4.7 Article

Atomic transport in amorphous Mo-Cu and Ta-Cu immiscible systems

期刊

JOURNAL OF ALLOYS AND COMPOUNDS
卷 951, 期 -, 页码 -

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ELSEVIER SCIENCE SA
DOI: 10.1016/j.jallcom.2023.169982

关键词

Immiscible system; Diffusion coefficient; Arrhenius-relation; Mo-Cu and Ta-Cu binary systems; Functional thin film; Diffusion in moving boundaries

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This study presents experimental data on Cu diffusion in amorphous immiscible systems and characterizes Mo-Cu and Ta-Cu layers. The observations were made using secondary neutral mass spectrometry, high-resolution transmission electron microscopy, and energy dispersive spectroscopy. By solving a diffusion equation, the concentration profiles and parameters for Cu diffusion in both the amorphous and polycrystalline layers were obtained.
Metastable binary systems with positive enthalpy of mixing have practically no diffusional data in litera-ture. Experimental data on Cu diffusion in amorphous immiscible systems such as Mo-Cu and Ta-Cu are presented in this study. These studies were conducted in sputtered Ni/Mo1-xCux/Ni and Ni/Ta1-xCux/Ni tri-layers, where the nanocrystalline Ni layers acted as effective sinks for Cu atoms located in the amorphous layers. The secondary neutral mass spectrometry (SNMS) technique allowed us to observe the out-diffusion of Cu into the Ni sink layer at temperatures between 100 degrees C and 250 degrees C. Additionally, high-resolution transmission electron microscopy (HR-TEM) and energy dispersive spectroscopy (EDX) was used to char-acterize Mo-Cu and Ta-Cu layers. As a result of a coupled diffusion equation being solved for both amor-phous (source) and polycrystalline (sink) layers, we were able to construct best-fit concentration profiles and calculate Cu diffusion parameters for both layers. We assumed bulk diffusion in amorphous films, while transport along moving grain boundaries was assumed in polycrystalline Ni layers. With this model, we were able to replicate the observed profile features at the amorphous/polycrystalline interface. Based on these evaluations, the pre-exponential factors and activation energies are 5 x 10-14 m2/s, 55.3 +/- 12 kJ/mol in Mo-Cu and 1.2 x 10-12 m2/s, 76 +/- 19 kJ/mol in Ta-Cu systems.(c) 2023 Elsevier B.V. All rights reserved.

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