Enhanced Photocatalytic and Filtration Performance of TiO2-Ag Composite-Coated Membrane Used for the Separation of Oil Emulsions

Á. Fazekas, T. Gyulavári, Á. Ágoston, László Janovák, Judit Kopniczky, Zsuzsanna László, G. Veréb
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Abstract

Polyvinylidene fluoride (PVDF) membranes were coated with TiO2 and TiO2-Ag to enhance their efficiency for oil-in-water emulsion separation. The photocatalytic activities of the two modified membranes and their filtration performances were compared in detail. The significantly enhanced photocatalytic activity of the TiO2-Ag composite was proved using a methyl orange (MO) solution (c = 10−5 M) and a crude oil emulsion (c = 50 mg·L−1). The TiO2-Ag-coated membrane reduced the MO concentration by 87%, whereas the TiO2-modified membrane reached only a 46% decomposition. The photocatalytic reduction in the chemical oxygen demand of the emulsion was also ~50% higher using the TiO2-Ag-coated membrane compared to that of the TiO2-coated membrane. The photoluminescence measurements demonstrated a reduced electron/hole recombination, achieved by the Ag nanoparticle addition (TiO2-Ag), which also explained the enhanced photocatalytic activity. A significant improvement in the oil separation performance with the TiO2-Ag-coated membrane was also demonstrated: a substantial increase in the flux and flux recovery ratio (up to 92.4%) was achieved, together with a notable reduction in the flux decay ratio and the irreversible filtration resistance. Furthermore, the purification efficiency was also enhanced (achieving 98.5% and 99.9% COD and turbidity reductions, respectively). Contact angle, zeta potential, scanning electron microscopy (SEM), and atomic force microscopy (AFM) measurements were carried out to explain the results. SEM and AFM images revealed that on the TiO2-Ag-coated membrane, a less aggregated, more continuous, homogeneous, and smoother nanolayer was formed due to the ~50% more negative zeta potential of the TiO2-Ag nanocomposite compared to that of the TiO2. In summary, via Ag addition, a sufficiently hydrophilic, beneficially negatively charged, and homogeneous TiO2-Ag-coated PVDF membrane surface was achieved, which resulted in the presented advantageous filtration properties beyond the photocatalytic activity enhancement.
用于分离油类乳浊液的 TiO2-Ag 复合涂层膜的光催化和过滤性能得到增强
在聚偏二氟乙烯(PVDF)膜上涂覆 TiO2 和 TiO2-Ag,以提高其在水包油乳液分离中的效率。详细比较了两种改性膜的光催化活性及其过滤性能。使用甲基橙(MO)溶液(c = 10-5 M)和原油乳液(c = 50 mg-L-1)证明,TiO2-Ag 复合材料的光催化活性明显增强。涂有 TiO2-Ag 的膜将 MO 浓度降低了 87%,而 TiO2 改性膜的分解率仅为 46%。与涂有 TiO2 的膜相比,涂有 TiO2-Ag 的膜对乳液化学需氧量的光催化降低率也高出约 50%。光致发光测量结果表明,添加 Ag 纳米粒子(TiO2-Ag)后,电子/空穴重组减少,这也是光催化活性增强的原因。使用 TiO2-Ag 涂层膜后,油分离性能也得到了显著改善:通量和通量回收率大幅提高(高达 92.4%),通量衰减率和不可逆过滤阻力也明显降低。此外,净化效率也得到了提高(化学需氧量和浊度分别降低了 98.5% 和 99.9%)。为了解释这些结果,还进行了接触角、zeta 电位、扫描电子显微镜(SEM)和原子力显微镜(AFM)测量。扫描电子显微镜和原子力显微镜图像显示,在 TiO2-Ag 涂层膜上,由于 TiO2-Ag 纳米复合材料的负 zeta 电位比 TiO2 的负 zeta 电位高出约 50%,因此形成的纳米层更少聚集、更连续、更均匀、更光滑。总之,通过添加 Ag,TiO2-Ag 涂层 PVDF 膜表面获得了足够的亲水性、有益的负电荷和均质性,从而实现了光催化活性增强之外的过滤性能优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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