Konečná Andrea, Iyikanat Fadil, García de Abajo F Javier
ICFO-Institut de Ciencies Fotoniques, The Barcelona Institute of Science and Technology, 08860 Castelldefels, Barcelona, Spain.
ICREA-Institució Catalana de Recerca i Estudis Avançats, Passeig Lluís Companys 23, 08010 Barcelona, Spain.
ACS Nano. 2021 Jun 22;15(6):9890-9899. doi: 10.1021/acsnano.1c01071. Epub 2021 May 18.
Transmission electron microscopy and spectroscopy currently enable the acquisition of spatially resolved spectral information from a specimen by focusing electron beams down to a sub-angstrom spot and then analyzing the energy of the inelastically scattered electrons with few-meV energy resolution. This technique has recently been used to experimentally resolve vibrational modes in 2D materials emerging at mid-infrared frequencies. Here, on the basis of first-principles theory, we demonstrate the possibility of identifying single isotope atom impurities in a nanostructure through the trace that they leave in the spectral and spatial characteristics of the vibrational modes. Specifically, we examine a hexagonal boron nitride molecule as an example of application, in which the presence of a single isotope impurity is revealed through changes in the electron spectra, as well as in the space-, energy-, and momentum-resolved inelastic electron signal. We compare these results with conventional far-field spectroscopy, showing that electron beams offer superior spatial resolution combined with the ability to probe the complete set of vibrational modes, including those that are optically dark. Our study is relevant for the atomic-scale characterization of vibrational modes in materials of interest, including a detailed mapping of isotope distributions.
透射电子显微镜和光谱技术目前能够通过将电子束聚焦到亚埃级光斑,然后以几毫电子伏特的能量分辨率分析非弹性散射电子的能量,从而从样品中获取空间分辨光谱信息。该技术最近已被用于通过实验分辨二维材料中出现在中红外频率的振动模式。在此,基于第一性原理理论,我们证明了通过单同位素原子杂质在振动模式的光谱和空间特征中留下的痕迹来识别纳米结构中单个同位素原子杂质的可能性。具体而言,我们以六方氮化硼分子为例进行研究,其中通过电子光谱以及空间、能量和动量分辨的非弹性电子信号的变化揭示了单个同位素杂质的存在。我们将这些结果与传统远场光谱进行比较,表明电子束具有卓越的空间分辨率,并能够探测包括光学暗模式在内的完整振动模式集。我们的研究对于感兴趣材料中振动模式的原子尺度表征具有重要意义,包括同位素分布的详细映射。