Submicronic-Scale Mechanochemical Characterization of Oxygen-Enriched Materials

Author:

Garnier Marie1,Lesniewska Eric1ORCID,Optasanu Virgil1ORCID,Guelorget Bruno2ORCID,Berger Pascal3ORCID,Lavisse Luc1,François Manuel2,Custovic Irma1,Pocholle Nicolas1,Bourillot Eric1

Affiliation:

1. Laboratory Interdisciplinaire Carnot de Bourgogne (ICB), UMR 6303 CNRS, University of Bourgogne, 21000 Dijon, France

2. Laboratory of Mechanical & Material Engineering (UR LASMIS), University of Technology Troyes, 10300 Troyes, France

3. Laboratory Nanoscience and Innovation for Materials, Biomedecine and Energy (NIMBE), UMR 3685 CEA-CNRS, University of Paris-Saclay, 91191 Gif-sur-Yvette, France

Abstract

Conventional techniques that measure the concentration of light elements in metallic materials lack high-resolution performance due to their intrinsic limitation of sensitivity. In that context, scanning microwave microscopy has the potential to significantly enhance the quantification of element distribution due to its ability to perform a tomographic investigation of the sample. Scanning microwave microscopy associates the local electromagnetic measurement and the nanoscale resolution of an atomic force microscope. This technique allows the simultaneous characterization of oxygen concentration as well as local mechanical properties by microwave phase shift and amplitude signal, respectively. The technique was calibrated by comparison with nuclear reaction analysis and nanoindentation measurement. We demonstrated the reliability of the scanning microwave technique by studying thin oxygen-enriched layers on a Ti-6Al-4V alloy. This innovative approach opens novel possibilities for the indirect quantification of light chemical element diffusion in metallic materials. This technique is applicable to the control and optimization of industrial processes.

Funder

French National Research Agency

EIPHI Graduate school

Bourgogne Franche-Comté Region

Publisher

MDPI AG

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