4.7 Article

Effect of carbon nanotube type and functionalization on the electrical, thermal, mechanical and electromechanical properties of carbon nanotube/styrene-butadiene-styrene composites for large strain sensor applications

Journal

COMPOSITES PART B-ENGINEERING
Volume 61, Issue -, Pages 136-146

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.compositesb.2014.01.048

Keywords

Polymer-matrix composites (PMCs); Electrical properties; Mechanical testing

Funding

  1. FEDER through the COMPETE Program
  2. Portuguese Foundation for Science and Technology (FCT) [PEST-C/FIS/UI607/2011, PTDC/CTM-NAN/112574/2009]
  3. FCT [SFRH/BD/64267/2009]
  4. Matepro - Optimizing Materials and Processes [NORTE-07-0124-FEDER-000037]
  5. Programa Operacional Regional do Norte under the Quadro de Referencia Estrategico Nacional (QREN) through the Fundo Europeu de Desenvolvimento Regional (FEDER) [ON.2 - O Novo Norte]
  6. COST Action (European Scientific Network for Artificial Muscles, ESNAM) [MP1003]
  7. COST Action (Composites of Inorganic Nanotubes and Polymers, COINAPO) [MP0902]
  8. Fundação para a Ciência e a Tecnologia [SFRH/BD/64267/2009] Funding Source: FCT

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Thermoplastic elastomer tri-block copolymer, namely styrene butadiene styrene (SBS) composites filled with carbon nanotubes (CNT) are characterized with the main goal of obtaining electro-mechanical composites suitable for large deformation sensor applications. CNT/SBS composites with different filler contents and filler functionalizations are studied by morphological, thermal, mechanical and electrical analyses. It is shown that the different dispersion levels of CNT in the SBS matrix are achieved for pristine or functionalized CNT with strong influence in the electrical properties of the composites. In particular covalently functionalized CNTs show percolation thresholds higher than 8 weight percentage (wt%) whereas pristine CNT show percolation threshold smaller than 1 wt%. On the other hand, CNT functionalization does not alter the conduction mechanism which is related to hopping between the CNT for concentrations higher than the percolation threshold. Pristine single and multiwall CNT within the SBS matrix allow the preparation of composites with electro-mechanical properties appropriate for strain sensors for deformations up to 5% of strain, the gauge factor varying between 2 and 8. Composites close to the percolation threshold show larger values of the gauge factor. (C) 2014 Elsevier Ltd. All rights reserved.

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