Guo Hongshuang, Liang Chen, Ruoko Tero-Petri, Meteling Henning, Peng Bo, Zeng Hao, Priimagi Arri
Faculty of Engineering and Natural Sciences, Tampere University P.O. Box 541, 33101, Tampere, Finland.
Department of Applied Physics, Aalto University P.O. Box 15100, 02150, Espoo, Finland.
Angew Chem Int Ed Engl. 2023 Oct 23;62(43):e202309402. doi: 10.1002/anie.202309402. Epub 2023 Sep 19.
Shape-changing polymeric materials have gained significant attention in the field of bioinspired soft robotics. However, challenges remain in versatilizing the shape-morphing process to suit different tasks and environments, and in designing systems that combine reversible actuation and self-healing ability. Here, we report halogen-bonded liquid crystal elastomers (LCEs) that can be arbitrarily shape-programmed and that self-heal under mild thermal or photothermal stimulation. We incorporate halogen-bond-donating diiodotetrafluorobenzene molecules as dynamic supramolecular crosslinks into the LCEs and show that these relatively weak crosslinks are pertinent for their mechanical programming and self-healing. Utilizing the halogen-bonded LCEs, we demonstrate proof-of-concept soft robotic motions such as crawling and rolling with programmed velocities. Our results showcase halogen bonding as a promising, yet unexplored tool for the preparation of smart supramolecular constructs for the development of advanced soft actuators.
形状可变的聚合物材料在受生物启发的软机器人领域受到了广泛关注。然而,在使形状变形过程通用化以适应不同任务和环境,以及设计结合可逆驱动和自愈能力的系统方面,仍然存在挑战。在此,我们报道了一种卤素键合液晶弹性体(LCE),它可以进行任意形状编程,并在温和的热或光热刺激下实现自愈。我们将作为动态超分子交联剂的卤素键供体二碘四氟苯分子引入到LCE中,并表明这些相对较弱的交联对于其机械编程和自愈至关重要。利用这种卤素键合LCE,我们展示了概念验证的软机器人运动,如以编程速度爬行和滚动。我们的结果表明,卤素键是一种有前景但尚未被探索的工具,可用于制备智能超分子结构,以开发先进的软致动器。