Eco-friendly fabrication of hydrophobic and breathable nanofibrous membranes via molecularly engineered WPU/PAM composites

IF 4.6 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Li Wang, Fajun Peng, Di Jin, Sen Fang and Yan Wang
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Abstract

As demands increase for multifunctional textiles and breathable coatings in high-humidity and high-mobility environments, the development of membranes that combine waterproofing, breathability, and mechanical durability has become a critical challenge. This study presents a novel, organic solvent-free electrospinning approach to fabricate waterborne polyurethane (WPU)-based nanofiber membranes, enhanced by polyacrylamide (PAM) as a dual-functional additive. By leveraging hydrogen bonding interactions between the –COO, –NHCOO– groups in WPU and the –CONH2 groups in PAM, the resulting composite achieved stable electrospinning, improved fiber morphology, and a significantly higher water contact angle (86.9°), compared to conventional WPU/PVA systems (<10°). The optimized WPU/PAM-3 membrane maintained high air permeability and excellent tensile strength, while also showing low water absorption (∼18%) and strong structural stability under thermal, mechanical, and environmental cycling. Structural analyses via FTIR, XRD, and XPS confirmed enhanced interfacial compatibility and molecular interaction. Notably, this work eliminates the need for volatile organic solvents and hygroscopic additives like PVA, solving common limitations in traditional WPU systems. The resulting membrane offers a sustainable, high-performance solution for protective textiles, medical materials, and flexible barrier coatings, marking a significant advancement in eco-friendly, breathable membrane technology.

Abstract Image

分子工程WPU/PAM复合材料制备的疏水透气纳米纤维膜。
随着在高湿度和高流动性环境中对多功能纺织品和透气涂层的需求增加,开发集防水、透气和机械耐久性于一体的膜已成为一项关键挑战。本研究提出了一种新的、有机无溶剂的静电纺丝方法来制备水性聚氨酯(WPU)基纳米纤维膜,并以聚丙烯酰胺(PAM)作为双功能添加剂进行增强。通过利用WPU中的- coo -、- nhcoo -基团与PAM中的- conh2基团之间的氢键相互作用,得到的复合材料实现了稳定的静电纺丝,改善了纤维形态,与传统的WPU/PVA体系相比,水接触角(86.9°)显著提高(通过FTIR、XRD和XPS证实了界面相容性和分子相互作用的增强)。值得注意的是,这项工作消除了对挥发性有机溶剂和PVA等吸湿性添加剂的需求,解决了传统WPU系统的常见限制。由此产生的膜为防护纺织品、医疗材料和柔性屏障涂层提供了可持续的高性能解决方案,标志着环保、透气膜技术的重大进步。
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来源期刊
Nanoscale Advances
Nanoscale Advances Multiple-
CiteScore
8.00
自引率
2.10%
发文量
461
审稿时长
9 weeks
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