Department of Materials Science and Engineering, National University of Singapore, Singapore, 117574, Singapore.
Department of Electrical and Computer Engineering, Center for Intelligent Sensors and MEMS (CISM), NUS Graduate School for Integrative Sciences and Engineering, National University of Singapore, Singapore, 117583, Singapore.
Nat Commun. 2023 Jun 5;14(1):3245. doi: 10.1038/s41467-023-38269-z.
Producing functional soft fibers via existing spinning methods is environmentally and economically costly due to the complexity of spinning equipment, involvement of copious solvents, intensive consumption of energy, and multi-step pre-/post-spinning treatments. We report a nonsolvent vapor-induced phase separation spinning approach under ambient conditions, which resembles the native spider silk fibrillation. It is enabled by the optimal rheological properties of dopes via engineering silver-coordinated molecular chain interactions and autonomous phase transition due to the nonsolvent vapor-induced phase separation effect. Fiber fibrillation under ambient conditions using a polyacrylonitrile-silver ion dope is demonstrated, along with detailed elucidations on tuning dope spinnability through rheological analysis. The obtained fibers are mechanically soft, stretchable, and electrically conductive, benefiting from elastic molecular chain networks via silver-based coordination complexes and in-situ reduced silver nanoparticles. Particularly, these fibers can be configured as wearable electronics for self-sensing and self-powering applications. Our ambient-conditions spinning approach provides a platform to create functional soft fibers with unified mechanical and electrical properties at a two-to-three order of magnitude less energy cost under ambient conditions.
由于纺丝设备的复杂性、大量溶剂的使用、能源的密集消耗以及多步预/后纺处理,通过现有的纺丝方法生产功能性软纤维在环境和经济上都是昂贵的。我们报告了一种在环境条件下的非溶剂蒸汽诱导相分离纺丝方法,类似于天然蜘蛛丝的原纤化。它通过工程化银配位分子链相互作用和非溶剂蒸汽诱导相分离效应引起的自主相转变,使纺丝液具有最佳的流变性能成为可能。使用聚丙烯腈-银离子纺丝液在环境条件下实现了纤维原纤化,并通过流变分析详细阐明了通过调整纺丝液可纺性。所得到的纤维具有柔软、可拉伸和导电性,这得益于基于银的配位络合物和原位还原的银纳米粒子的弹性分子链网络。特别是,这些纤维可以被配置为用于自感测和自供电应用的可穿戴电子产品。我们的环境条件纺丝方法提供了一个平台,可以在环境条件下以两到三个数量级的能量成本生产具有统一的机械和电气性能的功能性软纤维。