Silk fibroin fibers-based shape memory membrane with Janus wettability for multitiered wearable protection

丝素 材料科学 杰纳斯 静电纺丝 纳米纤维 丝绸 热塑性聚氨酯 润湿 纳米技术 过滤(数学) 银纳米粒子 纤维 复合材料 纳米颗粒 聚合物 化学 统计 生物化学 弹性体 数学
作者
Yue Zhang,Jiahui Zhou,Heli Deng,Ying Fang,Na Qiao,Meng Ren,Yufan Zhang,Desuo Zhang,Hong Lin,Yuyue Chen,Ken Tye Yong,Jiaqing Xiong
出处
期刊:Journal of Materials Research [Springer Nature]
卷期号:38 (3): 633-643 被引量:4
标识
DOI:10.1557/s43578-022-00805-w
摘要

Realizing breathable shape memory fiber-based material with antibacterial and waterproof performances is important for multitiered wearable protection to address the increasing concerns of air pollution. Herein, using an alternating electrospinning-electrospraying technology, we develop a fiber-based membrane with Janus wettability based on a silk fibroin nanofibers-substrate (SFNFs), a polyurethane nanospheres-top layer (PUNSs), and a middle layer of PU nanofibers-mat with in-situ grown silver nanoparticles (PUNFs-AgNPs), which serves separately for skin contact, a self-cleaning physical barrier to resist external aerosol/bacteria (PM2.5 filtration efficiency ~ 98.1%), and a bio-barrier that can sterilize harmful particles and inhibit bacteria proliferation (> 95%). This breathable Janus film (SFNFs/PUNFs-AgNPs/PUNSs, SPAP) with an antibacterial filter shows shape memory stretchability enabled by the thermoplastic PU component, which is mechanically adaptive to human body for wearable protection. This work presents a breathable wearable material for air-filtration and anti-bacteria, promising for applications such as wound dressings, medical masks, protection suits, and multifunctional filters.An alternating electrospinning-electrospraying technology was proposed to achieve a silk fibroin-based antibacterial membrane with Janus wettability, as well as good skin affinity and breathability, which serves well as physical and bio-barriers for water resistance, PM2.5 filtration (~98.1%) and bacteria inhibition (efficiency of 95%). This shape memory Janus membrane can adapt mechanically to human body curvatures for functional wearable protections.The online version contains supplementary material available at 10.1557/s43578-022-00805-w.
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