Department of Advanced Electron Microscopy, Imaging and Spectroscopy, International Iberian Nanotechnology Laboratory (INL) , Avenida Mestre Jose Veiga, Braga 4715-330, Portugal.
Advanced Institute for Materials Research, Tohoku University , 2-1-1 Katahira, Aoba-ku, Sendai 980-8577, Japan.
ACS Nano. 2017 Jun 27;11(6):5590-5597. doi: 10.1021/acsnano.7b00943. Epub 2017 Jun 1.
Unraveling dynamical processes of liquid droplets at liquid/solid interfaces and the interfacial ordering is critical to understanding solidification, liquid-phase epitaxial growth, wetting, liquid-phase joining, crystal growth, and lubrication processes, all of which are linked to different important applications in material science. In this work, we observe direct in situ atomic-scale behavior of Bi droplets segregated on SrBiTaO by using aberration-corrected transmission electron microscopy and demonstrate ordered interface and surface structures for the droplets on the oxide at the atomic scale and unravel a nucleation mechanism involving droplet coalescence at the liquid/solid interface. We identify a critical diameter of the formed nanocrystal in stabilizing the crystalline phase and reveal lattice-induced fast crystallization of the droplet at the initial stage of the coalescence of the nanocrystal with the droplet. Further sequential observations show the stepped coalescence and growth mechanism of the nanocrystals at the atomic scale. These results offer insights into the dynamic process at liquid/solid interfaces, which may have implications for many functionalities of materials and their applications.
揭示液体在固/液界面上的动力学过程以及界面有序性对于理解凝固、液相外延生长、润湿、液相连接、晶体生长和润滑过程至关重要,所有这些过程都与材料科学中不同的重要应用相关。在这项工作中,我们使用像差校正透射电子显微镜直接观察了在 SrBiTaO 上分离的 Bi 液滴的原子尺度的直接原位行为,并在原子尺度上证明了液滴在氧化物上的界面和表面有序结构,并揭示了涉及液/固界面液滴聚结的成核机制。我们确定了形成纳米晶体的临界直径,以稳定晶体相,并揭示了在纳米晶体与液滴聚结的初始阶段,晶格诱导的液滴快速结晶。进一步的连续观察表明了纳米晶体在原子尺度上的阶跃式聚结和生长机制。这些结果为液/固界面的动力学过程提供了新的认识,这可能对材料的许多功能及其应用有重要影响。