Alam A K M Mashud, Ewaldz Elena, Xiang Chunhui, Qu Wangda, Bai Xianglan
Department of Apparel, Events, and Hospitality Management, Iowa State University, Ames, IA 50011, USA.
School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, GA 30332, USA.
Polymers (Basel). 2020 Sep 15;12(9):2092. doi: 10.3390/polym12092092.
This research aims to develop multilayer sandwich-structured electrospun nanofiber (ENF) membranes using biodegradable polymers. Hydrophilic regenerated cellulose (RC) and hydrophobic poly (lactic acid) (PLA)-based novel multilayer sandwich-structures were created by electrospinning on various copper collectors, including copper foil and 30-mesh copper gauzes, to modify the surface roughness for tunable wettability. Different collectors yielded various sizes and morphologies of the fabricated ENFs with different levels of surface roughness. Bead-free thicker fibers were collected on foil collectors. The surface roughness of the fine fibers collected on mesh collectors contributed to an increase in hydrophobicity. An RC-based triple-layered structure showed a contact angle of 48.2°, which is comparable to the contact angle of the single-layer cellulosic fabrics (47.0°). The polar shift of RC membranes on the wetting envelope is indicative of the possibility of tuning the wetting behavior by creating multilayer structures. Wettability can be tuned by creating multilayer sandwich structures consisting of RC and PLA. This study provides an important insight into the manipulation of the wetting behavior of polymeric ENFs in multilayer structures for applications including chemical protective clothing.
本研究旨在利用可生物降解聚合物开发多层夹心结构的电纺纳米纤维(ENF)膜。通过在包括铜箔和30目铜网在内的各种铜集电器上进行电纺,制备了基于亲水性再生纤维素(RC)和疏水性聚乳酸(PLA)的新型多层夹心结构,以改变表面粗糙度从而实现可调节的润湿性。不同的集电器产生了具有不同表面粗糙度水平的各种尺寸和形态的制成的ENF。在箔集电器上收集到无珠的较粗纤维。在网集电器上收集的细纤维的表面粗糙度导致疏水性增加。基于RC的三层结构显示出48.2°的接触角,这与单层纤维素织物的接触角(47.0°)相当。RC膜在润湿包络线上的极性偏移表明通过创建多层结构来调节润湿行为的可能性。润湿性可以通过创建由RC和PLA组成的多层夹心结构来调节。本研究为在包括化学防护服在内的应用中操纵多层结构中聚合物ENF的润湿行为提供了重要见解。