English

Flow-induced anisotropy in a carbon black-filled silicone elastomer: electromechanical properties and structure

Materials Science 2024-07-31 v1

Abstract

Carbon black (CB)-elastomers can serve as low-cost, highly deformable sensor materials, but hardly any work exists on their structure-property relationships. We report on flow-induced anisotropy, considering CB-silicone films generated via doctor blade coating. Cured films showed slight electrical anisotropy, with conductivity parallel to the coating direction being lower than perpendicular to it. Furthermore, piezoresistive sensitivity was much larger for stretch perpendicular to the coating direction than for parallel stretch. Structural analysis for length scales up to the CB agglomerate level yielded only weak evidence of anisotropy. Based on this evidence and insight from CB network simulations, we hypothesize that shear flow during coating fragments the CB network and then induces a preferential aggregate alignment, as well as increased inter-particle distances, parallel to the coating direction. As a practical conclusion, already weak anisotropic structuration suffices to cause significant electric anisotropy.

Keywords

Cite

@article{arxiv.2407.20318,
  title  = {Flow-induced anisotropy in a carbon black-filled silicone elastomer: electromechanical properties and structure},
  author = {Bettina Zimmer and Bart-Jan Niebuur and Florian Schaefer and Fabian Coupette and Victor Tänzel and Tanja Schilling and Tobias Kraus},
  journal= {arXiv preprint arXiv:2407.20318},
  year   = {2024}
}