4.6 Article

Alignment of carbon iron into polydimethylsiloxane to create conductive composite with low percolation threshold and high piezoresistivity: experiment and simulation

Journal

SMART MATERIALS AND STRUCTURES
Volume 26, Issue 4, Pages -

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/1361-665X/aa62d2

Keywords

conductive composite; polydimethylsiloxane; carbon iron; alignment; percolation threshold; piezoresistivity

Funding

  1. National Nature Science Foundation of the People's Republic of China [11572320]
  2. Chongqing City Basic and Frontier Research Project [cstc2015jcyjBX0135]
  3. Anhui Provincial Natural Science Foundation [1608085ME96]
  4. Changzhou applied basic research program [CJ20159005]

Ask authors/readers for more resources

In this study, various amounts of carbonyl iron particles 9CIPs) were cured into polydimethylsiloxane 9PDMS) matrix under a magnetic field up to 1.0 T to create anisotropy of conductive composite materials. The electrical resistivity for the longitudinal direction was measured as a function of filler volume fraction to understand the electrical percolation behavior. The electrical percolation threshold 9EPT) of CIPs-PDMS composite cured under a magnetic field can be as low as 0.1 vol%, which is much less than most of those studies in particulate composites. Meanwhile, the effects of compressive strain on the electrical properties of CIPs-PDMS composites were also investigated. The strain sensitivity depends on filler volume fraction and decreases with the increasing of compressive strain. It has been found that the composites containing a small amount of CI particles curing under a magnetic field exhibit a high strain sensitivity of over 150. Based on the morphological observation of the composite structures, a two-dimensional stick percolation model for the CIPs-PDMS composites has been established. The Monte Carlo simulation is performed to obtain the percolation probability. The simulation results in prediction of the values of EPTs are close to that of experimental measurements. It demonstrates that the low percolation behavior of CIPs-PDMS composites is due to the average length of particle chains forming by external magnetic field.

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