Controlling Propagation Velocity in Al/Ni Reactive Multilayer Systems by Periodic 2D Surface Structuring

Author:

Sauni Camposano Yesenia H.1ORCID,Jaekel Konrad2,Riegler Sascha S.3,Matthes Sebastian1,Glaser Marcus4,Peter Nicolas J.5,Vardo Emina1,Bartsch Heike2,Schwaiger Ruth5,Bergmann Jean Pierre4,Gallino Isabella36,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. Institute for Metallic Materials Saarland University Campus C6.3 66123 Saarbrücken Germany

4. Production Technology Group Department of Mechanical Engineering Institute of Micro and Nanotechnology MacroNano TU Ilmenau Gustav‐Kirchhoff‐Platz 2 98693 Ilmenau Germany

5. Institute of Energy and Climate Research (IEK‐2) Forschungszentrum Jülich GmbH 52425 Jülich Germany

6. Department of Materials Science and Engineering Metallic Materials TU Berlin Ernst‐Reuter‐Platz 1 10587 Berlin Germany

Abstract

The chemical energy released as heat during the exothermic reaction of reactive multilayer systems has shown potential applications in various technological areas, e.g., in joining applications. However, controlling the heat release rate and the propagation velocity of the reaction is required to enhance their performance in most of these applications. Herein, a method to control the propagation velocity and heat release rate of the system is presented. The sputtering of Al/Ni multilayers on substrates with periodic 2D surface structures promotes the formation of growth defects into the system. This modification in the morphology locally influences the reaction characteristics. Tailoring the number of 2D structures in the substrate enables the control of the velocity and maximum temperature of the propagation front. The morphology of the produced reactive multilayers is investigated before and after reaction using scanning electron microscopy, transmission electron microscopy, and X‐ray diffraction. In addition, the enthalpy of the system is obtained through calorimetric analysis. The self‐sustained and self‐propagating reaction of the systems is monitored by a high‐speed camera and a high‐speed pyrometer, thus revealing the propagation velocity and the temperatures with time resolution in the microsecond regime.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

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