J. Mater. Sci. Technol. ›› 2022, Vol. 115: 29-39.DOI: 10.1016/j.jmst.2021.11.025

• Research Article • Previous Articles     Next Articles

Ultrahard BCC-AlCoCrFeNi bulk nanocrystalline high-entropy alloy formed by nanoscale diffusion-induced phase transition

Junjie Wanga, Zongde Koua, Shu Fua, Shangshu Wua, Sinan Liua, Mengyang Yana, Zhiqiang Rena, Di Wangb, Zesheng Youa, Si Lana,*(), Horst Hahna,b, Xun-Li Wangc,d, Tao Fenga,*()   

  1. aHerbert Gleiter Institute of Nanoscience, School of Material Science and Engineering, Nanjing University of Science and Technology, Nanjing 210094, China
    bInstitute of Nanotechnology, Karlsruhe Institute of Technology, Karlsruhe 76021, Germany
    cDepartment of Physics, City University of Hong Kong, Hong Kong, China
    dCenter for Neutron Scattering, Shenzhen Research Institute, City University of Hong Kong, Shenzhen 518057, China
  • Received:2021-10-12 Revised:2021-11-16 Accepted:2021-11-23 Published:2022-01-21 Online:2022-01-21
  • Contact: Si Lan,Tao Feng
  • About author:tao.feng@njust.edu.cn (T. Feng).
    *E-mail addresses: lansi@njust.edu.cn (S. Lan),
    First author contact:

    1These authors contributed equally to the work.

Abstract:

In the current work, the BCC-AlCoCrFeNi bulk nanocrystalline high-entropy alloy (nc-HEA) with ultra-high hardness was formed by nanoscale diffusion-induced phase transition in a nanocomposite. First, a dual-phase Al/CoCrFeNi nanocrystalline high-entropy alloy composite (nc-HEAC) was prepared by a laser source inert gas condensation equipment (laser-IGC). The as-prepared nc-HEAC is composed of well-mixed FCC-Al and FCC-CoCrFeNi nanocrystals. Then, the heat treatment was used to trigger the interdiffusion between Al and CoCrFeNi nanocrystals and form an FCC-AlCoCrFeNi phase. With the increase of the annealing temperature, element diffusion intensifies, and the AlCoCrFeNi phase undergoes a phase transition from FCC to BCC structure. Finally, the BCC-AlCoCrFeNi bulk nc-HEA with high Al content (up to 50 at.%) was obtained for the first time. Excitingly, the nc-HEAC (Al-40%) sample exhibits an unprecedented ultra-high hardness of 1124 HV after annealing at 500 °C for 1 h. We present a systematic investigation of the relationship between the microstructure evolution and mechanical properties during annealing, and the corresponding micro-mechanisms in different annealing stages are revealed. The enhanced nanoscale thermal diffusion-induced phase transition process dominates the mechanical performance evolution of the nc-HEACs, which opens a new pathway for the design of high-performance nanocrystalline alloy materials.

Key words: High-entropy alloy, Nanocrystalline, Composites, Diffusion-induced phase transition, Mechanical, Inert gas condensation