Fang Wenwen, Lim E Yee, Nieminen Kaarlo Leo, Sixta Herbert
Department of Bioproducts and Biosystems, Aalto University, Vuorimiehentie 1, 02150 Espoo, Finland.
ACS Omega. 2023 Aug 29;8(37):34103-34110. doi: 10.1021/acsomega.3c05133. eCollection 2023 Sep 19.
Superbase-based ionic liquids (ILs) have demonstrated excellent dissolution capability for cellulose, and employing the dry-jet wet spinning process, high-tenacity regenerated textile fibers have been made. Among a range of superbase-based ILs, [mTBDH][OAc] exhibited not only good spinnability but also exceptional recyclability, making it highly suitable for a closed-loop production of regenerated cellulose fibers. To further optimize the spinning process, we investigated the influence of the cellulosic raw materials and the IL with residual water on spinnability and fiber properties. In addition, single-filament spinning and multifilament spinning using spinnerets with different hole densities were investigated to reveal the upscaling challenges of the dry-jet wet spinning process. The air gap conditions, for example, temperature and moisture concentration were simulated using COMSOL multiphysics. The results indicate that the presence of a small amount of water (3 wt%) in the IL has a positive effect on spinnability, while the mechanical properties of the fibers remain unchanged.
基于超强碱的离子液体(ILs)已证明对纤维素具有出色的溶解能力,并且采用干喷湿纺工艺,已制造出高强度再生纺织纤维。在一系列基于超强碱的离子液体中,[mTBDH][OAc]不仅表现出良好的可纺性,还具有出色的可回收性,使其非常适合闭环生产再生纤维素纤维。为了进一步优化纺丝工艺,我们研究了纤维素原料和含有残留水的离子液体对可纺性和纤维性能的影响。此外,还研究了使用具有不同孔密度的喷丝板进行单丝纺丝和复丝纺丝,以揭示干喷湿纺工艺的放大挑战。使用COMSOL多物理场模拟了气隙条件,例如温度和水分浓度。结果表明,离子液体中存在少量水(3 wt%)对可纺性有积极影响,而纤维的机械性能保持不变。