Abstract
Soft electronics based on various rubbers have lately been needed in many advanced applications such as soft robotics, wearable electronics, and remote health monitoring. The ability of a self-sensing material to be monitored in use provides a significant advantage. However, conductive fillers usually used to increase conductivity also change mechanical properties. Most importantly, the initial sought-after properties of rubber, namely softness and long elastic deformation, are usually compromised. This work presents full mechanical and electro-mechanical characterization, together with self-sensing abilities of a vinyl methyl silicone rubber (VMQ) and multi-walled carbon nanotubes (MWCNTs) composite, featuring conductivitywhilemaintaining lowhardness. The research demonstrates thatMWCNT/VMQwith just 4wt.%ofMWCNT are as conductive as commercial conductive VMQbased on Carbon Black, while exhibiting lower hardness and higher elastic recovery (~20% plastic deformation, similar to pure rubber). The research also demonstrates piezo-resistivity and Raman-sensitivity, allowing for self-sensing. Using morphological data, proposed mechanisms for the superior electrical and mechanical behavior, as well as the in-situ fingerprint for the composite conditions are presented. This research novelty is in the full MWCNT/VMQ mechanical and electro-mechanical characterization, thus demonstrating its ability to serve as a sensor over large local strains, multiple straining cycles, and environmental damage.
Original language | English |
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Article number | 1345 |
Journal | Polymers |
Volume | 12 |
Issue number | 6 |
DOIs | |
State | Published - 1 Jun 2020 |
Keywords
- Electrical properties
- Mechanical properties
- Microstructural analysis
- Multifunctional composites
- Nanocomposites
- Soft sensors
All Science Journal Classification (ASJC) codes
- General Chemistry
- Polymers and Plastics