Zhu Chao Nan, Bai Tianwen, Wang Hu, Ling Jun, Huang Feihe, Hong Wei, Zheng Qiang, Wu Zi Liang
Key Laboratory of Macromolecular Synthesis and Functionalization of Ministry of Education Department of Polymer Science and Engineering, Zhejiang University, Hangzhou, 310027, China.
State Key Laboratory of Chemical Engineering, Center for Chemistry of High-Performance & Novel Materials, Department of Chemistry, Zhejiang University, Hangzhou, 310027, China.
Adv Mater. 2021 Jul;33(29):e2102023. doi: 10.1002/adma.202102023. Epub 2021 Jun 3.
Materials capable of shape-morphing and/or fluorescence imaging have practical significances in the fields of anti-counterfeiting, information display, and information protection. However, it's challenging to realize these functions in hydrogels due to the poor mechanical properties and lack of tunable fluorescence. A tough hydrogel with good shape-memory ability and phototunable fluorescence is reported here, which affords reprogrammable shape designing and information encoding for dual-encryption. This hydrogel is prepared by incorporating donor-acceptor chromophore units into a poly(1-vinylimidazole-co-methacrylic acid) network, in which the dense intra- and interchain hydrogen bonds lead to desirable features including high stiffness, high toughness, and temperature-mediated shape-memory property. Additionally, the hydrogel shows photomediated tunable fluorescence through a unimer-to-dimer transformation of the chromophores. By combining photolithography and origami/kirigami designs, hydrogel sheets encoded with fluorescent patterns can deform into specific 3D configurations. The geometrically encrypted fluorescent information in the architected hydrogels is readable only after sequential shape recovery and UV light irradiation. As demonstrated by proof-of-concept experiments, both the fluorescent pattern and the 3D configuration are reprogrammable, facilitating repeated information protection and display. The design of tough hydrogels with rewritable fluorescent patterns and reconfigurable shapes should guide the future development of smart materials with improved security and wider applications in aqueous environments.
具有形状变形和/或荧光成像功能的材料在防伪、信息显示和信息保护领域具有实际意义。然而,由于水凝胶的机械性能较差且缺乏可调节的荧光,要在水凝胶中实现这些功能具有挑战性。本文报道了一种具有良好形状记忆能力和光可调荧光的坚韧水凝胶,它为双重加密提供了可重新编程的形状设计和信息编码。这种水凝胶是通过将供体-受体发色团单元引入聚(1-乙烯基咪唑-共-甲基丙烯酸)网络中制备的,其中密集的链内和链间氢键导致了包括高刚度、高韧性和温度介导的形状记忆特性等理想特性。此外,水凝胶通过发色团的单分子到二聚体转变表现出光介导的可调荧光。通过结合光刻和折纸/剪纸设计,编码有荧光图案的水凝胶片可以变形为特定的3D构型。只有在依次进行形状恢复和紫外光照射后,结构化水凝胶中的几何加密荧光信息才可读。如概念验证实验所示,荧光图案和3D构型都是可重新编程的,有助于重复的信息保护和显示。具有可重写荧光图案和可重构形状的坚韧水凝胶的设计应指导未来智能材料的发展,以提高安全性并在水性环境中具有更广泛的应用。