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Enhanced strength of nano-polycrystalline diamond by introducing boron carbide interlayers at the grain boundaries.
Zhao, Bo; Zhang, Shengya; Duan, Shuai; Song, Jingyan; Li, Xiangjun; Yang, Bingchao; Chen, Xin; Wang, Chao; Yi, Wencai; Wang, Zhixiu; Liu, Xiaobing.
Afiliação
  • Zhao B; Laboratory of High Pressure Physics and Material Science, School of Physics and Physical Engineering, Qufu Normal University Qufu Shandong Province 273165 China xiaobing.phy@qfnu.edu.cn yangbc@qfnu.edu.cn.
  • Zhang S; Laboratory of High Pressure Physics and Material Science, School of Physics and Physical Engineering, Qufu Normal University Qufu Shandong Province 273165 China xiaobing.phy@qfnu.edu.cn yangbc@qfnu.edu.cn.
  • Duan S; Laboratory of High Pressure Physics and Material Science, School of Physics and Physical Engineering, Qufu Normal University Qufu Shandong Province 273165 China xiaobing.phy@qfnu.edu.cn yangbc@qfnu.edu.cn.
  • Song J; Laboratory of High Pressure Physics and Material Science, School of Physics and Physical Engineering, Qufu Normal University Qufu Shandong Province 273165 China xiaobing.phy@qfnu.edu.cn yangbc@qfnu.edu.cn.
  • Li X; Laboratory of High Pressure Physics and Material Science, School of Physics and Physical Engineering, Qufu Normal University Qufu Shandong Province 273165 China xiaobing.phy@qfnu.edu.cn yangbc@qfnu.edu.cn.
  • Yang B; Laboratory of High Pressure Physics and Material Science, School of Physics and Physical Engineering, Qufu Normal University Qufu Shandong Province 273165 China xiaobing.phy@qfnu.edu.cn yangbc@qfnu.edu.cn.
  • Chen X; Laboratory of High Pressure Physics and Material Science, School of Physics and Physical Engineering, Qufu Normal University Qufu Shandong Province 273165 China xiaobing.phy@qfnu.edu.cn yangbc@qfnu.edu.cn.
  • Wang C; Laboratory of High Pressure Physics and Material Science, School of Physics and Physical Engineering, Qufu Normal University Qufu Shandong Province 273165 China xiaobing.phy@qfnu.edu.cn yangbc@qfnu.edu.cn.
  • Yi W; Laboratory of High Pressure Physics and Material Science, School of Physics and Physical Engineering, Qufu Normal University Qufu Shandong Province 273165 China xiaobing.phy@qfnu.edu.cn yangbc@qfnu.edu.cn.
  • Wang Z; Administrative Office of Laboratory and Equipment, Qufu Normal University Qufu Shandong Province 273165 China.
  • Liu X; Laboratory of High Pressure Physics and Material Science, School of Physics and Physical Engineering, Qufu Normal University Qufu Shandong Province 273165 China xiaobing.phy@qfnu.edu.cn yangbc@qfnu.edu.cn.
Nanoscale Adv ; 2(2): 691-698, 2020 Feb 18.
Article em En | MEDLINE | ID: mdl-36133237
ABSTRACT
Polycrystalline diamond with high mechanical properties and excellent thermal stability plays an important role in industry and materials science. However, the increased inherent brittle strength with the increase of hardness has severely limited its further widespread application. In this work, we produced well-sintered nano-polycrystalline (np) diamond by directly sintering fine diamond powders with the boron carbide (B4C) additive at high pressure and high temperatures. The highest hardness value of up to ∼90 GPa was observed in the np-diamond (consisting of fine grains with a size of 16 nm) by adding 5 wt% B4C at 18 GPa and 2237 K. Moreover, our results reveal that the produced samples have shown noticeably enhanced strength and toughness (18.37 MPa m0.5) with the assistance of the soft phase at the grain boundaries, higher than that of the hardest known nano-twined diamond by ∼24% and a little greater than that of the toughest CVD diamond (18 MPa m0.5). This study offers a novel functional approach in improving and controlling the hardness and stiffness of polycrystalline diamond.

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2020 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2020 Tipo de documento: Article