School of Materials , University of Manchester , Oxford Road , Manchester M13 9PL , United Kingdom.
Electron Physical Sciences Imaging Centre, Diamond Light Source Ltd. , Oxfordshire OX11 0DE , United Kingdom.
Nano Lett. 2019 Feb 13;19(2):732-738. doi: 10.1021/acs.nanolett.8b03768. Epub 2019 Jan 25.
The properties of nanoparticles are known to critically depend on their local chemistry but characterizing three-dimensional (3D) elemental segregation at the nanometer scale is highly challenging. Scanning transmission electron microscope (STEM) tomographic imaging is one of the few techniques able to measure local chemistry for inorganic nanoparticles but conventional methodologies often fail due to the high electron dose imparted. Here, we demonstrate realization of a new spectroscopic single particle reconstruction approach built on a method developed by structural biologists. We apply this technique to the imaging of PtNi nanocatalysts and find new evidence of a complex inhomogeneous alloying with a Pt-rich core, a Ni-rich hollow octahedral intermediate shell and a Pt-rich rhombic dodecahedral skeleton framework with less Pt at ⟨100⟩ vertices. The ability to gain evidence of local surface enrichment that varies with the crystallographic orientation of facets and vertices is expected to provide significant insight toward the development of nanoparticles for sensing, medical imaging, and catalysis.
纳米粒子的性质被认为严重依赖于其局部化学性质,但在纳米尺度上对三维(3D)元素偏析进行特征描述极具挑战性。扫描透射电子显微镜(STEM)层析成像技术是为数不多的能够测量无机纳米粒子局部化学性质的技术之一,但由于电子剂量高,传统方法往往无法实现。在这里,我们展示了一种新的基于结构生物学家开发的方法的光谱单颗粒重建方法的实现。我们将该技术应用于 PtNi 纳米催化剂的成像,并发现了一种复杂的不均匀合金的新证据,该合金具有富 Pt 的核、富 Ni 的中空八面体中间壳和富 Pt 的菱形十二面体骨架框架,在 ⟨100 ⟩顶点处的 Pt 较少。有望获得随晶面和顶点的晶体取向而变化的局部表面富集的证据,这将为用于传感、医学成像和催化的纳米粒子的开发提供重要的见解。