Wu Zhongtao, Wang Kang, Chen Jia, Chang Jiahao, Zhu Shanhui, Xie Congxia, Liu Yun, Wang Zhen, Zhang Lei
Key Laboratory of Optic-electric Sensing and Analytical Chemistry for Life Science, MOE, Shandong Key Laboratory of Biochemical Analysis, College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, Qingdao, 266042, China.
Laicheng power plant, Huadian Power International Corporation LTD, 288 Changshao North Road, Laiwu, Shandong, 271100, China.
Small. 2024 Dec;20(50):e2406163. doi: 10.1002/smll.202406163. Epub 2024 Sep 23.
The combination of multiple physical properties is of great importance for widening the application scenarios of biomaterials. It remains a great challenge to fabricate biomolecules-based fibers gaining both mechanical strength and toughness which are comparable to natural spider dragline silks. Here, by mimicking the structure of dragline silks, a high-performance fluorescent fiber Alg-TPEA-PEG is designed by non-covalently cross-linking the polysaccharide chains of alginate with AIEgen-based surfactant molecules as the flexible contact points. The non-covalent cross-linking network provides sufficient energy-dissipating slippage between polysaccharide chains, leading to Alg-TPEA-PEG with highly improved mechanical performances from the plastic strain stage. By successfully transferring the extraordinary mechanical performances of polysaccharide chains to macroscopic fibers, Alg-TPEA-PEG exhibits an outstanding breaking strength of 1.27 GPa, Young's modulus of 34.13 GPa, and toughness of 150.48 MJ m, which are comparable to those of dragline silk and outperforming other artificial materials. More importantly, both fluorescent and mechanical properties of Alg-TPEA-PEG can be well preserved under various harsh conditions, and the fluorescence and biocompatibility facilitate its biological and biomedical applications. This study affords a new biomimetic designing strategy for gaining super-strong, super-stiff, and super-tough fluorescent biomaterials.
多种物理性质的结合对于拓宽生物材料的应用场景至关重要。制造出兼具与天然蜘蛛拖牵丝相当的机械强度和韧性的基于生物分子的纤维仍然是一项巨大挑战。在此,通过模仿拖牵丝的结构,以基于聚集诱导发光(AIE)分子的表面活性剂分子作为柔性接触点,通过将藻酸盐的多糖链非共价交联,设计出了一种高性能荧光纤维Alg-TPEA-PEG。非共价交联网络在多糖链之间提供了足够的能量耗散滑移,使得Alg-TPEA-PEG从塑性应变阶段起就具有高度改善的机械性能。通过成功地将多糖链的优异机械性能传递到宏观纤维上,Alg-TPEA-PEG表现出1.27 GPa的出色断裂强度、34.13 GPa的杨氏模量以及150.48 MJ m的韧性,这些性能与拖牵丝相当且优于其他人工材料。更重要的是,Alg-TPEA-PEG的荧光和机械性能在各种苛刻条件下都能得到很好的保留,并且荧光和生物相容性促进了其生物学和生物医学应用。这项研究为获得超强、超硬和超韧的荧光生物材料提供了一种新的仿生设计策略。