4.6 Article

Impact of Microstructure of Nanoscale Magnetron Sputtered Ru/Al Multilayers on Thermally Induced Phase Formation

Journal

COATINGS
Volume 13, Issue 1, Pages -

Publisher

MDPI
DOI: 10.3390/coatings13010149

Keywords

magnetron sputtering; multilayer; phase formation; heat treatment; in situ HT-XRD; TEM; aluminides

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In this study, the phase formation and microstructure evolution in Ru/Al multilayers were investigated during thermal annealing. The desired phases were obtained by adjusting the microstructure and design of the as-deposited multilayers. It was found that the phase formation sequence was strongly correlated with the modulation length, and the single-phase RuAl thin films could be synthesized in a controlled manner.
In this study, we report on phase formation and microstructure evolution in multiscale magnetron sputtered Ru/Al multilayers upon thermal annealing in vacuum at slow heating rates of 10 K/min. By specifically adjusting the microstructure and design of the as-deposited multilayers, the formation of certain desired phases can be tuned. We demonstrate that the synthesis of single phase RuAl thin films is possible in a very controlled manner in a solid state only via thermal activation without initiating the self-propagating exothermic reactions of Ru/Al multilayers. To investigate phase formation sequences and the resulting microstructures, Ru/Al multilayers were designed via magnetron sputtering with systematic variation of bilayer modulation periods and subsequent vacuum annealing. Thin films samples were characterized by in situ high-temperature XRD, TEM imaging and diffraction. It is shown that different phase sequences appear in strong correlation with the modulation length. Depending on the multilayer design, the phase formation toward single-phase RuAl thin films happens as either a multi-step or single-step event. In particular, below a critical threshold of the modulation period, the multi-step phase formation can be suppressed, and only the desired RuAl target phase is obtained with a pronounced growth in a preferred orientation. This finding may be versatile for the targeted synthesis of intermetallic phases, contributing to further understanding of phase formation in such nanoscale multilayer systems.

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