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Tunable superoleophobicity via harnessing the surface chemistry of UV responsive titania coatings

机译:通过利用紫外线响应性二氧化钛涂层的表面化学特性,可调节超疏油性

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摘要

Superoleophobic surfaces exhibiting tunable wettability are prepared by the combination of simple spray coating of Ultra Violet (UV) responsive titania nanoparticles and a low surface energy coating of a self-assembled monolayer (SAM) of 1 H ,1 H ,2 H ,2 H -perflurodecyltrichlorosilane (PFDTS). Spray coating creates random micron-sized roughness with reentrant geometry, a necessary requirement for the superoleophobic surface, and a porous network at the nanometer size level, confirmed by the field emission scanning electron microscope (FE-SEM) images. By employing the rough surface and a low surface energy monolayer, the substrates possess superhydrophobicity with a water ( γ = 72 mN m ~(?1) ) contact angle of 163° and superoleophobicity with a decane ( γ = 23 mN m ~(?1) ) contact angle of 144°. Wettability of these surfaces is completely reversed to the superoleophilic state upon 6 h of UV irradiation. A quantitative X-ray photoelectron spectroscopy (XPS) analysis has confirmed the mechanism of decomposition of PFDTS molecules on the superoleophilic surfaces via interaction with the defect Ti ~(3+) states of titania upon UV exposure. Furthermore, the superoleophobicity is restored to complete the transition cycle by changing the surface chemistry of the UV exposed surface via annealing and regrafting of the PFDTS monolayer.
机译:通过将紫外线(UV)响应性二氧化钛纳米颗粒的简单喷涂与自组装单层(SAM)的低表面能涂层(1 H,1 H,2 H,2 H)结合起来,可以制备具有可调节润湿性的超疏油性表面-全氟癸基三氯硅烷(PFDTS)。通过场发射扫描电子显微镜(FE-SEM)图像证实,喷涂会产生具有可重入几何形状的随机微米级粗糙度,超疏油表面的必要要求以及纳米尺寸级别的多孔网络。通过使用粗糙的表面和低表面能的单层,基板具有与水(γ= 72 mN m〜(?1))接触角为163°的超疏水性和与癸烷(γ= 23 mN m〜(? 1))接触角为144°。这些表面的可湿性在紫外线照射6小时后完全反转为超亲油状态。定量X射线光电子能谱(XPS)分析已经证实了超亲油性表面上PFDTS分子的分解机理是通过与紫外线照射下二氧化钛的Ti〜(3+)缺陷态相互作用而实现的。此外,通过对PFDTS单层进行退火和重新接枝来改变UV暴露表面的表面化学,可以恢复超疏油性,从而完成过渡循环。

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