Crystal plane orientation-dependent surface atom diffusion in sub-10-nm Au nanocrystals.
Junnan JiangShufen ChuYin ZhangGuangbin SunJunhui JinXiaoqin ZengMingwei ChenMingwei ChenPublished in: Science advances (2024)
Surface atom diffusion is a ubiquitous phenomenon in nanostructured metals with ultrahigh surface-to-volume ratios. However, the fundamental atomic mechanism of surface atom diffusion remains elusive. Here, we report in situ atomic-scale observations of surface pressure-driven atom diffusion in gold nanocrystals at room temperature using high-resolution transmission electron microscopy with a high-speed detection camera. The topmost layer of atoms on (001) plane initially diffuse in a column-by-column manner. As diffusion proceeds, the remaining atomic columns collectively inject into adjacent underlayer, accompanied by nucleation of a surface dislocation. In comparison, atoms on (111) plane directly diffuse to the base without collective injection. Quantitative calculations indicate that these crystal plane orientation-dependent atom diffusion behaviors contribute to the larger diffusion coefficient of (111) plane compared to (001) plane in addition to the effect of diffusion activation energy. Our findings provide valuable insights into atomic mechanisms of diffusion-dominant morphology evolution of nanostructured metals and guide the design of nanostructured materials with enhanced structural stability.
Keyphrases
- room temperature
- molecular dynamics
- high resolution
- high speed
- electron microscopy
- magnetic resonance imaging
- magnetic resonance
- liquid chromatography
- machine learning
- mass spectrometry
- low grade
- atomic force microscopy
- human health
- molecular dynamics simulations
- risk assessment
- health risk
- sensitive detection
- ultrasound guided
- convolutional neural network
- solid phase extraction
- monte carlo