Li Fang, Weng Kai, Tanaka Toshihisa, He Jianxin, Zheng Haimin, Noda Daisuke, Irifune Shinji, Sato Hiromasa
Interdisciplinary Graduate School of Science and Technology, Shinshu University, 3-15-1, Tokida, Ueda-shi 386-8567, Nagano, Japan.
International Joint Laboratory of New Textile Materials and Textiles of Henan Province, Zhongyuan University of Technology, Zhengzhou 450007, China.
Polymers (Basel). 2024 May 25;16(11):1505. doi: 10.3390/polym16111505.
Waterproof and breathable membranes have a huge market demand in areas, such as textiles and medical protection. However, existing fluorinated nanofibrous membranes, while possessing good waterproof and breathable properties, pose health and environmental hazards. Consequently, fabricating fluorine-free, eco-friendly waterborne membranes by integrating outstanding waterproofing, breathability, and robust mechanical performance remains a significant challenge. Herein, we successfully prepared waterborne silicone-modified polyurethane nanofibrous membranes with excellent elasticity, waterproofing, and breathability properties through waterborne electrospinning, using a small quantity of poly(ethylene oxide) as a template polymer and in situ doping of the poly(carbodiimide) crosslinking agent, followed by a simple hot-pressing treatment. The silicone imparted the nanofibrous membrane with high hydrophobicity, and the crosslinking agent enabled its stable porous structure. The hot-pressing treatment (120 °C) further reduced the pore size and improved the water resistance. This environmentally friendly nanofibrous membrane showed a high elongation at break of 428%, an ultra-high elasticity of 67.5% (160 cycles under 400% tensile strain), an air transmission of 13.2 mm s, a water vapor transmission rate of 5476 g m d, a hydrostatic pressure of 51.5 kPa, and a static water contact angle of 137.9°. The successful fabrication of these environmentally friendly, highly elastic membranes provides an important reference for applications in healthcare, protective textiles, and water purification.
防水透气膜在纺织品和医疗防护等领域有着巨大的市场需求。然而,现有的含氟纳米纤维膜虽然具有良好的防水透气性能,但却对健康和环境构成危害。因此,制备兼具出色防水性、透气性和强大机械性能的无氟环保水性膜仍然是一项重大挑战。在此,我们通过水性静电纺丝成功制备了具有优异弹性、防水性和透气性的水性有机硅改性聚氨酯纳米纤维膜,使用少量聚环氧乙烷作为模板聚合物并原位掺杂聚碳二亚胺交联剂,随后进行简单的热压处理。有机硅赋予纳米纤维膜高疏水性,交联剂使其具有稳定的多孔结构。热压处理(120℃)进一步减小了孔径并提高了耐水性。这种环保型纳米纤维膜的断裂伸长率高达428%,超高弹性为67.5%(在400%拉伸应变下循环160次),透气率为13.2mm/s,水蒸气透过率为每平方米每天5476克,静水压为51.5kPa,静态水接触角为137.9°。这些环保型高弹性膜的成功制备为医疗保健、防护纺织品和水净化等应用提供了重要参考。