He Jialei, Hara Mitsuo, Ohnuki Ryosuke, Yoshioka Shinya, Ikai Tomoyuki, Takeoka Yukikazu
Department of Molecular & Macromolecular Chemistry, Graduate School of Engineering, Nagoya University, Furo-cho, Chikusa-ku, Nagoya 464-8603, Japan.
Department of Physics and Astronomy, Faculty of Science and Technology, Tokyo University of Science, Yamazaki, Noda 278-8510, Japan.
ACS Appl Mater Interfaces. 2024 Aug 21;16(33):43991-44003. doi: 10.1021/acsami.4c08331. Epub 2024 Jul 25.
The development of materials with circularly polarized luminescence (CPL) properties is a promising but challenging frontier in advanced materials science. Modulating the chiral properties of chiral polymers has also been a focus of research. Studies have been conducted to control the ground-state chirality of chiral polymers by adjusting the concentration of the chiral dopant. However, the chirality inversion of CPL of fluorescent liquid crystal particles by chiral dopant concentration has not been reported. Here, we report the preparation of fluorescent cholesteric liquid crystal (FCLC) particles that display polarizable structural color and CPL, demonstrating how varying the chiral dopant amount can reverse the CPL direction, leading to systems where the rotation directions of polarizable structural color and CPL either align or differ. This study confirmed the critical role played by the formation of the twist grain boundary phase in inducing the inversion of the ground-state chirality of FCLC particles and, subsequently, triggering the inversion process of CPL chirality. Furthermore, it leverages chiral structural color and fluorescence of FCLC particles to develop a sophisticated dual verification system. This system, utilizing both circularly polarized light and fluorescence, offers enhanced anticounterfeiting protection for high-value items.
开发具有圆偏振发光(CPL)特性的材料是先进材料科学中一个充满前景但具有挑战性的前沿领域。调节手性聚合物的手性性质也是研究的一个重点。人们已经开展了相关研究,通过调节手性掺杂剂的浓度来控制手性聚合物的基态手性。然而,尚未有关于手性掺杂剂浓度导致荧光液晶颗粒CPL手性反转的报道。在此,我们报告了可显示偏振结构色和CPL的荧光胆甾相液晶(FCLC)颗粒的制备,展示了改变手性掺杂剂的量如何能反转CPL方向,从而导致可偏振结构色和CPL的旋转方向要么对齐要么不同的体系。本研究证实了扭曲晶界相的形成在诱导FCLC颗粒基态手性反转以及随后触发CPL手性反转过程中所起的关键作用。此外,它利用FCLC颗粒的手性结构色和荧光开发了一种精密的双重验证系统。该系统利用圆偏振光和荧光,为高价值物品提供了增强的防伪保护。