Yang Wenjie, Zheng Chenglin, Sun Li, Bie Zhiying, Yue Yuchen, Li Xiuhong, Sun Wentao, Ikeda Tomiki, Wang Jingxia, Jiang Lei
CAS Key Laboratory of Bio-inspired Materials and Interfacial Science, Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, Beijing, 100190, China.
Center of Materials Science and Optoelectronics Engineering, School of Future Technology, University of Chinese Academy of Sciences, Beijing, 101407, China.
Adv Mater. 2025 Jan;37(4):e2411988. doi: 10.1002/adma.202411988. Epub 2024 Nov 19.
Blue phase liquid crystals (BPLCs) have exhibited promising applications in 3D flexible displays due to their molecular-level self-assembled chiral structures, fast response, and tunable polarized colors. However, there remain challenges for spatiotemporal programming of 3D chiral color units for BPLC dynamic patterning. Herein, the programmable temporal evolution of micrometer-scale color units and spatial configuration switch of chiral modes are achieved by spontaneous ink diffusion-driven asymmetric lattice deformation in dual-chiral polymer-templated blue phases. Custom-printed colorful patterns are designed by machine learning-assisted parameter optimization, which displays programmable multidimensional encrypted information that incorporates temporal evolving colors (wavelength), spatial distribution (depth), chiral modes (L/R). The quantitative relationship between ink diffusion kinetics and blue-phase dynamic 3D structural optics is established by in situ characterization, finite element analysis, and mathematical geometry modeling. This work provides insights into the microgeometric manipulation of 3D chiral color of BPLCs in the application of information security and self-adaptive indicators.
蓝相液晶(BPLCs)由于其分子水平的自组装手性结构、快速响应和可调节的偏振颜色,在3D柔性显示器中展现出了广阔的应用前景。然而,对于BPLC动态图案化的3D手性颜色单元的时空编程仍存在挑战。在此,通过双手性聚合物模板化蓝相中的自发墨水扩散驱动的不对称晶格变形,实现了微米级颜色单元的可编程时间演化和手性模式的空间构型切换。通过机器学习辅助的参数优化设计了定制印刷的彩色图案,其显示了包含时间演化颜色(波长)、空间分布(深度)、手性模式(左旋/右旋)的可编程多维加密信息。通过原位表征、有限元分析和数学几何建模,建立了墨水扩散动力学与蓝相动态3D结构光学之间的定量关系。这项工作为BPLCs的3D手性颜色在信息安全和自适应指示器应用中的微观几何操纵提供了见解。