State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai 201620, China.
State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai 201620, China; Research Center for Analysis and Measurement, Donghua University, Shanghai 201620, China.
J Colloid Interface Sci. 2014 Mar 1;417:18-26. doi: 10.1016/j.jcis.2013.11.009. Epub 2013 Nov 18.
Hierarchically structured, superhydrophobic filter medium exhibiting robust filtration performance to airborne particulate were prepared by a facile deposition of electrospun polysulfone/titania nanoparticles (PSU/TiO2 NPs) on a conventional nonwoven substrate. The air permeability, tensile strength and abrasion resistance of pristine PSU fibrous membranes could be finely controlled by regulating the solvent composition and number ratios of jets. By employing the TiO2 NPs incorporation, the pristine PSU fibers were endowed with promising superhydrophobicity with a water contact angle of up to 152°. The quantitative hierarchical roughness analysis using N2 adsorption method has confirmed the major contribution of TiO2 NPs on enhancing the porous structure and surface fractal features with irregular rough structure. Filtration performance studies have revealed that the filtration efficiency and pressure drop of resultant hybrid membranes could be manipulated by tuning the surface composition as well as the hierarchical structures. Furthermore, the as-prepared PSU/TiO2-5 membrane exhibited improved filtration efficiency (99.997%) and pressure drop (45.3 Pa) compared with pristine PSU membrane, which would make them a promising media for fine particle filtration, and a new insight was also provided into the design and development of high performance filter medium based on hierarchical structured fibers.
通过在传统非织造基底上简便地沉积静电纺聚砜/二氧化钛纳米粒子(PSU/TiO2 NPs),制备了具有分级结构的超疏水过滤介质,其对空气传播颗粒表现出强大的过滤性能。通过调节溶剂组成和射流的数量比,可以精细控制原始 PSU 纤维膜的透气度、拉伸强度和耐磨性。通过采用 TiO2 NPs 的掺入,原始 PSU 纤维具有有前途的超疏水性,水接触角高达 152°。使用 N2 吸附法进行定量的分级粗糙度分析已经证实,TiO2 NPs 主要有助于增强多孔结构和表面分形特征,形成不规则的粗糙结构。过滤性能研究表明,通过调整表面组成和分级结构,可以控制所得混合膜的过滤效率和压降。此外,与原始 PSU 膜相比,制备的 PSU/TiO2-5 膜表现出更高的过滤效率(99.997%)和压降(45.3 Pa),这使得它们成为精细颗粒过滤的有前途的介质,也为基于分级结构纤维的高性能过滤介质的设计和开发提供了新的思路。