Separating Charge Centers of Chain Segments in Dielectric Elastomer through Steric Hindrance Engineering.

Macromol Rapid Commun

Institute of Emergent Elastomers, Guangdong Basic Research Center of Excellence for Energy & Information Polymer Materials, School of Materials Science and Engineering, South China University of Technology, Guangzhou, Guangdong, 510640, China.

Published: September 2024

AI Article Synopsis

  • - The study suggests that separating the positive and negative charge centers in dielectric elastomers (DEs) can enhance their properties without the downsides of traditional methods that use polar handles, leading to a higher dielectric constant.
  • - A new technique called steric hindrance engineering is introduced, where specific building blocks are incorporated into DE networks to create fixed angles between chain segments, effectively separating their charge centers.
  • - Experiments reveal that adding just a small amount (about 5 mol%) of these building blocks results in a significant increase (around 50%) in the dielectric constant (ε') while keeping the dielectric loss (tan δ) very low (around 0.006 at 1 kHz).

Article Abstract

Theoretically, separating the positive and negative charge centers of the chain segments of dielectric elastomers (DEs) is a viable alternative to the conventional decoration of chain backbone with polar handles, since it can dramatically increase the dipole vector and hence the dielectric constant (ε') of the DEs while circumvent the undesired impact of the decorated polar handles on the dielectric loss (tan δ). Herein, a novel and universal method is demonstrated to achieve effective separation of the charge centers of chain segments in homogeneous DEs by steric hindrance engineering, i.e., by incorporating a series of different included angle-containing building blocks into the networks. Both experimental and simulation results have shown that the introduction of these building blocks can create a spatially fixed included angle between two adjacent chain segments, thus separating the charge center of the associated region. Accordingly, incorporating a minimal amount of these building blocks (≈5 mol%) can lead to a considerably sharp increase (≈50%) in the ε' of the DEs while maintaining an extremely low tan δ (≈0.006@1 kHz), indicating that this methodology can substantially optimize the dielectric performance of DEs based on a completely different mechanism from the established methods.

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Source
http://dx.doi.org/10.1002/marc.202400295DOI Listing

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