TY - JOUR
T1 - Ab Initio Study of Energetics, Charge Transfer, and Atomic Structures of FCC Fe/NbC Interfaces with and Without N Doping
T2 - From Coherent to Semi-coherent Interfaces
AU - Yu, Jianguo
AU - Glazoff, Michael V.
AU - Gao, Michael C.
N1 - Funding Information:
The authors express their sincere gratitude to Drs. Gabriel O. Ilevbare (INL), Laurent Capolungo (LANL), Michael P. Brady, Yukinori Yamamoto, Q.Q. Ren, and Jonathan D. Poplawsky (all- ORNL) for constructive discussions and help. The authors are very grateful to Ms. Rachel Atencio (LANL), the XMAT program manager, for all her support. This work was supported by the National Energy Technology Laboratory (NETL) and United States Department of Energy’s Office of Fossil Energy (USDOE-FE) Crosscutting Research Program. This work was conducted under the eXtremeMAT collaboration between Ames Laboratory, Idaho National Laboratory, Lawrence Livermore National Laboratory, Los Alamos National Laboratory, National Energy Technology Laboratory, Oak Ridge National Laboratory and Pacific Northwest National Laboratory; and executed through FWP AL-17-510091. This manuscript has been authored by Battelle Energy Alliance, LLC, under Contract No. DE-AC07-05ID14517 with the U.S. Department of Energy. This research made use of the resources of the High-Performance Computing Center at Idaho National Laboratory, which is supported by the Office of Nuclear Energy of the U.S. Department of Energy and the Nuclear Science User Facilities under Contract No. DE-AC07-05ID14517. Accordingly, the U.S. Government retains a nonexclusive, royalty-free, irrevocable, world-wide license to publish or reproduce the published form of this manuscript, or allow others to do so, for U.S. Government purposes.
Publisher Copyright:
© 2022, This is a U.S. government work and not under copyright protection in the U.S.; foreign copyright protection may apply.
PY - 2022/4
Y1 - 2022/4
N2 - Nitrogen is added to stainless steels to improve their toughness and corrosion resistance. However, it is not well understood how nitrogen may impact the precipitate/matrix interfacial properties. In this work, we consider the (FCC) Fe (001)/NbC (001) interface as a model system to study how interfacial structure, energy, and electron charge are affected by nitrogen using DFT calculations. We compare the structures and energetics of coherent and semicoherent interfaces by including the elastic contribution component. It is found that nitrogen does not have a significant effect on either the interfacial energy or the atomic arrangement near the interface region. A highly intricate bonding feature is revealed near heterophase interfaces between alloy elements, in which metallic and covalent features are present together with charge transfer. Additionally, the work on determining accurate interfacial energies is at the core of all quantitative precipitation modeling efforts (in particular, in the XMAT Program). In turn, nucleation, growth/dissolution, and coarsening of precipitates contribute critically to the material’s ability to withstand creep, creep fatigue, and other detrimental processes reducing its service life. It is for this reason that developing quantitative understanding of interfaces and their energetics in materials is so important for their development and further improvement.
AB - Nitrogen is added to stainless steels to improve their toughness and corrosion resistance. However, it is not well understood how nitrogen may impact the precipitate/matrix interfacial properties. In this work, we consider the (FCC) Fe (001)/NbC (001) interface as a model system to study how interfacial structure, energy, and electron charge are affected by nitrogen using DFT calculations. We compare the structures and energetics of coherent and semicoherent interfaces by including the elastic contribution component. It is found that nitrogen does not have a significant effect on either the interfacial energy or the atomic arrangement near the interface region. A highly intricate bonding feature is revealed near heterophase interfaces between alloy elements, in which metallic and covalent features are present together with charge transfer. Additionally, the work on determining accurate interfacial energies is at the core of all quantitative precipitation modeling efforts (in particular, in the XMAT Program). In turn, nucleation, growth/dissolution, and coarsening of precipitates contribute critically to the material’s ability to withstand creep, creep fatigue, and other detrimental processes reducing its service life. It is for this reason that developing quantitative understanding of interfaces and their energetics in materials is so important for their development and further improvement.
UR - https://www.scopus.com/pages/publications/85124484310
U2 - 10.1007/s11837-022-05161-y
DO - 10.1007/s11837-022-05161-y
M3 - Article
AN - SCOPUS:85124484310
SN - 1047-4838
VL - 74
SP - 1379
EP - 1386
JO - JOM
JF - JOM
IS - 4
ER -