Zhao Weiyi, Zhang Yunlei, Zhao Xiaoduo, Ji Zhongying, Ma Zhengfeng, Gao Xiangsheng, Ma Shuanhong, Wang Xiaolong, Zhou Feng
State Key Laboratory of Solid Lubrication, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou 730000, China.
College of Materials Science and Opto-Electronic Technology, University of Chinese Academy of Sciences, Beijing 100049, China.
ACS Appl Mater Interfaces. 2022 Feb 23;14(7):9899-9908. doi: 10.1021/acsami.1c24439. Epub 2022 Feb 9.
Natural articular cartilages show extraordinary tribological performance based on their penetrated surface lubricated biomacromolecules and good mechanical tolerance. Hydrogels are considered to be potential alternatives to cartilages due to their low surface friction and good biocompatibility, although the poor mechanical properties limited their applications. Inspired by the excellent mechanical properties and the remarkable surface lubrication mechanism of natural articular cartilages, one kind of cartilage-like composite material with a lubrication phase (Composite-LP) was developed by chemically grafting a thick hydrophilic polyelectrolyte brush layer onto the subsurface of a three-dimensional manufactured elastomer scaffold-hydrogel composite architecture. The Composite-LP exhibited good load-bearing capacities because of the nondissipation strategy and the stress dispersion mechanism resulting from the elastomer scaffold enhancement. In the presence of the top lubrication layer, the Composite-LP showed superior friction reduction functionality and wear resistance under a dynamic shearing process. This design concept of coupling the non-dissipative mechanism and interface lubrication provides a new avenue for developing cartilage-like hydrogels and soft robots.
天然关节软骨基于其渗透表面润滑生物大分子和良好的机械耐受性,表现出卓越的摩擦学性能。水凝胶因其低表面摩擦力和良好的生物相容性,被认为是软骨的潜在替代品,尽管其较差的力学性能限制了它们的应用。受天然关节软骨优异力学性能和显著表面润滑机制的启发,通过将厚的亲水性聚电解质刷层化学接枝到三维制造的弹性体支架 - 水凝胶复合结构的次表面,开发了一种具有润滑相的类软骨复合材料(Composite-LP)。由于非耗散策略和弹性体支架增强导致的应力分散机制,Composite-LP表现出良好的承载能力。在顶部润滑层存在的情况下,Composite-LP在动态剪切过程中表现出优异的减摩功能和耐磨性。这种将非耗散机制与界面润滑相结合的设计理念为开发类软骨水凝胶和软机器人提供了一条新途径。