Xu Zhengyu, Chen Yanru, Cao Yi, Xue Bin
Collaborative Innovation Center of Advanced Microstructures, National Laboratory of Solid State Microstructure, Department of Physics, Nanjing University, Nanjing 210093, China.
Jinan Microecological Biomedicine Shandong Laboratory, Jinan 250000, China.
Int J Mol Sci. 2024 Feb 26;25(5):2675. doi: 10.3390/ijms25052675.
Load-bearing biological tissues, such as cartilage and muscles, exhibit several crucial properties, including high elasticity, strength, and recoverability. These characteristics enable these tissues to endure significant mechanical stresses and swiftly recover after deformation, contributing to their exceptional durability and functionality. In contrast, while hydrogels are highly biocompatible and hold promise as synthetic biomaterials, their inherent network structure often limits their ability to simultaneously possess a diverse range of superior mechanical properties. As a result, the applications of hydrogels are significantly constrained. This article delves into the design mechanisms and mechanical properties of various tough hydrogels and investigates their applications in tissue engineering, flexible electronics, and other fields. The objective is to provide insights into the fabrication and application of hydrogels with combined high strength, stretchability, toughness, and fast recovery as well as their future development directions and challenges.
承重生物组织,如软骨和肌肉,具有几个关键特性,包括高弹性、强度和可恢复性。这些特性使这些组织能够承受巨大的机械应力,并在变形后迅速恢复,从而使其具有出色的耐久性和功能性。相比之下,水凝胶虽然具有高度的生物相容性,并有望成为合成生物材料,但其固有的网络结构往往限制了它们同时具备多种优异机械性能的能力。因此,水凝胶的应用受到了极大的限制。本文深入探讨了各种坚韧水凝胶的设计机制和机械性能,并研究了它们在组织工程、柔性电子等领域的应用。目的是深入了解具有高强度、拉伸性、韧性和快速恢复性的水凝胶的制备和应用,以及它们未来的发展方向和挑战。