School of Textile Materials and Engineering, Wuyi University, Jiangmen 529020, China.
Textile Engineering Department, Mehran University of Engineering & Technology, Jamshoro 76060, Pakistan.
J Colloid Interface Sci. 2023 Sep;645:200-209. doi: 10.1016/j.jcis.2023.04.140. Epub 2023 May 1.
Functional textiles with high-performance directional water transport for regulating human sweat are in high demand because of growing concerns about the role of comfort in the performance of wearer. However, the fabrication of such materials remains a critical job. Here, we report a facile strategy to develop hydrophilic oriented polyacrylonitrile (HOPAN)/hydrophilic polylactic acid @polyvinylidene fluoride (HPLA@PVDF) composite membrane with surface energy gradient for enhanced directional water transport. Three step fabrication strategy involves electrospinning of oriented polyacrylonitrile (OPAN fibers) on polylactic acid (PLA) nonwoven surface followed by dip-coating in hydrophilic agent, and single-side electrospray of PVDF dilute solution on HOPAN/HPLA. Combination of highly oriented fiber structure, differential pore size and asymmetric wettability between two layers enabled instant water transport. The resultant fabricated composite membranes offer superior properties with one-way transport capacity (R) of 1117%, overall moisture management capacity (OMMC) of 0.91, and excellent water vapor transmission rate of 11.6 kg m d. The successful preparation of these fascinating directional water transport materials offers new insight into the role of fiber alignment along with differential apertures and asymmetric chemical structure for realizing membranes for quick-drying applications.
具有高性能定向导湿功能的纺织品因其对穿着舒适性在性能表现中重要性的日益关注而备受需求,然而,此类材料的制备仍然是一项关键工作。在这里,我们报告了一种简便的策略,用于开发具有表面能梯度的亲水性定向聚丙烯腈(HOPAN)/亲水性聚乳酸@聚偏二氟乙烯(HPLA@PVDF)复合膜,以增强定向导水性能。三步制备策略包括在聚乳酸(PLA)无纺表面上静电纺丝定向聚丙烯腈(OPAN 纤维),然后在亲水剂中浸涂,以及在 HOPAN/HPLA 上单侧静电喷涂 PVDF 稀溶液。高度定向纤维结构、两层之间的差分孔径和不对称润湿性的组合实现了即时导水。所制备的复合膜具有优异的性能,单向传输能力(R)为 1117%,整体水分管理能力(OMMC)为 0.91,水蒸气传输率为 11.6 kg m d。这些迷人的定向导水材料的成功制备为纤维排列以及差分孔径和不对称化学结构在实现快速干燥应用的膜中的作用提供了新的见解。