Park Nuri, Kim Jaeyun
School of Chemical Engineering, Sungkyunkwan University (SKKU), Suwon 16419, Republic of Korea.
Department of Health Sciences and Technology, Samsung Advanced Institute for Health Science & Technology (SAIHST), Sungkyunkwan University (SKKU), Suwon 16419, Republic of Korea.
ACS Appl Mater Interfaces. 2022 Jan 26;14(3):4479-4489. doi: 10.1021/acsami.1c18989. Epub 2021 Dec 31.
Owing to their anisotropic and hierarchical structure, tendons exhibit an outstanding mechanical performance despite the low polymer concentration and softness of the constituent materials. Here, we propose a tendon-mimicking, strong, and tough hydrogel with a multiscale hierarchical and anisotropic structure. An isotropic, precursor double-network hydrogel is transformed into an anisotropic hydrogel by stretching, solvent exchange, and subsequent fixation via ionic crosslinking. Solvent exchange induces densification of the stretched polymer network, enhancement of linear alignment of polymer chains, and microphase separation, leading to anisotropic toughening of the hydrogel. The resulting anisotropic hydrogels show high strength and toughness, which vary over a wide range (1.2-3.3 MPa of strength and 4.9-8.8 MJ/m of toughness, respectively), controlled by the degree of pre-stretching. Furthermore, a hierarchical architecture is constructed by braiding the anisotropic hydrogel strands into a rope, resulting in an improved mechanical performance (4.7 MPa of strength in a four-strand hydrogel rope) compared to separated unbraided strands of a hydrogel (2.3 MPa of strength). The higher hierarchical hydrogel cable, prepared by braiding four hydrogel ropes, can withstand a heavy load even up to 13 kg. These results represent that a hierarchical assembly of anisotropic hydrogels exhibits high mechanical performance and a hierarchically anisotropic structure, which are reminiscent of tendons.
由于其各向异性和分级结构,尽管组成材料的聚合物浓度低且质地柔软,肌腱仍表现出出色的力学性能。在此,我们提出一种具有多尺度分级和各向异性结构的仿肌腱、高强度且坚韧的水凝胶。通过拉伸、溶剂交换以及随后的离子交联固定,将各向同性的前体双网络水凝胶转变为各向异性水凝胶。溶剂交换导致拉伸的聚合物网络致密化、聚合物链线性排列增强以及微相分离,从而使水凝胶实现各向异性增韧。所得的各向异性水凝胶表现出高强度和韧性,其强度和韧性分别在较宽范围内变化(强度为1.2 - 3.3兆帕,韧性为4.9 - 8.8兆焦/立方米),可通过预拉伸程度进行控制。此外,通过将各向异性水凝胶股编织成绳索构建分级结构,与分离的未编织水凝胶股(强度为2.3兆帕)相比,力学性能得到改善(四股水凝胶绳索强度为4.7兆帕)。由四股水凝胶绳索编织而成的更高层次的水凝胶缆绳甚至能够承受高达13千克的重物。这些结果表明,各向异性水凝胶的分级组装展现出高力学性能和分级各向异性结构,这让人联想到肌腱。