TY - JOUR
T1 - Interfacial segregation of carbon atoms: the competition between grain boundaries and phase boundaries
AU - Syed, Faisal Waqar
AU - Saikia, Ujjal
AU - Sun, Binhan
AU - Srikakulapu, Kiranbabu
AU - Tehranchi, Ali
AU - Hickel, Tilmann
AU - Zaefferer, Stefan
AU - Ponge, Dirk
N1 - Publisher Copyright: © 2025
PY - 2025/7/5
Y1 - 2025/7/5
N2 - The microstructure of a two-phase medium manganese steel is decorated by interfaces whose character is defined by crystallography and the misorientation between adjacent grains, which in turn influences elemental segregation and shapes the resulting decorations. This study investigates how adjacent grain and phase boundaries impact a boundary's segregation behavior, with a focus on the competition for carbon (C) enrichment in a laminated ferrite (α)- austenite (γ) microstructure subjected to a series of heat treatments. It was found that semi-coherent α-γ Kurdjumov-Sachs (KS) phase boundaries show less carbon segregation than general γ grain boundaries. Furthermore, when a γ grain boundary is present at a junction with the phase boundaries, it acts as an extracting agent for C. DFT calculations support these observations, demonstrating that carbon segregation is energetically more favorable at the γ grain boundary compared to the α/γ phase boundary, due to the more negative segregation energy at the former.
AB - The microstructure of a two-phase medium manganese steel is decorated by interfaces whose character is defined by crystallography and the misorientation between adjacent grains, which in turn influences elemental segregation and shapes the resulting decorations. This study investigates how adjacent grain and phase boundaries impact a boundary's segregation behavior, with a focus on the competition for carbon (C) enrichment in a laminated ferrite (α)- austenite (γ) microstructure subjected to a series of heat treatments. It was found that semi-coherent α-γ Kurdjumov-Sachs (KS) phase boundaries show less carbon segregation than general γ grain boundaries. Furthermore, when a γ grain boundary is present at a junction with the phase boundaries, it acts as an extracting agent for C. DFT calculations support these observations, demonstrating that carbon segregation is energetically more favorable at the γ grain boundary compared to the α/γ phase boundary, due to the more negative segregation energy at the former.
KW - Atom probe tomography
KW - Density function theory
KW - Grain boundary segregation
KW - KS orientation relationship
KW - Medium Mn steel
KW - Phase boundary segregation
UR - https://www.scopus.com/pages/publications/105009929194
U2 - 10.1016/j.scriptamat.2025.116842
DO - 10.1016/j.scriptamat.2025.116842
M3 - Article
SN - 1359-6462
VL - 268.2025
JO - Scripta materialia
JF - Scripta materialia
IS - 1 November
M1 - 116842
ER -