J. Mater. Sci. Technol. ›› 2020, Vol. 51: 161-166.DOI: 10.1016/j.jmst.2020.02.049
• Letter • Previous Articles Next Articles
Chong Penga, Hu Tangb,*(), Yu Hea, Xiaoqian Lua, Peng Jiaa, Guoying Liua, Yucheng Zhaoa, Mingzhi Wanga,*(
)
Received:
2020-01-16
Revised:
2020-01-16
Accepted:
2020-04-26
Published:
2020-08-15
Online:
2020-08-11
Contact:
Hu Tang,Mingzhi Wang
Chong Peng, Hu Tang, Yu He, Xiaoqian Lu, Peng Jia, Guoying Liu, Yucheng Zhao, Mingzhi Wang. A novel non-stoichiometric medium-entropy carbide stabilized by anion vacancies[J]. J. Mater. Sci. Technol., 2020, 51: 161-166.
Fig. 1. Compositional analysis and microstructural characterization. XRD patterns of TiC/WC/0.5Mo2C and TiC0.4/WC/0.5Mo2C at different temperatures (a) and details of (111) and (200) peaks (b); (c) The back-scattered electron (BSE) image of TiC0.4/WC/0.5Mo2C synthesized at 1900 °C; (d-f) Energy disperse spectroscopy (EDS) maps acquired from the marked area of (c): (d) Ti; (e) W; (f) Mo.
Fig. 2. TEM analysis of TWMC19. (a) HAADF-STEM image and SAED pattern in the inset; (b) Typical HRTEM image; (c, d) The IFFT and FFT images domain in the marked area of (b); (e-g) EDS compositional maps acquired from the marked area of (a): (e) Ti; (f) W; (g) Mo.
Fig. 3. Comparison of mechanical properties. (a) The measured Vickers hardness of TWMC19 as a function of applied load. Inset: an optical micrograph of the Vickers indentation with cracks produced at a load of 9.8 N. (b) Comparison of the mechanical properties of TiC0.4/WC/0.5Mo2C with binary precursor carbides. Error bars shown in the plot represent standard deviation of the data.
Fig. 4. Schematics of calculated configurational entropy. (a) Dependence of configurational entropy on the non-stoichiometric precursor component and the content of Mo2C; (b) The comparison of configurational entropy in an N-component compounds.
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