College of Materials Science and Engineering, Key Laboratory of Advanced Functional Materials, Ministry of Education of China, Beijing University of Technology, 100124 Beijing, People's Republic of China.
Nanotechnology. 2020 Mar 27;31(13):134002. doi: 10.1088/1361-6528/ab5d75. Epub 2019 Nov 29.
Phase separation at nanoscale and highly dispersive nanoparticles were exploited to fabricate a novel type of nanocrystalline W-Cu-Cr-ZrC composite with special hierarchical structure. The microstructures were characterized elaborately and the formation mechanisms of the hierarchical structure were disclosed. It was found that the supersaturated Cr separated from W during sintering and segregated at profuse interfaces. Moreover, Cr can also interact with ZrC nanoparticles dispersed in W matrix, leading to the formation of Zr-Cr-C phase which exerts significant effect on inhibiting coarsening of W grains. On the other side, the dissolution of Cr and W contributes to the formation of Cu nanocrystalline structure. As a result, the prepared W-Cu-Cr-ZrC composite exhibits an ultrahigh hardness of 943HV owing to the synergy of nanocrystalline structure and dispersion strengthening of nanoparticles. The hardness has achieved the highest value among the W-Cu-based composites with the same Cu content reported in literature. This study provided a new strategy for production of high-performance W-Cu-based composites through combination of microstructural design with addition of doping element and nanoparticles.
利用纳米尺度的相分离和高分散性纳米颗粒,制备了一种具有特殊分级结构的新型纳米晶 W-Cu-Cr-ZrC 复合材料。详细表征了其微观结构,并揭示了分级结构的形成机制。研究发现,烧结过程中 W 中过饱和的 Cr 分离并在丰富的界面上偏析。此外,Cr 还可以与分散在 W 基体中的 ZrC 纳米颗粒相互作用,形成 Zr-Cr-C 相,这对抑制 W 晶粒粗化有显著影响。另一方面,Cr 和 W 的溶解有助于形成 Cu 纳米晶结构。因此,所制备的 W-Cu-Cr-ZrC 复合材料由于纳米晶结构和纳米颗粒弥散强化的协同作用,表现出超高硬度 943HV。其硬度在文献报道的相同 Cu 含量的 W-Cu 基复合材料中达到了最高值。本研究通过将微结构设计与掺杂元素和纳米颗粒的添加相结合,为生产高性能 W-Cu 基复合材料提供了一种新的策略。