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Rational design and synthesis of molecular-sieving, photocatalytic, hollow fiber membranes for advanced water treatment applications

机译:分子筛,光催化,中空纤维膜的合理设计和合成,可用于高级水处理应用

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摘要

Photocatalytic, hollow fiber membranes based on nanocomposites of titania nanoparticles and carbonaceous char were simultaneously fabricated in a single calcination step, and then optimized for the photo-degradation of pollutants and water recovery in an integrated membrane operation in this study. The physicochemical, mechanical and photocatalytic properties along with separation performance of two series of membranes were finely-tuned by systematically changing the calcination temperature (series 1: 500-1000 degrees C for 8 h holding time) and calcination time (series 2: 2-8 h at 600 degrees C). The calcined membranes were extensively characterized for morphology, thermal stability, microstructure, modulus and chemical compositions. Both constituents of titania and char are essential in deriving the desirable hollow fiber properties and membrane performance for photocatalysis and water recovery. By controlling the calcination conditions, membranes prepared at 600 degrees C for the 3 and 6 h duration displayed an optimal balance between enhanced mechanical strength (34 MPa) and high photo-degradation of acid orange 7 (90.4%). Membrane performance demonstrated water fluxes of 6.9 ((HO)-O-2/dark), 12.9 (H2O/UV) 4.8 (AO7/dark) and 7.9 L m(-2) h(-1) (AO7/UV) with excellent organic dye rejection. Both membranes exhibited photo-induced super-hydrophilicity and defouling potential under the influence of UV light due to the photo-activation of exposed TiO2 nanoparticles on the membrane surface. The detailed mechanism of property correlation and separation performance for the photocatalytic hollow fibers is proposed and elucidated. This work offers an innovative material for the research avenue of photocatalytic, hollow fiber membrane reactors for advanced membrane treatment applications.
机译:在一个单独的煅烧步骤中,同时制备了基于二氧化钛纳米粒子和碳质炭的纳米复合材料的光催化中空纤维膜,然后在本研究的集成膜操作中针对污染物的光降解和水回收进行了优化。通过系统地改变煅烧温度(系列1:500-1000摄氏度,保持时间8 h)和煅烧时间(系列2:2-),对两个系列膜的物理化学,机械和光催化性能以及分离性能进行了微调。在600摄氏度下8小时)。煅烧膜的形貌,热稳定性,微观结构,模量和化学组成得到了广泛的表征。二氧化钛和炭的两种成分对于获得理想的中空纤维性能和光催化和水回收膜性能至关重要。通过控制煅烧条件,在600摄氏度下制备的膜在3到6个小时内表现出在增强的机械强度(34 MPa)和酸橙7(90.4%)的高光降解之间的最佳平衡。膜性能表明水通量为6.9((HO)-O-2 / dark),12.9(H2O / UV)4.8(AO7 / dark)和7.9 L m(-2)h(-1)(AO7 / UV)优异的有机染料排斥能力。由于在膜表面上暴露的TiO 2纳米颗粒的光活化,两种膜在紫外线的影响下均表现出光诱导的超亲水性和除垢潜力。提出并阐明了光催化中空纤维性能相关性和分离性能的详细机理。这项工作为用于高级膜处理应用的光催化中空纤维膜反应器的研究途径提供了创新的材料。

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