TY - JOUR
T1 - Orientation-Dependent Thermal Morphological Evolution of α-Fe Nanopillars
AU - Bai, Longqi
AU - Huang, Longchao
AU - Ma, Yan
AU - Xie, Degang
AU - Shan, Zhiwei
N1 - Publisher Copyright:
© 2026 The Authors. Published by American Chemical Society
PY - 2026/7/8
Y1 - 2026/7/8
N2 - One-dimensional nanostructures are typically single-crystalline, yet the mechanisms by which crystallographic orientation governs their thermal morphological evolution, a process that critically dictates their structural integrity and functional performance in high-temperature applications, remain poorly understood. Here, by observing the shape evolution of single-crystalline α-Fe nanopillars near 0.48 of the melting temperature, we show that increasing axial index results in stronger spheroidization and faster shortening. This behavior originates from a coupled thermodynamic-kinetic effect. On low-index axial pillars, strong effective surface-energy anisotropy stabilizes {100} and {110} facets, while limited adatom generation on these facets slows surface diffusion and shortening. In contrast, geometric constraints on high-index axial pillars promote the exposure of high-index facets, reducing effective surface-energy anisotropy and facilitating adatom formation, thereby accelerating spheroidization and shortening. These results identify axial orientation as a key parameter governing the thermal evolution pathway of one-dimensional nanostructures and provide design principles for engineering thermally robust nanoscale systems.
AB - One-dimensional nanostructures are typically single-crystalline, yet the mechanisms by which crystallographic orientation governs their thermal morphological evolution, a process that critically dictates their structural integrity and functional performance in high-temperature applications, remain poorly understood. Here, by observing the shape evolution of single-crystalline α-Fe nanopillars near 0.48 of the melting temperature, we show that increasing axial index results in stronger spheroidization and faster shortening. This behavior originates from a coupled thermodynamic-kinetic effect. On low-index axial pillars, strong effective surface-energy anisotropy stabilizes {100} and {110} facets, while limited adatom generation on these facets slows surface diffusion and shortening. In contrast, geometric constraints on high-index axial pillars promote the exposure of high-index facets, reducing effective surface-energy anisotropy and facilitating adatom formation, thereby accelerating spheroidization and shortening. These results identify axial orientation as a key parameter governing the thermal evolution pathway of one-dimensional nanostructures and provide design principles for engineering thermally robust nanoscale systems.
KW - Adatom-Mediated Mass Transport
KW - Orientation-Dependent Thermal Evolution
KW - Single-Crystalline α-Fe Nanopillars
KW - Surface-Energy Anisotropy
UR - https://www.scopus.com/pages/publications/105044085572
U2 - 10.1021/acs.nanolett.6c01885
DO - 10.1021/acs.nanolett.6c01885
M3 - 快报
AN - SCOPUS:105044085572
SN - 1530-6984
VL - 26
SP - 8551
EP - 8558
JO - Nano Letters
JF - Nano Letters
IS - 26
ER -