Interfacial free energy controlling glass-forming ability of Cu-Zr alloys

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Abstract

Glass is a freezing phase of a deeply supercooled liquid. Despite its simple definition, the origin of glass forming ability (GFA) is still ambiguous, even for binary Cu-Zr alloys. Here, we directly study the stability of the supercooled Cu-Zr liquids where we find that Cu 64 Zr 36 at a supercooled temperature shows deeper undercoolability and longer persistence than other neighbouring compositions with an equivalent driving Gibbs free energy. This observation implies that the GFA of the Cu-Zr alloys is significantly affected by crystal-liquid interfacial free energy. In particular, the crystal-liquid interfacial free energy of Cu 64 Zr 36 in our measurement was higher than that of other neighbouring liquids and, coincidently a molecular dynamics simulation reveals a larger glass-glass interfacial energy value at this composition, which reflects more distinct configuration difference between liquid and crystal phase. The present results demonstrate that the higher crystal-liquid interfacial free energy is a prerequisite of good GFA of the Cu-Zr alloys.

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Kang, D. H., Zhang, H., Yoo, H., Lee, H. H., Lee, S., Lee, G. W., … Jiang, J. (2014). Interfacial free energy controlling glass-forming ability of Cu-Zr alloys. Scientific Reports, 4. https://doi.org/10.1038/srep05167

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