Electron Microscopy for Materials Research (EMAT) , University of Antwerp , Groenenborgerlaan 171 , 2020 Antwerp , Belgium.
DENSsolutions , Informaticalaan 12 , Delft , 2628ZD , The Netherlands.
Nano Lett. 2019 Jan 9;19(1):477-481. doi: 10.1021/acs.nanolett.8b04303. Epub 2018 Dec 14.
Pt nanoparticles play an essential role in a wide variety of catalytic reactions. The activity of the particles strongly depends on their three-dimensional (3D) structure and exposed facets, as well as on the reactive environment. High-resolution electron microscopy has often been used to characterize nanoparticle catalysts but unfortunately most observations so far have been either performed in vacuum and/or using conventional (2D) in situ microscopy. The latter however does not provide direct 3D morphological information. We have implemented a quantitative methodology to measure variations of the 3D atomic structure of nanoparticles under the flow of a selected gas. We were thereby able to quantify refaceting of Pt nanoparticles with atomic resolution during various oxidation-reduction cycles. In a H environment, a more faceted surface morphology of the particles was observed with {100} and {111} planes being dominant. On the other hand, in O the percentage of {100} and {111} facets decreased and a significant increase of higher order facets was found, resulting in a more rounded morphology. This methodology opens up new opportunities toward in situ characterization of catalytic nanoparticles because for the first time it enables one to directly measure 3D morphology variations at the atomic scale in a specific gaseous reaction environment.
Pt 纳米颗粒在各种催化反应中起着至关重要的作用。颗粒的活性强烈依赖于它们的三维(3D)结构和暴露的晶面,以及反应环境。高分辨率电子显微镜常用于表征纳米颗粒催化剂,但不幸的是,迄今为止的大多数观察结果要么是在真空中进行的,要么是使用传统的(2D)原位显微镜进行的。然而,后者并不能提供直接的 3D 形态信息。我们已经实施了一种定量方法来测量在选定气体流动下纳米颗粒的 3D 原子结构的变化。我们能够在各种氧化还原循环中以原子分辨率量化 Pt 纳米颗粒的再结晶。在 H 环境中,观察到颗粒具有更有利的 {100} 和 {111} 面的多面形态,而在 O 中,{100} 和 {111} 面的比例减少,并且发现更高阶晶面显著增加,导致更圆的形态。这种方法为原位催化纳米颗粒的表征开辟了新的机会,因为它首次能够在特定的气体反应环境中直接测量原子尺度上的 3D 形态变化。