Prospects of atomic resolution imaging with an aberration-corrected STEM

扫描透射电子显微镜 光学 球差 材料科学 散射 分辨率(逻辑) 对比度传递函数 快速傅里叶变换 图像分辨率 暗场显微术 傅里叶变换 物理 区域轴 高分辨率透射电子显微镜 显微镜 透射电子显微镜 显微镜 衍射 镜头(地质) 电子衍射 数学 人工智能 量子力学 计算机科学 算法
作者
Kazuo Ishizuka
出处
期刊:Journal of Electron Microscopy [Oxford University Press]
卷期号:50 (4): 291-305 被引量:51
标识
DOI:10.1093/jmicro/50.4.291
摘要

We investigated high-resolution scanning transmission electron microscope (STEM) images obtained from a microscope equipped with a spherical aberration corrector. The probe size (full-width at half-maximum) is reduced to 0.76 A at 200 kV by assuming the fifth-order spherical aberration coefficient C5 = 100 mm. For the simulation we have used the recently developed scheme for a STEM image simulation based on the Fast Fourier Transform (FFT) multislice algorithm. The peak-to-background (P/B) ratio of the high-angle annular dark-field (HAADF) image is significantly improved at a thin specimen region. Although the P/B ratio becomes worse at a thicker region, the resolution is kept high even at such a region. An almost true HAADF signal will be obtained even from a weak-scattering phosphorous column in InP [001] when the background is subtracted. In the bright-field image the coherent character of elastic scattering is suppressed by averaging over a large convergence angle, making the specimen effectively self-luminous. The claim that HAADF imaging is relatively insensitive to a defocus as well as a specimen thickness is valid only qualitatively, and a detailed image simulation will be required for a quantitative analysis as in the case of the conventional transmission electron microscope. It was noted that the delta function approximation for the object function may not be applicable for a very fine probe, and that the achievable resolution of the HAADF imaging will be limited by the widths of the high-angle thermal diffuse scattering potential.

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