nanoantenna sensor and compare these changes with the total reaction rate measured by the mass spectrometer from an ensemble of nominally identical particles. We find that the reaction kinetics of simultaneously measured individual Pt model catalysts are dictated by the grain structure and that the superposition of the individual nanoparticle response can account for the significant broadening observed in the corresponding nanoparticle ensemble data. In a wider perspective our work enables in situ plasmonic nanospectroscopy in controlled gas environments at high temperature to investigate the role of the surface state on transition metal catalysts during reaction and of processes such as alloying or surface segregation in situ at the single-nanoparticle level for model catalysts in the few tens to hundreds of nanometer size range.

摘要

开发用于非均相催化剂原位研究的单粒子方法的持续探索,是由以下事实驱动的:在尺寸、形状、晶粒结构和组成方面的非均质性是整体中纳米颗粒的普遍特征。这种非均质性阻碍了人们对这些参数如何影响催化性能产生更深入的理解。在此,我们提出一种解决方案,即在单个台式实验装置中,将单粒子等离子体纳米光谱与质谱联用,用于高温反应条件下的气相催化。我们通过紧邻的等离子体纳米天线传感器的暗场散射光谱的峰移,测量了尺寸在70纳米范围内的多晶铂模型催化剂颗粒的表面状态变化以及一氧化碳氧化反应过程中相应的双稳态动力学,并将这些变化与质谱仪从一组名义上相同的颗粒中测得的总反应速率进行比较。我们发现,同时测量的单个铂模型催化剂的反应动力学由晶粒结构决定,并且单个纳米颗粒响应的叠加可以解释在相应纳米颗粒整体数据中观察到的显著展宽。从更广泛的角度来看,我们的工作使得在高温可控气体环境中进行原位等离子体纳米光谱研究成为可能,以研究表面状态在反应过程中对过渡金属催化剂的作用,以及在几十到几百纳米尺寸范围内的模型催化剂在单纳米颗粒水平上的合金化或表面偏析等过程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bfe0/6566494/b02cb403ecf6/nn-2019-02876u_0001.jpg

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