Enhancing the Properties of Photo-Generated Metallized Nanocomposite Coatings through Thermal Annealing

Author:

Dabert Marine1,Papanastasiou Dorina T.2ORCID,Vidal Loïc3,Hajjar-Garreau Samar3,Bellet Daniel2ORCID,Lougnot Daniel4,Balan Lavinia1ORCID

Affiliation:

1. Univ. d’Orléans, Conditions Extrêmes Matériaux Haute Température et Irradiation CNRS UPR 3079, F-45000 Orléans, France

2. Univ. Grenoble Alpes, CNRS, Grenoble INP, LMGP, F-38000 Grenoble, France

3. Univ. de Haute Alsace, Institut de Science des Matériaux de Mulhouse, CNRS UMR 7361, F-68100 Mulhouse, France

4. Univ. de Haute Alsace, Centre de Recherches sur les Economies, les Sociétés, les Arts et les Techniques CRESAT EA 3436, F-68100 Mulhouse, France

Abstract

In this work, the effect of thermal annealing on silver nanoparticles@polymer (AgNPs@polymer) nanocomposite coatings was investigated. These photo-generated metallized coatings have a spatial distribution of metal nanoparticles, with a depth-wise decrease in their concentration. During annealing, both structural and morphological variations, as well as a spatial reorganization of AgNPs, were observed, both at the surface and in the core of the AgNPs@polymer coating. Owing to their increased mobility, the polymer chains reorganize spontaneously, and, at the same time, a hopping diffusion process, caused by the minimization of the surface energy, promotes the migration and coalescence of the silver nanoparticles towards the surface. The layer of discrete nanoparticles gradually transforms from a weakly percolative assembly to a denser and more networked structure. Consequently, the surface of the coatings becomes significantly more electrically conductive, hydrophobic, and reflective. The general trend is that the thinner the nanohybrid coating, the more pronounced the effect of thermal annealing on its spatial reorganization and properties. These results open up interesting prospects in the field of metallized coating technology and pave the way for integration into a wide variety of devices, e.g., efficient and inexpensive reflectors for energy-saving applications, electrically conductive microdevices, and printed electronic microcircuits.

Funder

Agence Nationale de la Recherche

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

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