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Geometric structure modification in cellulose acetate nanofibers and its impact on liquid resistance/repellency

机译:醋酸纤维素纳米纤维的几何结构改性及其对耐液体抗性/排斥性的影响

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Surface modification-altering geometric structures or surface energy-is a key factor in improving liquid resistance/repellency on a solid surface. In particular, roughness from geometric structures provides void spaces that enhance energy barriers in nanofibers that a liquid droplet should overcome to penetrate, thus preventing the transition of a liquid drop from the Cassie-Baxter state to Wenzel state. In this work, the design of a geometric structure that performs highly in liquid resistance/repellency was proposed by extending the Cassie-Baxter model into cellulose acetate (CA) nanofibers, entrapping SiO2 nanoparticles, and examining the impact of void spaces created by the entrapped SiO2 into nanofibers in prediction and experiment. The extended Cassie-Baxter equation was simplified using H*, which is characterized by T-np. The prediction and measurement of the apparent contact angle theta(nf) in CA-SiO2 nanofabrics showed good agreement, and the results emphasized the role of void space in improving liquid resistance/repellency while minimizing chemical treatments for altering surface energy and geometric structure.
机译:表面改性 - 改变几何结构或表面能 - 是改善固体表面上的液体阻雷的关键因素。特别地,来自几何结构的粗糙度提供空隙空间,使得纳米纤维中的能量屏障增强液滴应该克服渗透,从而防止液滴从Cassie-Baxter状态转变为Wenzel状态。在这项工作中,通过将Cassie-Baxter模型延伸成醋酸纤维素(CA)纳米纤维,诱捕SiO2纳米颗粒,检查捕获器产生的空隙空间的影响,提出了高度耐液体阻雷的几何结构SiO2进入预测和实验中的纳米纤维。使用H *简化了扩展的Cassie-Baxter方程,其特征在于T-NP。 Ca-SiO2纳米制造中表观接触角θ(NF)的预测和测量表现出良好的一致性,结果强调了空隙空间在改善液体阻雷时的作用,同时最小化改变表面能和几何结构的化学处理。

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