Amino acid-induced rapid gelation and mechanical reinforcement of hydrogels with low-hysteresis and self-recoverable and fatigue-resistant properties

自愈水凝胶 材料科学 磁滞 激进的 氢键 聚合 自愈 钢筋 聚合物 氨基酸 复合材料 化学工程 高分子化学 化学 有机化学 分子 生物化学 物理 替代医学 病理 量子力学 医学 工程类
作者
Xingqi Luo,Zhaoyang Yuan,Xiangyan Xie,Yuanjie Xie,Hongyi Lv,Jin Zhao,Hao Wang,Yuanji Gao,Lijuan Zhao,Yi Wang,Jinrong Wu
出处
期刊:Materials horizons [Royal Society of Chemistry]
卷期号:10 (10): 4303-4316 被引量:32
标识
DOI:10.1039/d3mh00483j
摘要

Hydrogels with rapid gelation ability and robust mechanical properties are highly desirable for nascent applications in biomedical, wearable electronic, industrial and agricultural fields. However, current rapid-gelation hydrogels are compromised by poor mechanical properties, complex design of precursor molecular structures and limited precursor species. Herein, we propose a facile and universal strategy to achieve rapid gelation, strengthening and toughening of free-radical polymerized hydrogels by introducing cheap and accessible amino acids. Amino acids not only activate persulfate to quickly produce free radicals and thus induce fast free radical polymerization, but also can form strong hydrogen bonds with the network chains to strengthen and toughen the hydrogels. For example, with the presence of L-serine, the acrylamide (AM) monomer shows rapid gelation within tens of seconds, and moreover the resulting hydrogel reaches a tensile strength of 0.45 MPa and a breaking strain of 2060%. More importantly, owing to the extremely dynamic feature of the hydrogen bonds between L-serine molecules and network chains, the hydrogel possesses the advantages of low hysteresis, rapid self-recovery capability and outstanding fatigue resistance. Furthermore, this strategy is general to a wide range of amino acids and monomers. We also demonstrate that this rapid, controllable and universal strategy for the fabrication of mechanically robust hydrogels holds tremendous potential for diverse practical applications, such as flexible electronic sensors and ultraviolet (UV)-blocking artificial skins.
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