Jing Jiajie, Yao Bowen, Sun Wen, Chen Jiaoyang, Xu Jianhua, Fu Jiajun
School of Chemistry and Chemical Engineering, Nanjing University of Science and Technology, NO. 200, XiaoLingWei Road, Nanjing, 210094, P. R. China.
Angew Chem Int Ed Engl. 2024 Oct 14;63(42):e202410693. doi: 10.1002/anie.202410693. Epub 2024 Sep 13.
Variable stiffness materials have shown considerable application in soft robotics. However, previously reported materials often struggle to reconcile high stiffness, stretchability, toughness, and self-healing ability, because of the inherently conflicting requisite of these properties in molecular design. Herein, we propose a novel strategy that involves incorporating acid-base ionic pairs capable of from strong crosslinking sites into a dense and robust hydrogen-bonding network to construct rigid self-healing polymers with tunable stiffness and excellent toughness. To demonstrate these distinct features, the polymer was employed to serve as the strain-regulation layers within a fiber-reinforced pneumatic actuator (FPA). The exceptional synergy between the configuration versatility of FPA and the dynamic molecular behavior of the supramolecular polymers equips the actuator with simultaneous improvement in motion dexterity, multimodality, loading capacity, robustness, and durability. Additionally, the concept of integrating high dexterity at both macro- and micro-scale is prospective to inspire the design of intelligent yet robust devices across various domains.
可变刚度材料在软机器人领域已展现出可观的应用前景。然而,由于这些特性在分子设计中存在内在的冲突需求,先前报道的材料往往难以兼顾高刚度、拉伸性、韧性和自愈能力。在此,我们提出一种新颖的策略,即将能够形成强交联位点的酸碱离子对引入致密且坚固的氢键网络中,以构建具有可调刚度和优异韧性的刚性自愈聚合物。为展示这些独特特性,该聚合物被用作纤维增强气动致动器(FPA)内的应变调节层。FPA的构型多功能性与超分子聚合物的动态分子行为之间的卓越协同作用,使致动器在运动灵活性、多模态性、负载能力、坚固性和耐久性方面同时得到提升。此外,在宏观和微观尺度上整合高灵活性的概念有望启发跨领域智能且坚固设备的设计。