School of Chemical Engineering and Technology, School of Materials Science and Physics, School of Mechatronic Engineering, China University of Mining and Technology, Xuzhou221116, China.
State Key Laboratory of Solid Lubrication, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou730000, China.
ACS Appl Mater Interfaces. 2022 Nov 23;14(46):52347-52358. doi: 10.1021/acsami.2c13641. Epub 2022 Nov 9.
Natural articular cartilages exhibit extraordinary lubricating properties and excellent load-bearing capacity based on their penetrated surface lubricated biomacromolecules and gradient-oriented hierarchical structure. Hydrogels are considered as the most promising cartilage replacement materials due to their excellent flexibility, good biocompatibility, and low friction coefficient. However, the construction of high-strength, low-friction hydrogels to mimic cartilage is still a great challenge. Here, inspired by the structure and functions of natural articular cartilage, anisotropic hydrogels with horizontal and vertical orientation structure were constructed layer by layer and bonded with each other, successfully developing a bilayer oriented heterogeneous hydrogel with a high load-bearing capacity, low friction, and excellent fatigue resistance. The bilayer hydrogel exhibited a high compressive strength of 5.21 ± 0.45 MPa and a compressive modulus of 4.06 ± 0.31 MPa due to the enhancement mechanism of the anisotropic structure within the bottom anisotropic hydrogel. Moreover, based on the synergistic effect of the high load-bearing capacity of the bottom layer and the lubrication of the surface layer, the bilayer hydrogel possesses excellent biotribological properties in hard/soft (0.032) and soft/soft (0.028) contact, which is close to that of natural cartilage. It is worth noting that the bilayer oriented heterogeneous hydrogel is able to withstand repeated loading without fatigue crack. Therefore, this work could open up a new avenue for constructing cartilage-like materials with both high strength and low friction.
天然关节软骨具有卓越的润滑性能和优异的承载能力,这归因于其渗透表面的润滑生物大分子和梯度取向的分层结构。水凝胶因其优异的柔韧性、良好的生物相容性和低摩擦系数而被认为是最有前途的软骨替代材料。然而,构建具有高强度、低摩擦的水凝胶来模拟软骨仍然是一个巨大的挑战。在这里,受天然关节软骨结构和功能的启发,我们逐层构建了具有水平和垂直取向结构的各向异性水凝胶,并将它们相互结合,成功开发出了一种具有高承载能力、低摩擦和优异耐疲劳性的双层各向异性异质水凝胶。由于底层各向异性水凝胶内的各向异性结构的增强机制,双层水凝胶表现出 5.21 ± 0.45 MPa 的高压缩强度和 4.06 ± 0.31 MPa 的压缩模量。此外,基于底层高承载能力和表面层润滑的协同效应,双层水凝胶在硬/软(0.032)和软/软(0.028)接触中具有出色的生物摩擦学性能,接近天然软骨。值得注意的是,双层各向异性异质水凝胶能够承受反复加载而不会产生疲劳裂纹。因此,这项工作为构建具有高强度和低摩擦的类似软骨材料开辟了新途径。