Liu Yuan, Ma Jiazhe, Yang Yanzhao, Valenzuela Cristian, Zhang Xuan, Wang Ling, Feng Wei
School of Materials Science and Engineering Tianjin University Tianjin China.
Binhai Industrial Research Institute Tianjin University Tianjin China.
Smart Mol. 2024 Feb 29;2(1):e20230025. doi: 10.1002/smo.20230025. eCollection 2024 Mar.
Smart chiral liquid crystal elastomers are a class of soft photonic crystals with periodic nanostructures. There are two kinds of chiral liquid crystal elastomers with structural colors: cholesteric liquid crystal elastomers with a one-dimensional helical nanostructure and blue-phase liquid crystal elastomers with a three-dimensional photonic crystal nanostructure. The self-assembled nanostructure of chiral liquid crystal elastomers can be dynamically controlled under external stimulation, and the reflected color can be adjusted throughout the visible light range. Along with the development of innovative material systems and cutting-edge manufacturing technologies, researchers have proposed diverse strategies to design and synthesize chiral liquid crystal elastomers and have thoroughly investigated their properties and potential applications. Here, we provide a systematic review of the progress in the design and fabrication of smart chiral liquid crystal elastomers, focusing on the cholesteric liquid crystal elastomers via surface-enforced alignment, bar coating, 3D printing, anisotropic deswelling methods as well as the three-dimensional self-assembly of blue-phase liquid crystal elastomers without additional alignment. Smart chiral liquid crystal elastomers are able to respond quickly to external stimuli and have a wide range of applications in areas such as adaptive optics, color-changing camouflage, soft robotics, and information encryption. This review concludes with a perspective on the opportunities and challenges for the future development of smart chiral liquid crystal elastomers.
智能手性液晶弹性体是一类具有周期性纳米结构的软光子晶体。有两种具有结构色的手性液晶弹性体:具有一维螺旋纳米结构的胆甾相液晶弹性体和具有三维光子晶体纳米结构的蓝相液晶弹性体。手性液晶弹性体的自组装纳米结构可以在外部刺激下动态控制,并且反射颜色可以在整个可见光范围内调节。随着创新材料系统和前沿制造技术的发展,研究人员提出了多种设计和合成手性液晶弹性体的策略,并对其性能和潜在应用进行了深入研究。在此,我们对手性液晶弹性体的设计和制造进展进行了系统综述,重点关注通过表面强制取向、条涂、3D打印、各向异性去溶胀方法制备的胆甾相液晶弹性体,以及无需额外取向的蓝相液晶弹性体的三维自组装。智能手性液晶弹性体能够快速响应外部刺激,并在自适应光学、变色伪装、软机器人和信息加密等领域有广泛应用。本文最后展望了智能手性液晶弹性体未来发展的机遇和挑战。