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American Institute of Physics, Applied Physics Letters, 5(105), p. 051901, 2014

DOI: 10.1063/1.4892448

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Understanding glass-forming ability through sluggish crystallization of atomically thin metallic glassy films

Journal article published in 2014 by Y. T. Sun, C. R. Cao, K. Q. Huang, N. J. Zhao, L. Gu ORCID, Dong-Ning Zheng, Wei-Hua Wang
This paper is available in a repository.
This paper is available in a repository.

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Abstract

The glass-forming ability (GFA) of an alloy, closely related to its ability to resist crystallization, is a crucial issue in condensed matter physics. So far, the studies on GFA are mostly statistical and empirical guides. Benefiting from the ultrahigh thermal stability of ultrathin metallic glassy film and high resolution spherical aberration-corrected transmission electron microscope, the crystallization of atomically thin ZrCu and its microalloyed ZrCuAl glasses with markedly different GFA was investigated at the atomic scale. We find the Zr diffusivity estimated from the density of nuclei is dramatically decreased by adding of Al, which is the major reason for the much better GFA of the ZrCuAl metallic glass.