Meher S, Nandwana P, Rojhirunsakool T, Tiley J, Banerjee R
Center for Advanced Research and Technology and Department of Materials Science and Engineering, University of North Texas, Denton, TX, USA.
Materials and Manufacturing Directorate, Air Force Research Laboratory, Dayton, OH, USA.
Ultramicroscopy. 2015 Jan;148:67-74. doi: 10.1016/j.ultramic.2014.09.001. Epub 2014 Sep 30.
The determination of atomic scale structural and compositional information using atom probe tomography is currently limited to elemental solids and dilute alloys. In the present article, a unique coupling of orientation microscopy and atom probe tomography successfully facilitates the crystallographic study of non-dilute alloy systems, with high evaporation fields. This reproducible methodology affords a new perspective to the conventional atom probe tomography of ordered precipitate strengthened superalloys. The high accuracy in crystallographic site-specific sample preparation results in high spatial resolution in APT, which has been demonstrated in Co-base superalloys. The practical applications of this technique can be extended to accurately characterize the nature of buried order/disorder interfaces at the atomic scale, as well as the site occupancies associated with different solute atoms in multi-component superalloys.
利用原子探针断层扫描技术确定原子尺度的结构和成分信息目前仅限于单质固体和稀合金。在本文中,取向显微镜和原子探针断层扫描技术的独特结合成功地促进了对具有高蒸发场的非稀合金体系的晶体学研究。这种可重复的方法为有序沉淀强化高温合金的传统原子探针断层扫描提供了新的视角。晶体学特定位置样品制备的高精度导致了原子探针断层扫描中的高空间分辨率,这已在钴基高温合金中得到证明。该技术的实际应用可以扩展到在原子尺度上准确表征埋藏的有序/无序界面的性质,以及多组分高温合金中与不同溶质原子相关的位置占有率。