Microstructural Characterization and Self‐Propagation Properties of Reactive Al/Ni Multilayers Deposited onto Wavelike Surface Morphologies: Influence on the Propagation Front Velocity

Author:

Sauni Camposano Yesenia H.1ORCID,Bartsch Heike2,Matthes Sebastian1,Oliva-Ramirez Manuel134,Jaekel Konrad2,Schaaf Peter1

Affiliation:

1. Chair Materials for Electrical Engineering and Electronics Institute of Materials Science and Engineering Institute of Micro and Nanotechnologies MacroNano TU Ilmenau Gustav-Kirchhoff-Str. 5 98693 Ilmenau Germany

2. Electronics Technology Group Institute of Materials Science and Engineering Institute of Micro and Nanotechnology MacroNano TU Ilmenau Gustav-Kirchhoff-Str. 1 98693 Ilmenau Germany

3. Nanotechnology on Surfaces and Plasma Laboratory Instituto de Ciencia de Materiales de Sevilla CSIC-Universidad de Sevilla Avda. Américo Vespucio 49 41092 Sevilla Spain

4. Departamento de Física Atómica Molecular y Nuclear Universidad de Sevilla Avda. Reina Mercedes 41012 Sevilla Spain

Abstract

Reactive multilayer systems are nanostructures of great interest for various technological applications because of their high energy release rate during the self‐propagating reaction of their components. Therefore, many efforts are aimed at controlling the propagation velocity of these reactions. Herein, reactive multilayer systems of Al/Ni in the shape of free‐standing foils with a wavelike surface morphology prepared by using sacrificial substrates with well‐aligned waves are presented and the propagation of the reaction along different directions of the reproduced waves is analyzed. During the ignition test, the propagation front is recorded with a high‐speed camera, and the maximum temperature is measured using a pyrometer. The propagation of the reaction is favored in the direction of the waves, which points out the influence of the anisotropy generated by this morphology and how it affects the propagation dynamics and the resulting microstructure. Furthermore, compared to their counterparts fabricated on flat substrates, these reactive multilayers with wavelike morphology exhibit a remarkable reduction in the propagation velocity of the reaction of about 50%, without significantly affecting the maximum temperature registered during the reaction.

Publisher

Wiley

Subject

Materials Chemistry,Electrical and Electronic Engineering,Surfaces, Coatings and Films,Surfaces and Interfaces,Condensed Matter Physics,Electronic, Optical and Magnetic Materials

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