Graz Centre for Electron Microscopy , Steyrergasse 17, 8010 Graz, Austria.
Institute of Electron Microscopy and Nanoanalysis, Graz University of Technology , Steyrergasse 17, 8010 Graz, Austria.
Nano Lett. 2017 Nov 8;17(11):6773-6777. doi: 10.1021/acs.nanolett.7b02979. Epub 2017 Oct 10.
Plasmonic gap modes provide the ultimate confinement of optical fields. Demanding high spatial resolution, the direct imaging of these modes was only recently achieved by electron energy loss spectroscopy (EELS) in a scanning transmission electron microscope (STEM). However, conventional 2D STEM-EELS is only sensitive to components of the photonic local density of states (LDOS) parallel to the electron trajectory. It is thus insensitive to specific gap modes, a restriction that was lifted with the introduction of tomographic 3D EELS imaging. Here, we show that by 3D EELS tomography the gap mode LDOS of a vertically stacked nanotriangle dimer can be fully imaged. Besides probing the complete mode spectrum, we demonstrate that the tomographic approach allows disentangling the signal contributions from the two nanotriangles that superimpose in a single measurement with a fixed electron trajectory. Generally, vertically coupled nanoparticles enable the tailoring of 3D plasmonic fields, and their full characterization will thus aid the development of complex nanophotonic devices.
等离子体激元的间隙模式提供了对光场的极限约束。为了获得高空间分辨率,这些模式的直接成像最近才通过电子能量损失谱(EELS)在扫描透射电子显微镜(STEM)中实现。然而,传统的二维 STEM-EELS 仅对沿电子轨迹平行的光子局域态密度(LDOS)分量敏感。因此,它对特定的间隙模式不敏感,这一限制随着三维 EELS 成像的引入而得到了缓解。在这里,我们展示了通过三维 EELS 断层扫描可以完全成像垂直堆叠的纳米三角二聚体的间隙模式 LDOS。除了探测完整的模式谱外,我们还证明,断层扫描方法允许从在单个测量中具有固定电子轨迹的两个纳米三角上的叠加信号中解卷积信号贡献。通常,垂直耦合的纳米粒子可以实现 3D 等离子体场的定制,因此对它们的全面表征将有助于开发复杂的纳米光子器件。