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In situ study on medium-range order evolution during the polyamorphous phase transition in a Pd-Ni-P nanostructured glass

  • Shu Fu
  • , Sinan Liu
  • , Jiacheng Ge
  • , Junjie Wang
  • , Huiqiang Ying
  • , Shangshu Wu
  • , Mengyang Yan
  • , Li Zhu
  • , Yubin Ke
  • , Junhua Luan
  • , Yang Ren
  • , Xiaobing Zuo
  • , Zhenduo Wu
  • , Zhen Peng
  • , Chain Tsuan Liu
  • , Xun Li Wang*
  • , Tao Feng
  • , Si Lan
  • *此作品的通讯作者
  • Nanjing University of Science and Technology
  • City University of Hong Kong
  • Spallation Neutron Source Science Center
  • Argonne National Laboratory
  • Jiangsu University
  • City University of Hong Kong Shenzhen Research Institute

科研成果: 期刊稿件文章同行评审

摘要

Engineering multiscale structural hierarchies in glassy alloys enable a broad spectrum of potential applications. Metallic glasses were born in hierarchical structures from atomic-to-nanometer scales. However, the frozen-in structures in traditional metallic glasses prepared by rapid quenching techniques are challenging to tailor. Here, we show that a Pd40Ni40P20 bulk nanostructured glass of polyamorphous interfacial structures was prepared by inert-gas condensation with a laser evaporation source, and its multiscale structures could be engineered. In-situ scattering experiment results reveal polyamorphous phase transitions occurred in the interfacial regions, which are accompanied by the evolution of medium-range order and the nanoscale heterogeneous structures during the condensation process of glassy nanoparticles under high pressure and the following heating process. Moreover, changes in the cluster connectivity resulting from repacking of the local ordering induced by pressure and temperature could be observed. The thermophysical and mechanical properties, including boson peaks, hardness, and elasticity modulus, could be changed as a function of heat-treatment parameters. Our findings would shed light on the synthesis of bulk nanostructured glassy alloys with tailorable thermodynamic and dynamical behavior as well as mechanical properties based on the understanding of metastability for polyamorphous interfacial phases.

源语言英语
页(从-至)145-156
页数12
期刊Journal of Materials Science and Technology
125
DOI
出版状态已出版 - 20 10月 2022

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