Biomimetic Murray nanofiber membranes with pore/wetting double gradient for ultrafast directional water transport and evaporative textiles

[Display omitted] •Using a straightforward electrospinning/netting technique fabricated biomimetic Murray nanofiber membranes with a double gradient of pore/wetting that follows Murray’s law and mimics the pore structure of vascular plants.•Thermal crosslinking treatment to enhance the mechanical pr...

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Veröffentlicht in:Journal of industrial and engineering chemistry (Seoul, Korea) 2024, 130(0), , pp.547-555
Hauptverfasser: Chen, Xiaoxiao, Wei, Diedie, Zhang, Li, Luo, Zhouai, Guo, Hao, Xu, Hui, Fu, Yingkun, Feng, Yanlai, Yu, Hongqin, He, Jianxin
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Sprache:eng
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Zusammenfassung:[Display omitted] •Using a straightforward electrospinning/netting technique fabricated biomimetic Murray nanofiber membranes with a double gradient of pore/wetting that follows Murray’s law and mimics the pore structure of vascular plants.•Thermal crosslinking treatment to enhance the mechanical properties of fiber demonstrates an apparent cross-linked structure.•Ultrahigh one-way transport capability (R) of 1270%, evaporation rate of 0.86gh-1, and enable spontaneous, continuous water transfer to the outer layer, and prevent reverse osmosis under pressure. Directional water transport (DWT) textiles, possessing moisture-wicking and evaporative fast-drying capabilities, help in creating a comfortable microenvironment for the human body. However, fabricating synthetic materials that follow follow Murray’s law and replicate the pore gradient of vascular plants remains challenging, thereby impeding the achievement of a good combination of moisture conduction, fast drying, and osmosis resistance. In this study, DWT membranes comprising three layers of pore/wetting gradients were constructed using a straightforward electrospinning/netting technique. The inner and intermediate layers, comprising hydrophobic polyurethane (PU) and hydrophilic PU-hydrolyzed polyacrylonitrile (PU-HPAN) nanofibers with average diameters of 1.83 µm and 255 nm, respectively, were prepared via electrospinning. Furthermore, the superhydrophilic outer layer (HPAM) comprised HPAN and a blend of acrylic acid/acrylamide with an average diameter of 76nm. This layer was prepared via the electro-netting of dilute solution with high electrical conductivity, resulting in a spontaneous and continuous water transport, coupled with rapid drying. The DWT membranes exhibited an ultrahigh one-way transport capability (R) of 1270%, achieving an evaporation rate of 0.86 gh-1. Additionally, they demonstrated rapid drying within 16 min, effectively preventing reverse osmosis under pressure. Therefore, these membranes can be applied for moisture wicking, water extraction, and micro fluidic control.
ISSN:1226-086X
1876-794X
DOI:10.1016/j.jiec.2023.10.009