Understanding the effect of liquid crystal content on the phase behavior and mechanical properties of liquid crystal elastomers.

Barnes, Morgan; Cetinkaya, Sueda; Ajnsztajn, Alec; Verduzco, Rafael · Soft Matter · 2022

basic_science · Level V

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Abstract

Liquid crystal elastomers are stimuli-responsive, shape-shifting materials. They typically require high temperatures for actuation which prohibits their use in many applications, such as biomedical devices. In this work, we demonstrate a simple and general approach to tune the order-to-disorder transition temperature (<i>T</i><sub>ODT</sub>) or nematic-to-isotropic transition temperature (<i>T</i><sub>NI</sub>) of LCEs through variation of the overall liquid crystal mass content. We demonstrate reduction of the <i>T</i><sub>NI</sub> in nematic LCEs through the incorporation of non-mesogenic linkers or the addition of lithium salts, and show that the <i>T</i><sub>NI</sub> varies linearly with liquid crystal mass content over a broad range, approximately 50 °C. We also analyze data from prior reports that include three different mesogens, different network linking chemistries, and different alignment strategies, and show that the linear trend in <i>T</i><sub>ODT</sub> with liquid crystal mass content also holds for these systems. Finally, we demonstrate a simple approach to quantifying the maximum actuation strain through measurement of the soft elastic plateau and demonstrate applications of nematic LCEs with low <i>T</i><sub>ODT</sub>s, including the first body-responsive LCE that curls around a human finger due to body heat, and a fluidic channel that directionally pumps liquid when heated.