Zhao Haofei, Zhu Yuchen, Ye Huanyu, He Yang, Li Hao, Sun Yifei, Yang Feng, Wang Rongming
Beijing Advanced Innovation Center for Materials Genome Engineering, University of Science and Technology Beijing, Beijing, 100083, China.
Beijing Key Laboratory for Magneto-Photoelectrical Composite and Interface Science, School of Mathematics and Physics, University of Science and Technology Beijing, Beijing, 100083, China.
Adv Mater. 2023 Dec;35(50):e2206911. doi: 10.1002/adma.202206911. Epub 2023 Mar 15.
Nanocrystals are of great importance in material sciences and industry. Engineering nanocrystals with desired structures and properties is no doubt one of the most important challenges in the field, which requires deep insight into atomic-scale dynamics of nanocrystals during the process. The rapid developments of in situ transmission electron microscopy (TEM), especially environmental TEM, reveal insights into nanocrystals to digest. According to the considerable progress based on in situ electron microscopy, a comprehensive review on nanocrystal dynamics from three aspects: nucleation and growth, structure evolution, and dynamics in reaction conditions are given. In the nucleation and growth part, existing nucleation theories and growth pathways are organized based on liquid and gas-solid phases. In the structure evolution part, the focus is on in-depth mechanistic understanding of the evolution, including defects, phase, and disorder/order transitions. In the part of dynamics in reaction conditions, solid-solid and gas-solid interfaces of nanocrystals in atmosphere are discussed and the structure-property relationship is correlated. Even though impressive progress is made, additional efforts are required to develop the integrated and operando TEM methodologies for unveiling nanocrystal dynamics with high spatial, energy, and temporal resolutions.
纳米晶体在材料科学和工业中具有重要意义。设计具有所需结构和性能的纳米晶体无疑是该领域最重要的挑战之一,这需要深入了解纳米晶体在该过程中的原子尺度动力学。原位透射电子显微镜(TEM),特别是环境TEM的快速发展,揭示了对纳米晶体有待深入研究的见解。基于原位电子显微镜取得的显著进展,从成核与生长、结构演变以及反应条件下的动力学这三个方面对纳米晶体动力学进行了全面综述。在成核与生长部分,现有的成核理论和生长途径是基于液相和气 - 固相等进行整理的。在结构演变部分,重点是对演变过程进行深入的机理理解,包括缺陷、相以及无序/有序转变。在反应条件下的动力学部分,讨论了大气中纳米晶体的固 - 固和气 - 固界面,并关联了结构 - 性能关系。尽管取得了令人瞩目的进展,但仍需要进一步努力开发集成的、原位操作的TEM方法,以高空间、能量和时间分辨率揭示纳米晶体动力学。