Zhang Congyan, Bhandari Uttam, Zeng Congyuan, Ding Huan, Guo Shengmin, Yan Jinyuan, Yang Shizhong
Department of Computer Science, Southern University and A&M College, Baton Rouge, LA 70813, USA.
Department of Mechanical and Industrial Engineering, Louisiana State University, Baton Rouge, LA 70803, USA.
Entropy (Basel). 2020 Jun 28;22(7):718. doi: 10.3390/e22070718.
In this work, the formation of carbide with the concertation of carbon at 0.1 at.% in refractory high-entropy alloy (RHEA) MoNbReTaW was studied under both ambient and high-pressure high-temperature conditions. The x-ray diffraction of dilute carbon (C)-doped RHEA under ambient pressure showed that the phases and lattice constant of RHEA were not influenced by the addition of 0.1 at.% C. In contrast, C-doped RHEA showed unexpected phase formation and transformation under combined high-pressure and high-temperature conditions by resistively employing the heated diamond anvil cell (DAC) technique. The new FCC_L1 phase appeared at 6 GPa and 809 °C and preserved the ambient temperature and pressure. High-pressure and high-temperature promoted the formation of carbides TaC and NbC, which are stable and may further improve the mechanical performance of the dilute C-doped alloy MoNbReTaW.
在本研究中,研究了在环境条件以及高压高温条件下,难熔高熵合金(RHEA)MoNbReTaW中碳含量为0.1原子百分比时碳化物的形成情况。常压下稀碳(C)掺杂RHEA的X射线衍射表明,添加0.1原子百分比的C不会影响RHEA的相和晶格常数。相比之下,通过电阻加热金刚石对顶砧(DAC)技术,C掺杂RHEA在高压和高温联合条件下出现了意想不到的相形成和转变。新的FCC_L1相在6 GPa和809 °C时出现,并在常温常压下保持稳定。高压和高温促进了稳定碳化物TaC和NbC的形成,这可能进一步改善稀C掺杂合金MoNbReTaW的机械性能。