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通过压延制备的高度取向仿生水凝胶

Highly Oriented Bio-Mimetic Hydrogels by Calendering.

作者信息

Liu Zhanqi, Wang Yuqing, Wu Haidi, Li Huamin, Tang Longcheng, Wang Guo, Zhang Daxin, Yin Jianping, Miao Yinggang, Shi Yongqian, Song Pingan, Xie An, Huang Xuewu, Gu Wancheng, Mai Yiu Wing, Gao Jiefeng

机构信息

School of Chemistry and Chemical Engineering, Yangzhou University, No 180, Road Siwangting, Yangzhou, Jiangsu, 225002, China.

Key Laboratory of Organosilicon Chemistry and Material Technology of Ministry of Education, College of Material, Chemistry and Chemical Engineering, Hangzhou Normal University, Hangzhou, 311121, China.

出版信息

Adv Sci (Weinh). 2025 Jun 19:e04778. doi: 10.1002/advs.202504778.

Abstract

Anisotropic hydrogels are promising candidates as load-bearing materials for tissue engineering, while huge challenges remain in exploring effective and scalable methods for the preparation of anisotropic hydrogels with simultaneous high tensile strength, large toughness, good fracture strain, excellent fatigue and swelling resistances. Inspired by the brick-and-mortar layered structure of nacre and the hierarchical fibril strucure of soft tissues (e.g., tendon and ligament), a facile organogel-assissted calendering strategy is reported to design anisotropic hydrogels with a highly oriented and dense fiber lamellar strucure. The synergy of shearing and annealing promotes macromolecular chain alignment and crystallinity along the calendering direction while forming a nacre-like lamellar morphology in the thickness direction. The tensile strength, elastic modulus, toughness and fracture energy of the anisotropic hydrogels can reach as high as 41.0 ± 6.4 MPa, 67.0 ± 5.1 MPa, 46.2 ± 3.3 MJ m, and 62.20 ± 8.55 kJ m, respectively. More importantly, the hydrogels show excellent crack growth and swelling resistances with the fatigue threshold increased to 2170 J m. This study provides a promising approach for fabrication of large-sized biomimetic anisotropic hydrogels with outstanding mechanical properties for biomedical and engineering applications.

摘要

各向异性水凝胶作为组织工程的承重材料具有很大潜力,然而,要探索出有效且可扩展的方法来制备同时具有高拉伸强度、大韧性、良好断裂应变、出色抗疲劳性和抗溶胀性的各向异性水凝胶,仍然面临巨大挑战。受珍珠母的砖-灰泥层状结构以及软组织(如肌腱和韧带)的分级纤维结构启发,本文报道了一种简便的有机凝胶辅助压延策略,用于设计具有高度取向且致密的纤维层状结构的各向异性水凝胶。剪切和退火的协同作用促进了大分子链沿压延方向的排列和结晶度,同时在厚度方向形成了类似珍珠母的层状形态。各向异性水凝胶的拉伸强度、弹性模量、韧性和断裂能分别可高达41.0±6.4兆帕、67.0±5.1兆帕、46.2±3.3兆焦/平方米和62.20±8.55千焦/平方米。更重要的是,这些水凝胶表现出出色的抗裂纹扩展和抗溶胀性,疲劳阈值提高到了2170焦/平方米。本研究为制备具有优异力学性能的大型仿生各向异性水凝胶用于生物医学和工程应用提供了一种有前景的方法。

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