TY - JOUR
T1 - Theoretical insights into the key properties of Ce1−xMxB6 (M = Ba, Sr, Ca) as promising plasma grid materials for N-NBI systems
AU - CFQS team
AU - Hu, Jun
AU - Cui, Zilin
AU - Li, Yucai
AU - Xu, Yuhong
AU - Li, Wei
AU - Zhang, Xin
AU - Lei, Guangjiu
AU - Liu, Sanqiu
AU - Li, Xiaolong
AU - Zheng, Huaqing
AU - Liu, Xiaoqiao
AU - Ma, Yubo
AU - Chen, Xiaochang
AU - Liu, Haifeng
AU - Wang, Xianqu
AU - Huang, Jie
AU - Liu, Hai
AU - Cheng, Jun
AU - Tang, Changjian
N1 - Publisher Copyright:
© 2026 The Author(s). Published by Elsevier Ltd. This is an open access article under the CC BY-NC-ND license. http://creativecommons.org/licenses/by-nc-nd/4.0/
PY - 2026/9
Y1 - 2026/9
N2 - This study adopts first-principles computational approaches to explore the structural, electronic, mechanical, surface work function and thermodynamic behaviors of Ce1−xMxB6 (M = Ba, Sr, Ca) composites with doping ratios x ranging from 0 to 1 (0, 0.125, 0.25, 0.375, 0.5, 0.625, 0.75, 0.875, 1). Core properties including lattice constants, elastic constants, bulk modulus, shear modulus, Young’s modulus, Poisson’s ratio, surface work function, Debye temperature, and melting point are comprehensively examined. The findings reveal that doping typically results in a decline in the surface work function, with Ce0.375Ba0.625B6 attaining the lowest value of 1.47 eV. All Ce1−xMxB6 composites satisfy the mechanical stability criteria and exhibit brittle features (B/G < 1.75), with Ba doping enhancing shear resistance and Ca doping slightly improving ductility. Thermodynamic analysis demonstrates that the melting points of all composites exceed 2000 K, confirming their excellent thermal stability. These results offer valuable theoretical references for the development of cesium-free electrode materials suitable for plasma-facing applications in neutral beam injection (NBI) systems.
AB - This study adopts first-principles computational approaches to explore the structural, electronic, mechanical, surface work function and thermodynamic behaviors of Ce1−xMxB6 (M = Ba, Sr, Ca) composites with doping ratios x ranging from 0 to 1 (0, 0.125, 0.25, 0.375, 0.5, 0.625, 0.75, 0.875, 1). Core properties including lattice constants, elastic constants, bulk modulus, shear modulus, Young’s modulus, Poisson’s ratio, surface work function, Debye temperature, and melting point are comprehensively examined. The findings reveal that doping typically results in a decline in the surface work function, with Ce0.375Ba0.625B6 attaining the lowest value of 1.47 eV. All Ce1−xMxB6 composites satisfy the mechanical stability criteria and exhibit brittle features (B/G < 1.75), with Ba doping enhancing shear resistance and Ca doping slightly improving ductility. Thermodynamic analysis demonstrates that the melting points of all composites exceed 2000 K, confirming their excellent thermal stability. These results offer valuable theoretical references for the development of cesium-free electrode materials suitable for plasma-facing applications in neutral beam injection (NBI) systems.
KW - CeMB(M=Ba, Sr, Ca)
KW - First-principles computations
KW - Mechanical behaviors
KW - Thermodynamic characteristics
KW - Work function
UR - https://www.scopus.com/pages/publications/105044554990
U2 - 10.1016/j.nme.2026.102184
DO - 10.1016/j.nme.2026.102184
M3 - Article
AN - SCOPUS:105044554990
SN - 2352-1791
VL - 48
JO - Nuclear Materials and Energy
JF - Nuclear Materials and Energy
M1 - 102184
ER -