TY - JOUR
T1 - Exploring Cr and molten salt interfacial interactions for molten salt applications
AU - Liu, Xiaoyang
AU - Liu, Yang
AU - Gibson, Luke D.
AU - Ge, Mingyuan
AU - Olds, Daniel
AU - Leshchev, Denis
AU - Bai, Jianming
AU - Plonka, Anna M.
AU - Halstenberg, Phillip
AU - Zhong, Hui
AU - Ghose, Sanjit
AU - Lin, Cheng Hung
AU - Zheng, Xiaoyin
AU - Xiao, Xianghui
AU - Lee, Wah Keat
AU - Dai, Sheng
AU - Samolyuk, German D.
AU - Bryantsev, Vyacheslav S.
AU - Frenkel, Anatoly I.
AU - Chen-Wiegart, Yu Chen Karen
N1 - Publisher Copyright:
© 2024 The Royal Society of Chemistry.
PY - 2024/5/22
Y1 - 2024/5/22
N2 - Molten salts play an important role in various energy-related applications such as high-temperature heat transfer fluids and reaction media. However, the extreme molten salt environment causes the degradation of materials, raising safety and sustainability challenges. A fundamental understanding of material-molten salt interfacial evolution is needed. This work studies the transformation of metallic Cr in molten 50/50 mol% KCl-MgCl2via multi-modal in situ synchrotron X-ray nano-tomography, diffraction and spectroscopy combined with density functional theory (DFT) and ab initio molecular dynamics (AIMD) simulations. Notably, in addition to the dissolution of Cr in the molten salt to form porous structures, a δ-A15 Cr phase was found to gradually form as a result of the metal-salt interaction. This phase change of Cr is associated with a change in the coordination environment of Cr at the interface. DFT and AIMD simulations provide a basis for understanding the enhanced stability of δ-A15 Cr vs. bcc Cr, by revealing their competitive phase thermodynamics at elevated temperatures and probing the interfacial behavior of the molten salt at relevant facets. This study provides critical insights into the morphological and chemical evolution of metal-molten salt interfaces. The combination of multimodal synchrotron analysis and atomic simulation also offers an opportunity to explore a broader range of systems critical to energy applications.
AB - Molten salts play an important role in various energy-related applications such as high-temperature heat transfer fluids and reaction media. However, the extreme molten salt environment causes the degradation of materials, raising safety and sustainability challenges. A fundamental understanding of material-molten salt interfacial evolution is needed. This work studies the transformation of metallic Cr in molten 50/50 mol% KCl-MgCl2via multi-modal in situ synchrotron X-ray nano-tomography, diffraction and spectroscopy combined with density functional theory (DFT) and ab initio molecular dynamics (AIMD) simulations. Notably, in addition to the dissolution of Cr in the molten salt to form porous structures, a δ-A15 Cr phase was found to gradually form as a result of the metal-salt interaction. This phase change of Cr is associated with a change in the coordination environment of Cr at the interface. DFT and AIMD simulations provide a basis for understanding the enhanced stability of δ-A15 Cr vs. bcc Cr, by revealing their competitive phase thermodynamics at elevated temperatures and probing the interfacial behavior of the molten salt at relevant facets. This study provides critical insights into the morphological and chemical evolution of metal-molten salt interfaces. The combination of multimodal synchrotron analysis and atomic simulation also offers an opportunity to explore a broader range of systems critical to energy applications.
UR - https://www.scopus.com/pages/publications/85195055333
U2 - 10.1039/d4cp01122h
DO - 10.1039/d4cp01122h
M3 - Article
C2 - 38829308
AN - SCOPUS:85195055333
SN - 1463-9076
VL - 26
SP - 21342
EP - 21356
JO - Physical Chemistry Chemical Physics
JF - Physical Chemistry Chemical Physics
IS - 32
ER -