Li Yi, Luo Chaoqian, Yu Kai, Wang Xueju
Department of Materials Science and Engineering, University of Connecticut, Storrs, Connecticut 06269, United States.
Department of Mechanical Engineering, University of Colorado Denver, Denver, Colorado 80217, United States.
ACS Appl Mater Interfaces. 2021 Feb 24;13(7):8929-8939. doi: 10.1021/acsami.0c21371. Epub 2021 Feb 12.
Three-dimensional (3D) mesostructures are gaining rapidly growing interest due to their potential applications in a broad range of areas. Despite intensive studies, remotely controlled, reversible, on-demand assembly and reconfiguration of 3D mesostructures, which are desired for many applications, including robotics, minimally invasive biomedical devices, and deployable systems, remain a challenge. Here, we introduce a facile strategy to utilize liquid crystal elastomers (LCEs), a soft polymer capable of large, reversible shape changes, as a platform for reversible assembly and programming of 3D mesostructures via compressive buckling of two-dimensional (2D) precursors in a remote and on-demand fashion. The highly stretchable, reversible shape-switching behavior of the LCE substrate, resulting from the soft elasticity of the material and the reversible nematic-isotropic transition of liquid crystal (LC) molecules upon remote thermal stimuli, provides deterministic thermal-mechanical control over the reversible assembly and reconfiguration processes. Demonstrations include experimental results and finite element simulations of 3D mesostructures with diverse geometries and material compositions, showing the versatility and reliability of the approach. Furthermore, a reconfigurable light-emitting system is assembled and morphed between its "on" and "off" status via the LCE platform. These results provide many exciting opportunities for areas from remotely programmable 3D mesostructures to tunable electronic systems.
三维(3D)介观结构因其在广泛领域的潜在应用而迅速引起越来越多的关注。尽管进行了深入研究,但对于许多应用(包括机器人技术、微创生物医学设备和可展开系统)所需的3D介观结构的远程控制、可逆、按需组装和重新配置仍然是一个挑战。在这里,我们介绍一种简便的策略,利用液晶弹性体(LCE),一种能够进行大的可逆形状变化的软聚合物,作为通过二维(2D)前驱体的压缩屈曲以远程和按需方式对3D介观结构进行可逆组装和编程的平台。LCE基板具有高度可拉伸、可逆的形状切换行为,这是由材料的软弹性以及液晶(LC)分子在远程热刺激下的可逆向列相-各向同性转变导致的,它为可逆组装和重新配置过程提供了确定性的热机械控制。演示包括对具有不同几何形状和材料成分的3D介观结构的实验结果和有限元模拟,展示了该方法的通用性和可靠性。此外,通过LCE平台组装了一个可重新配置的发光系统,并使其在“开”和“关”状态之间变形。这些结果为从远程可编程3D介观结构到可调谐电子系统等领域提供了许多令人兴奋的机会。