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Part A: Materials Science

Microstructure correlation between eutectic and bulk metallic glass interpreted via dual-cluster formulas model

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Pages 467-479 | Received 07 Oct 2021, Accepted 01 Nov 2021, Published online: 20 Nov 2021

References

  • P. Gaskell, A new structural model for transition metal-metalloid glasses. Nature 276 (1978), pp. 484–485.
  • E. Ma, Tuning order in disorder. Nat. Mater. 14 (2015), pp. 547–552.
  • D.B. Miracle, A structural model for metallic glasses. Nat. Mater. 3 (2004), pp. 697–720.
  • C. Dong, Q. Wang, J.B. Qiang, Y.M. Wang, N. Jiang, G. Han, Y.H. Li, J. Wu and J.H. Xia, From clusters to phase diagrams: Composition rules of quasicrystals and bulk metallic glasses. Appl. Phys. 40 (2007), pp. 273–291.
  • J.X. Chen, Q. Wang, Y.M. Wang, J.B. Qiang and C. Dong, Cluster formulae for alloy phases. Philos. Mag. Lett. 90 (2010), pp. 683–688.
  • G. Han, J.B. Qiang, F.W. Li, L. Yuan, S.G. Quan, Q. Wang, Y.M. Wang and C. Dong, The e/a values of ideal metallic glasses in relation to cluster formulae. Acta Mater. 59 (2011), pp. 5917–5923.
  • Z. Wang, D. Dong, S. Zhang, Y. Ma and C. Dong, Characteristics of cluster formulas for binary bulk metallic glasses. J. Alloys Comp. 654 (2016), pp. 340–343.
  • J.X. Chen, C. Dong and Q. Wang, Alloy phases and metallic glass formation understood via cluster formulas. Chem. Phys. Lett. 502 (2011), pp. 176–179.
  • D. Turnbull, Under what conditions can a glass be formed? Contemp. Phys. 10 (1969), pp. 473–488.
  • J.X. Chen, J.L. Zhao and Y. Cheng, Structural heritage of metallic glasses and relevant crystals understood via the principal cluster. Philos. Mag. 100 (2020), pp. 2938–2948.
  • S. Zhang and C. Dong, Dual-cluster interpretation of binary eutectics associated with hexagonal close-packed solid solution phases. Mater. Lett. 233 (2018), pp. 71–73.
  • C. Li, J. Saida and A. Inoue, Relationship between the precipitation of face-centered cubic Zr2Ni phase and the stability of supercooled liquid state In Zr-Cu-Ni-Al metallic glasses. Mater. Trans. JIM 41 (2000), pp. 1521–1525.
  • X.N. Li, L.J. Jin, Y.H. Zheng, Q. Wang and C. Dong, Composition range of semiconducting amorphous Fe-Si thin films interpreted using a cluster-based short-range-order model. J. Alloys Comp. 706 (2017), pp. 495–501.
  • J.X. Chen and J. Geng, Mg67zn28ca5 bulk metallic glass formation understood via closed-packed icosahedra Zn2Mg11 eutectic cluster. Intermetallics 61 (2015), pp. 27–29.
  • D.D. Dong, S. Zhang, Z.J. Wang, C. Dong and P. Häussler, Composition interpretation of binary bulk metallic glasses via principal cluster definition. Mater. Des. 96 (2016), pp. 115–121.
  • D.B. Miracle, W.S. Sanders and O.N. Senkov, The influence of efficient atomic packing on the constitution of metallic glasses. Philos. Mag. Mater. Trans. JIM 83 (2003), pp. 2409–2428.
  • P.J. Steinhardt, Solid-state physics: How does your quasicrystal grow? Nature 452 (2008), pp. 43–44.
  • J.L. Du, B. Wen, R. Melnik and Y. Kawazoe, Determining characteristic principal clusters In the “cluster-plus-glue-atom” model. Acta Mater. 75 (2014), pp. 113–121.
  • J.X. Chen, J.B. Qiang, Q. Wang and C. Dong, Defining nearest neighbor clusters in alloy phases using radial distribution of atomic density. Acta Phys. Sin. Mater. Trans. JIM 61 (2012), pp. 046102.
  • F.R. de Boer, R. Boom, W.C.M. Mattens, A.R. Miedema and A.K. Niessen, Cohesion and Structure, in Cohesion in Metals: Transition Metal Alloys, Vol. 1, F.R. de Boer and D.G. Pettifor, ed., Elsevier, Amsterdam, North-Holland, 1988.
  • H. Neumann, F. Herwig and W. Hoyer, The short range order of liquid eutectic AIII-Te and AIV-Te alloys. J. Non-Cryst. Solids 205–207 (1996), pp. 438–442.
  • W. Hoyer and R. Jödicke, Short-range and medium-range order in liquid Au-Ge alloys. J. Non-Cryst. Solids 192–193 (1995), pp. 102–105.
  • P. Villars and L.D. Calvert, Pearson’s Handbook of Crystallographic Data for Intermetallic Phase. Desk Edition, Vol. 1, ASM International, Ohio, 1997.
  • O.N. Senkov, J.M. Scott and D.B. Miracle, Composition range and glass forming ability of ternary Ca-Mg-Cu bulk metallic glasses. J. Alloys Comp. 424 (2006), pp. 394–399.
  • D.B. Miracle, The efficient cluster packing model-An atomic structural model for metallic glasses. Acta Mater. 54 (2006), pp. 4317–4336.
  • A. Inoue and A. Takeuchi, Recent development and application products of bulk glassy alloys. Acta Mater. 59 (2011), pp. 2243–2267.
  • Y.J. Sun, D.D. Qu, Y.J. Huang, K.D. Liss, X.S. Wei, D.W. Xing and J. Shen, Zr-Cu-Ni-Al bulk metallic glasses with superhigh glass-forming ability. Acta Mater. 57 (2009), pp. 1290–1299.
  • S. Zhang, D.D. Dong, Z.J. Wang, C. Dong and P. Häussler, Spherical periodicity as structural homology of crystalline and amorphous states. Sci. China Mater. 61 (2018), pp. 409–416.
  • K.M. Han, Y.M. Wang, J.B. Qiang, H.B. Zhang, S.X. Qin, H. Jiang, S. Zhang and C. Dong, Dual-cluster formulas for eutectic-type bulk metallic glasses and experimental verification In Zr-Al-Fe-Cu system. Mater. Des. 183 (2019), pp. 108142.
  • W.H. Wang, J.J. Lewandowski and A.L. Greer, Understanding the glass-forming ability of Cu50Zr50 alloys In terms of a metastable eutectic. J. Mater. Res. 20 (2011), pp. 2307–2313.
  • G. Duan, D.H. Xu, Q. Zhang, G.Y. Zhang, T. Cagin, W.L. Johnson and W.A. Goddard, Molecular dynamics study of the binary Cu46Zr54 metallic glass motivated by experiments: Glass formation and atomic-level structure. Phys. Rev. B 71 (2005), pp. 224208.
  • N. Mattern, A. Schops, U. Kühn, J. Acker, O. Khvostikova and J. Eckert, Structural behavior of CuxZr100-x metallic glass (x=35-70). J. Non-Cryst. Solids 354 (2008), pp. 1054–1060.
  • O.J. Kwon, Y. Kim, K. Kim, Y. Lee and E. Fleury, Formation of amorphous phase in the binary Cu-Zr alloy system. Met. Mater. Int. 12 (2006), pp. 207–212.
  • T. Takagi, T. Ohkubo, Y. Hirotsu, B.S. Murty, K. Hono and D. Shindo, Local structure of amorphous Zr70Pd30 alloy studied by electron diffraction. Appl. Phys. Lett. 79 (2001), pp. 485–487.
  • J. Saida, T. Sanada, S. Sato, M. Imafuku, C. Li and A. Inoue, Nano quasicrystal formation and local atomic structure in Zr-Pd and Zr-Pt binary metallic glasses. Z. Kristallogr. 223 (2008), pp. 726–730.
  • K.F. Yao and N. Chen, Pd-Si binary bulk metallic glass. Sci. China Ser. G-Phys. Mech. Astron. 51 (2008), pp. 414–420.
  • K.F. Yao and F. yuan, Pd-Si binary bulk metallic glass prepared at low cooling rate. Chin. Phys. Lett. 22 (2005), pp. 1481–1483.
  • Z.D. Sha, B. Xu, L. Shen, A.H. Zhang, Y.P. Feng and Y. Li, The basic polyhedral clusters, the optimum glass formers, and the composition-structure-property (glass-forming ability) correlation in Cu-Zr metallic glasses. J. Appl. Phys. 107 (2010), pp. 063508.

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