Dynamic decoupling and local atomic order of a model multicomponent metallic glass-former

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초록

The dynamics of multicomponent metallic alloys is spatially heterogeneous near glass transition. The diffusion coefficient of one component of the metallic alloys may also decouple from those of other components, i.e., the diffusion coefficient of each component depends differently on the viscosity of metallic alloys. In this work we investigate the dynamic heterogeneity and decoupling of a model system for multicomponent Pd43Cu27Ni10P20 melts by using a hard sphere model that considers the size disparity of alloys but does not take chemical effects into account. We also study how such dynamic behaviors would relate to the local atomic structure of metallic alloys. We find, from molecular dynamics simulations, that the smallest component P of multicomponent Pd43Cu27Ni10P20 melts becomes dynamically heterogeneous at a translational relaxation time scale and that the largest major component Pd forms a slow subsystem, which has been considered mainly responsible for the stabilization of amorphous state of alloys. The heterogeneous dynamics of P atoms accounts for the breakdown of Stokes-Einstein relation and also leads to the dynamic decoupling of P and Pd atoms. The dynamically heterogeneous P atoms decrease the lifetime of the local short-range atomic orders of both icosahedral and close-packed structures by orders of magnitude.

키워드

dynamic heterogeneitycomponent decouplingglassesmolecular dynamicsHARD-SPHERE PACKINGSMEDIUM-RANGE ORDERFORMING LIQUIDSTRANSITIONDIFFUSIONALLOYSTEMPERATURENUCLEATIONGROWTHMELTS
제목
Dynamic decoupling and local atomic order of a model multicomponent metallic glass-former
저자
Kim, JeongminSung, Bong June
DOI
10.1088/0953-8984/27/23/235102
발행일
2015-06-17
유형
Article
저널명
Journal of Physics Condensed Matter
27
23