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通过在聚苯乙烯纳米纤维中三维(3D)悬浮二氧化钛纳米粒子实现高效润湿性控制。

Highly efficient wettability control via three-dimensional (3D) suspension of titania nanoparticles in polystyrene nanofibers.

机构信息

School of Mechanical Engineering, Korea University, Anam-dong Seongbuk-gu, Seoul, Korea.

出版信息

ACS Appl Mater Interfaces. 2013 Feb;5(4):1232-9. doi: 10.1021/am303008s. Epub 2013 Feb 7.

DOI:10.1021/am303008s
PMID:23347600
Abstract

Electrospinning is a simple and highly versatile method for the large-scale fabrication of polymeric nanofibers. Additives or fillers can also be used to functionalize the nanofibers for use in specific applications. Herein, we demonstrate a novel and efficient way to fabricate superhydrophobic to hydrophilic tunable mats with the combined use of electrospinning and electrospraying that may be suitable for mass production on the merits of rapid deposition. The tunable nanocomposite mats were comprised of hydrophobic polystyrene nanofibers and hydrophilic titania nanoparticles. When the electrical conductivity of the electrospinning solution was increased, the surface morphology of the mats changed noticeably from a bead-on-string structure to an almost bead-free structure. Polystyrene (PS)-titania nanocomposite mats initially yielded a static water contact angle as high as 140° ± 3°. Subsequently exposing these mats with relatively weak ultraviolet irradiation (λ = 365 nm, I = 0.6 mW/cm²) for 2 h, the unique 3D suspension of the photoactive titania nanoparticles maximized the hydrophilic performance of the mats, reducing the static water contact angle to as low as 26° ± 2°. The tunable mats were characterized by scanning electron microscopy (SEM), static water contact angle (WCA) measurements, and energy-dispersive X-ray spectroscopy (EDX). Our findings confirmed that the tunable mats fabricated by the simultaneous implementation of electrospraying and electrospinning had the most efficient ultraviolet (UV)-driven wettability control in terms of cost-effectiveness. Well-controlled tunable hydrophobic and hydrophilic mats find potential applications in functional textiles, environmental membranes, biological sensors, scaffolds, and transport media.

摘要

静电纺丝是一种简单而高度通用的方法,可大规模制备聚合物纳米纤维。还可以使用添加剂或填充剂对纳米纤维进行功能化,以用于特定应用。在此,我们展示了一种新颖且高效的方法,可使用静电纺丝和静电喷涂相结合来制造超疏水到亲水可调谐垫,这可能适合大规模生产,其优点是快速沉积。可调谐纳米复合材料垫由疏水性聚苯乙烯纳米纤维和亲水性二氧化钛纳米颗粒组成。当静电纺丝溶液的电导率增加时,垫的表面形貌从珠状结构明显变为几乎无珠状结构。聚苯乙烯(PS)-二氧化钛纳米复合材料垫最初产生高达 140°±3°的静态水接触角。随后,用相对较弱的紫外线照射(λ=365nm,I=0.6mW/cm²)这些垫 2 小时,光活性二氧化钛纳米颗粒的独特 3D 悬浮状态最大限度地提高了垫的亲水性,将静态水接触角降低至低至 26°±2°。通过扫描电子显微镜(SEM)、静态水接触角(WCA)测量和能谱(EDX)对可调谐垫进行了表征。我们的发现证实,通过同时实施静电喷涂和静电纺丝制造的可调谐垫在成本效益方面具有最有效的紫外线(UV)驱动润湿性控制。良好控制的可调谐疏水性和亲水性垫在功能纺织品、环境膜、生物传感器、支架和输送介质中具有潜在应用。

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