Research Institute for Electronics and Photonics, National Institute of Advanced Industrial Science and Technology (AIST), Tsukuba, Japan.
Biomedical Research Institute, AIST, Tsukuba, Japan.
Nat Commun. 2021 Feb 4;12(1):787. doi: 10.1038/s41467-021-21036-3.
Nematic liquid crystal elastomers (N-LCE) exhibit intriguing mechanical properties, such as reversible actuation and soft elasticity, which manifests as a wide plateau of low nearly-constant stress upon stretching. N-LCE also have a characteristically slow stress relaxation, which sometimes prevents their shape recovery. To understand how the inherent nematic order retards and arrests the equilibration, here we examine hysteretic stress-strain characteristics in a series of specifically designed main-chain N-LCE, investigating both macroscopic mechanical properties and the microscopic nematic director distribution under applied strains. The hysteretic features are attributed to the dynamics of thermodynamically unfavoured hairpins, the sharp folds on anisotropic polymer strands, the creation and transition of which are restricted by the nematic order. These findings provide a new avenue for tuning the hysteretic nature of N-LCE at both macro- and microscopic levels via different designs of polymer networks, toward materials with highly nonlinear mechanical properties and shape-memory applications.
向列相液晶弹性体(Nematic Liquid Crystal Elastomers,N-LCE)表现出有趣的机械性能,如可逆驱动和柔软弹性,这表现为在拉伸时呈现出宽的低几乎恒定应力平台。N-LCE 还具有特征性的缓慢应力松弛,这有时会阻止它们的形状恢复。为了了解固有向列序如何延迟和阻止平衡,我们在这里研究了一系列专门设计的主链 N-LCE 中的滞后应力-应变特性,同时研究了宏观机械性能和在施加应变下的微观向列指向分布。滞后特征归因于热力学不利发夹的动力学,即各向异性聚合物链上的急剧褶皱,其形成和转变受到向列序的限制。这些发现为通过聚合物网络的不同设计在宏观和微观水平上调节 N-LCE 的滞后性质提供了新途径,从而获得具有高度非线性机械性能和形状记忆应用的材料。