Key Laboratory of Polymer Materials and Products of Universities in Fujian, Department of Materials Science and Engineering, Fujian University of Technology, Fuzhou, Fujian 350108, China.
Institute of Textiles and Clothing, Hong Kong Polytechnic University, Hung Hom, Kowloon, Hong Kong 999077, China.
ACS Appl Mater Interfaces. 2020 Jul 15;12(28):32090-32098. doi: 10.1021/acsami.0c04504. Epub 2020 Jul 1.
Filaments comprising solely cellulose nanofibrils (CNFs) have been fabricated by flow-assisted assembling, where the strength can be improved greatly with the sacrifice of toughness. Inspired by the architecture of natural nacre and plant cell wall, the combined technique of convergent microfluidic spinning and interfacial complexation between CNF and chitosan molecules was used to construct the filaments with hierarchical assembly of highly oriented CNFs locked by chitosan complexes, showing simultaneous enhancements of strength and toughness. In specific, the best performing filament exhibited a toughness of 88.9 kJ/m and a tensile strength of 1289 MPa because of the strong interfacial complexation interactions between CNFs and chitosan molecules. The tensile strength was further raised to 1627 MPa when the filaments were cross-linked synergistically by using Ca, surpassing the reported values in the literature. Molecular dynamics simulations revealed the possible fracture mechanism of the filaments under tension. With excellent mechanical performance and biocompatibility, the resulting CNF/chitosan filament system showed a promising application potential as nonabsorbable surgical sutures. The demonstrated spinning technology also offered a new avenue for the fabrication of high-performance filaments.
仅由纤维素纳米纤维(CNF)组成的长丝通过流辅助组装来制备,其中强度可以通过牺牲韧性来大大提高。受天然珍珠母和植物细胞壁结构的启发,采用收敛微流纺丝技术和 CNF 与壳聚糖分子之间的界面络合作用相结合,构建了具有高度取向的 CNF 分层组装的纤维,这些纤维由壳聚糖配合物锁定,表现出强度和韧性的同时提高。具体来说,由于 CNF 和壳聚糖分子之间的强界面络合相互作用,性能最佳的纤维表现出 88.9kJ/m 的韧性和 1289MPa 的拉伸强度。当纤维通过使用 Ca 协同交联时,拉伸强度进一步提高到 1627MPa,超过了文献中的报道值。分子动力学模拟揭示了纤维在拉伸下的可能断裂机制。具有优异的机械性能和生物相容性的 CNF/壳聚糖纤维系统显示出作为非吸收性手术缝线的有前途的应用潜力。所展示的纺丝技术还为高性能纤维的制造提供了新途径。