State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, Institute of Functional Materials, College of Materials Science and Engineering, Research Base of Textile Materials for Flexible Electronics and Biomedical Applications (China Textile Engineering Society), Shanghai Engineering Research Center of Nano-Biomaterials and Regenerative Medicine, Donghua University, Shanghai, 201620, P. R. China.
College of Biological Science and Medical Engineering, Donghua University, Shanghai, 201620, P. R. China.
Adv Mater. 2024 Nov;36(44):e2406480. doi: 10.1002/adma.202406480. Epub 2024 Sep 12.
Cephalopod skins evolve multiple functions in response to environmental adaptation, encompassing nonlinear mechanoreponse, damage tolerance property, and resistance to seawater. Despite tremendous progress in skin-mimicking materials, the integration of these desirable properties into a single material system remains an ongoing challenge. Here, drawing inspiration from the structure of reflectin proteins in cephalopod skins, a long-term anti-salt elastomer with skin-like nonlinear mechanical properties and extraordinary damage resistance properties is presented. Cation-π interaction is incorporated to induce the geometrically confined nanophases of hydrogen bond domains, resulting in elastomers with exceptional true tensile strength (456.5 ± 68.9 MPa) and unprecedently high fracture energy (103.7 ± 45.7 kJ m). Furthermore, the cation-π interaction effectively protects the hydrogen bond domains from corrosion by high-concentration saline solution. The utilization of the resultant skin-like elastomer has been demonstrated by aquatic soft robotics capable of grasping sharp objects. The combined advantages render the present elastomer highly promising for salt enviroment applications, particularly in addressing the challenges posed by sweat, in vivo, and harsh oceanic environments.
头足类动物的皮肤通过环境适应进化出多种功能,包括非线性机械响应、损伤容忍特性和耐海水性。尽管在皮肤模拟材料方面取得了巨大进展,但将这些理想特性集成到单个材料系统中仍然是一个持续的挑战。在这里,受头足类动物皮肤中反射蛋白结构的启发,提出了一种具有皮肤样非线性机械性能和非凡耐损伤性的长效抗盐弹性体。引入阳离子-π 相互作用来诱导氢键域的几何受限纳米相,从而得到具有优异的真实拉伸强度(456.5 ± 68.9 MPa)和前所未有的高断裂能(103.7 ± 45.7 kJ m)的弹性体。此外,阳离子-π 相互作用有效地保护氢键域免受高浓度盐溶液的腐蚀。通过能够抓取尖锐物体的水生软体机器人展示了所得到的类皮肤弹性体的应用。这些综合优势使得这种弹性体在盐环境应用中具有很高的应用前景,特别是在解决体内汗液、恶劣海洋环境等方面的挑战。