Zhang Yue, Li Xing, Wang Hong-Yang, Wang Bo-Xiang, Li Jia, Cheng De-Hong, Lu Yan-Hua
School of Chemical Engineering, Liaodong University, Dandong 118003, China.
Liaoning Provincial Key Laboratory of Functional Textile Materials, Liaodong University, Dandong 118000, China.
Nanomaterials (Basel). 2022 Sep 4;12(17):3071. doi: 10.3390/nano12173071.
One-way water transport is a predominant feature of comfortable textiles used in daily life. However, shortcomings related to the textiles include their poor breathability and durability. In this study, low-cost and eco-friendly PLA/low-melt (polylactic acid) LMPLA-thermoplastic polyurethane (TPU) membranes were fabricated through a needle punch/hot press and electrospinning method. The micro-/nano-channels, used for the first time, endowed the composite membranes with robust, breathable, moisture-permeable, and abrasion-resistant performance. By varying the nano- layer thickness, the resulting 16-40 μm membranes exhibited excellent one-way water transport, robust breathability and moisture permeability, and good abrasion resistance. Nano-layer thickness was found to be a critical performance factor, balancing comfort and protection. These results may be useful for developing low-cost, eco-friendly, and versatile protective products for medical application.
单向输水是日常生活中使用的舒适纺织品的一个主要特性。然而,这类纺织品存在透气性差和耐用性不佳的缺点。在本研究中,通过针刺/热压和静电纺丝法制备了低成本且环保的聚乳酸/低熔点聚乳酸-热塑性聚氨酯(PLA/LMPLA-TPU)膜。首次使用的微/纳米通道赋予了复合膜强大的透气、透湿和耐磨性能。通过改变纳米层厚度,得到的16 - 40μm厚的膜表现出优异的单向输水性能、强大的透气性和透湿性以及良好的耐磨性。研究发现纳米层厚度是平衡舒适性和防护性的关键性能因素。这些结果可能有助于开发用于医疗应用的低成本、环保且多功能的防护产品。