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arxiv: 1502.01739 · v3 · pith:M5TZW5LZnew · submitted 2015-02-05 · ❄️ cond-mat.dis-nn · cond-mat.mtrl-sci· cond-mat.soft· physics.comp-ph

A locally preferred structure characterises all dynamical regimes of a supercooled liquid

classification ❄️ cond-mat.dis-nn cond-mat.mtrl-scicond-mat.softphysics.comp-ph
keywords connectedtemperaturecharacteristiccooperativedomainsdynamicaldynamicsglass
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Recent experimental results suggest that metallic liquids universally exhibit a high-temperature dynamical crossover, which is correlated with the glass transition temperature ($T_{g}$). We demonstrate, using molecular dynamics results for Cu64Zr36, that this temperature, $T_{A} \approx 2 \times T_{g}$, is linked with cooperative atomic rearrangements that produce domains of connected icosahedra. Supercooling to a new characteristic temperature, $T_{D}$, is shown to produce higher order cooperative rearrangements amongst connected icosahedra, leading to large-scale domain fluctuations and the onset of glassy dynamics. These extensive domains then abruptly stabilize above $T_{g}$ and eventually percolate before the glass is formed. All characteristic temperatures ($T_{A}$, $T_{D}$ and $T_{g}$) are thus connected by successive manifestations of the structural cooperativity that begins at $T_{A}$.

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