Nucleation instability in super-cooled Cu-Zr-Al glass-forming liquids
R.E. Ryltsev, B.A. Klumov, N.M. Chtchelkatchev, and K.Yu. Shunyaev

TL;DR
This study investigates the crystallization behavior of supercooled Cu-Zr-Al metallic glasses using large-scale molecular dynamics simulations, revealing nucleation instability and the formation of Laves phases in systems previously considered highly glass-forming.
Contribution
It provides new insights into the crystallization stability of Cu-Zr-Al alloys at large system sizes, highlighting the nucleation mechanisms and structural factors influencing glass stability.
Findings
Cu-Zr-Al alloys nucleate in lengthy simulations.
Large system sizes lead to crystallization, especially in Cu64.5Zr35.5.
Crystallization involves formation of Laves phases.
Abstract
Special role in computer simulations of supercooled liquid and glasses is played by few general models representing certain classes of real glass-forming systems. Recently, it was shown that one of the most widely used model glassformers -- Kob-Andersen binary Lennard-Jones mixture -- crystalizes in quite lengthy molecular dynamics simulations and, moreover, it is in fact a very poor glassformer at large system sizes. Thus, our understanding of crystallization stability of model glassformers is far from complete due to the fact that relatively small system sizes and short timescales have been considered so far. Here we address this issue for two embedded atom models intensively used last years in numerical studies of Cu-Zr-(Al) bulk metallic glasses. We consider and alloys as those having high glass-forming ability. Exploring their…
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