Li Xin, Gao Hui, Wang Qiang, Liu Shanshan
State Key Laboratory of Biobased Material and Green Papermaking, Qilu University of Technology, Shandong Academy of Sciences, Jinan 250353, China.
Key Laboratory of Paper Science and Technology of Ministry of Education, Faculty of Light Industry, Qilu University of Technology, Shandong Academy of Sciences, Jinan 250353, China.
Polymers (Basel). 2023 Dec 28;16(1):102. doi: 10.3390/polym16010102.
Lignin-containing nanocellulose fibers (LCNF) have been considered as a valuable enhancer for polyacrylic acid (PAA)-based hydrogels that can form rigid porous network structures and provide abundant polar groups. However, the PAA-LCNF hydrogel is dominated by a single-network (SN) structure, which shows certain limitations when encountering external environments with high loads and large deformations. In this paper, sodium alginate (SA) was introduced into the PAA-LCNF hydrogel network to prepare a double-network (DN) hydrogel structure of the SA-Ca and PAA-LCNF through a two-step process. The covalent network of PAA-LCNF acts as the resilient framework of the hydrogel, while the calcium bridging networks of SA, along with the robust hydrogen bonding network within the system, function as sacrificial bonds that dissipate energy and facilitate stress transfer. The resulting hydrogel has porous morphologies. Results show that SA can effectively improve the mechanical properties of DN hydrogels and endow them with excellent thermal stability and electrical conductivity. Compared with pure PAA-LCNF hydrogel, the elongation at break of DN hydrogel increased from 3466% to 5607%. The good electrical conductivity makes it possible to use the flexible sensors based on DN hydrogel to measure electrophysiological signals. Our results can provide a reference for developing multifunctional hydrogels that can withstand ultra large deformation.
含木质素的纳米纤维素纤维(LCNF)被认为是聚丙烯酸(PAA)基水凝胶的一种有价值的增强剂,这种水凝胶可以形成刚性多孔网络结构并提供丰富的极性基团。然而,PAA-LCNF水凝胶以单网络(SN)结构为主,在遇到高负荷和大变形的外部环境时表现出一定的局限性。本文通过两步法将海藻酸钠(SA)引入PAA-LCNF水凝胶网络中,制备了SA-Ca和PAA-LCNF的双网络(DN)水凝胶结构。PAA-LCNF的共价网络作为水凝胶的弹性框架,而SA的钙桥联网络以及体系内强大的氢键网络则作为牺牲键,起到耗散能量和促进应力传递的作用。所得水凝胶具有多孔形态。结果表明,SA可以有效地改善DN水凝胶的力学性能,并赋予其优异的热稳定性和导电性。与纯PAA-LCNF水凝胶相比,DN水凝胶的断裂伸长率从3466%提高到了5607%。良好的导电性使得基于DN水凝胶的柔性传感器能够用于测量电生理信号。我们的研究结果可为开发能够承受超大变形的多功能水凝胶提供参考。