Connectivity of icosahedral network and a dramatically growing static length scale in Cu-Zr binary metallic glasses

We report on and characterize, via molecular dynamics studies, the evolution of the structure of Cu sub(50) Zr sub(50) and Cu sub(64) Zr sub(36) metallic glasses (MGs) as temperature is varied. Interestingly, a percolating icosahedral network appears in the Cu sub(64) Zr sub(36) system as it is supe...

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Veröffentlicht in:Physical review. B, Condensed matter and materials physics Condensed matter and materials physics, 2013-05, Vol.87 (18), Article 184203
Hauptverfasser: Soklaski, Ryan, Nussinov, Zohar, Markow, Zachary, Kelton, K. F., Yang, Li
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Sprache:eng
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Zusammenfassung:We report on and characterize, via molecular dynamics studies, the evolution of the structure of Cu sub(50) Zr sub(50) and Cu sub(64) Zr sub(36) metallic glasses (MGs) as temperature is varied. Interestingly, a percolating icosahedral network appears in the Cu sub(64) Zr sub(36) system as it is supercooled. This leads us to introduce a static length scale, which grows dramatically as this three-dimensional system approaches the glass transition. Amidst interpenetrating connections, noninterpenetrating connections between icosahedra are shown to become prevalent upon supercooling and to greatly enhance the connectivity of the MG's icosahedral network. Additionally, we characterize the chemical compositions of the icosahedral networks and their components. These findings demonstrate the importance of noninterpenetrating connections for facilitating extensive structural networks in Cu-Zr MGs, which in turn drive dynamical slowing in these materials.
ISSN:1098-0121
1550-235X
DOI:10.1103/PhysRevB.87.184203