原子单位
可控性
Atom(片上系统)
材料科学
实现(概率)
扫描透射电子显微镜
工作(物理)
阴极射线
电子
化学物理
转化(遗传学)
纳米技术
相(物质)
透射电子显微镜
原子物理学
梁(结构)
电子衍射
晶体结构
平面(几何)
过程(计算)
结构稳定性
分子物理学
结晶学
Crystal(编程语言)
分子动力学
纳米线
反射高能电子衍射
比例(比率)
上部结构
能量过滤透射电子显微镜
纳米光刻
晶体缺陷
作者
Tongtong Shi,Yuan‐Qing Li,Yin‐Lian Zhu,Yujia Wang,Wan‐Rong Geng,Jiaqi Liu,Jiaou Wang,Hua Zhu,Yun‐Long Tang,Xiuliang Ma
标识
DOI:10.1002/adma.202520290
摘要
Precisely controlling structural transformations is essential for realizing novel functionalities in crystal materials, as these transformations often result in significant changes in physical and chemical properties. However, such structural control at the atomic scale remains a formidable challenge. Here the direct observation and realization of atomic scale structural transformation is demonstrated from KTaO3 to K6Ta10.8O30 via high-energy electron beam manufacturing in scanning transmission electron microscope (STEM), which can finally manipulate the Ta atom movements. The K and O vacancies in KTaO3 can be introduced via the knock-on energy transferred from the controled high-dose electron beams. These vacancies can further accommodate Ta atom emerging at the interstitial sites of the TaO2 plane in KTaO3. Thus, all atom species in KTaO3 can be stimulated via electron beam and the cooperative movements of them trigger the final formation of the new K6Ta10.8O30 phase. The detailed mechanisms are revealed by low-dose, in situ, atomic scale imaging under STEM. The controllability of this electron beam manufacture process and the stability of the new K6Ta10.8O30 phase is further validated. DFT calculations rationalize the triggering steps of the manufacture process and show the transformation is energetically beneficial at the condition of K and O vacancies introduced by knock-on effect. This work not only investigates the microscopic mechanism of electron beam-induced structural transformation, but also establishes a versatile pathway for synthesizing new functional materials with tailored properties.
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