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将高效光催化剂构建成定制纤维状系统,用于应用于水处理。

Structuring efficient photocatalysts into bespoke fiber shaped systems for applied water treatment.

机构信息

Institute of Nanoscience and Nanotechnology, N.C.S.R. "Demokritos", 15310, Ag. Paraskevi, Athens, Greece; School of Chemical Engineering, National Technical University of Athens, 9 Iroon Polytechniou Street, 15780, Zografou, Athens, Greece.

Institute of Nanoscience and Nanotechnology, N.C.S.R. "Demokritos", 15310, Ag. Paraskevi, Athens, Greece.

出版信息

Chemosphere. 2021 Aug;277:130253. doi: 10.1016/j.chemosphere.2021.130253. Epub 2021 Mar 15.

Abstract

In this study, structured photocatalytic systems were successfully developed by a facile method based on Alginate molds and a wet-spinning/cross-linking technique, yielding commercial photocatalyst (Degussa P25) in the form of all-ceramic hollow fibers (HFs). Taking advantage of alginate's exceptional sorption properties, copper augmented HFs were also developed. The structured photocatalysts were thoroughly characterised by a variety of techniques, including nitrogen adsorption, SEM/EDS, XRD, XPS and Raman. Synthesis and heat treatment parameters were found to affect the fibers' properties, allowing their optimization. Treatment at 600 °C under Ar was found to produce the best performing photocatalysts in terms mechanical stability, resistance to attrition and photocatalytic performance. Ca-Alginate precursors led to structures with increased mechanical stability, while Cu-Alginate decorated the surface of the photocatalyst with highly dispersed copper nanoparticles, in the state of metallic and CuO. The developed materials were photo-catalytically active, while the copper decorated ceramic HFs exhibited the highest MO adsorption and photocatalytic degradation performance, reaching a MO removal of 73.4%. The synergestic effect of adsorption on the MO degradation performance was also noticed. Moreover, the copper addition facilitated the photocatalytic process by improving the electron-hole separation and inhibiting the recombination effects. The presence of carbon residue was also beneficial, enhancing the MO sorption on the photocatalysts. It is noteworthy that the structured photocatalysts retained their efficiency for at least four photocatalytic cycles. The prepared ceramic HFs exhibited enhanced mechanical properties and excellent resistance to attrition after subsequent cycles, rendering them excellent candidates for application in industrial wastewater processes.

摘要

在这项研究中,通过一种基于海藻酸盐模具和湿法纺丝/交联技术的简便方法,成功开发了结构化光催化系统,以陶瓷中空纤维(HF)的形式获得了商业光催化剂(Degussa P25)。利用海藻酸盐的特殊吸附性能,还开发了铜增强 HF。通过多种技术对结构化光催化剂进行了彻底的表征,包括氮气吸附、SEM/EDS、XRD、XPS 和 Raman。发现合成和热处理参数会影响纤维的性能,从而可以对其进行优化。在 Ar 下 600°C 的热处理被发现可以产生在机械稳定性、抗磨损性和光催化性能方面表现最佳的光催化剂。Ca-海藻酸盐前体导致结构具有更高的机械稳定性,而 Cu-海藻酸盐则用高度分散的铜纳米颗粒对光催化剂表面进行装饰,铜以金属和 CuO 的形式存在。所开发的材料具有光催化活性,而铜修饰的陶瓷 HF 表现出最高的 MO 吸附和光催化降解性能,达到 73.4%的 MO 去除率。还注意到吸附对 MO 降解性能的协同作用。此外,铜的添加通过改善电子-空穴分离和抑制复合效应来促进光催化过程。碳残留物的存在也很有益,增强了光催化剂对 MO 的吸附。值得注意的是,结构化光催化剂在至少四个光催化循环中保持其效率。经过后续循环后,制备的陶瓷 HF 表现出增强的机械性能和优异的抗磨损性,使其成为应用于工业废水处理过程的优秀候选材料。

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