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Polymer Composites with Self-Regulating Temperature Behavior: Properties and Characterization. | LitMetric

AI Article Synopsis

  • A novel conductive composite made from a mix of HDPE and LLDPE with carbon black and graphite demonstrated comparable or superior electrical properties compared to a traditional HDPE composite with similar fillers, despite having a lower overall concentration of conductive material.
  • Testing showed that the new composite had better performance during thermal cycling, exhibiting less resistance increase and diminished negative temperature coefficient (NTC) effects, especially when radiation crosslinking was applied.
  • The physical mixing method used for creating this composite was found to be more effective in achieving lower resistivity in solid state and enhancing positive temperature coefficient (PTC) effects, suggesting that future research should focus on optimizing the preparation techniques and material properties.

Article Abstract

A novel conductive composite material with homogeneous binary polymer matrix of HDPE (HD) and LLDPE (LLD), mixed with conductive filler consisting of carbon black (CB) and graphite (Gr), was tested against a HDPE composite with a similar conductive filler. Even the concentration of the conductive filler was deliberately lower for (CB + Gr)/(LLD + HD), and the properties of this composite are comparable or better to those of (CB + Gr)/HD. The kinetic parameters of the ρ-T curves and from the DSC curves indicate that the resistivity peak is obtained when the polymer matrix is fully melted. When subjected to repeated thermal cycles, the composite (CB + Gr)/(LLD + HD) presented a better electrical behavior than composite CB + Gr)/HD, with an increase in resistivity (ρ) values with the number of cycles, as well as less intense NTC () effects, both for the crosslinked and thermoplastic samples. Radiation crosslinking led to increased ρ values, as well as to inhibition of NTC effects in both cases, thus having a clear beneficial effect. Limitation effects of surface temperature and current intensity through the sample were observed at different voltages, enabling the use of these materials as self-regulating heating elements at various temperatures below the melting temperature. The procedure based on physical mixing of the components appears more efficient in imparting lower resistivity in solid state and high PTC () effects to the composites. This effect is probably due to the concentration of the conductive particles at the surface of the polymer domains, which would facilitate the formation of the conductive paths. Further work is still necessary to optimize both the procedure of composite preparation and the properties of such materials.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9821334PMC
http://dx.doi.org/10.3390/ma16010157DOI Listing

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