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Enhanced catalytic performance of reduced graphene oxide–TiO2 hybrids for efficient water treatment using microwave irradiation

机译:还原的氧化石墨烯-TiO2杂化物增强的催化性能,可通过微波辐射进行有效的水处理

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Towards achieving efficient waste water treatment, the degradation of a common water pollutant, Orange G azo dye, was studied using a new hybrid catalyst and microwave irradiation. The fabrication of a hybrid catalyst based on reduced graphene oxide–titania (rGO–TiO _(2) ), was first achieved in a single mode microwave cavity by reducing the precursor consisting of graphene oxide (GO) and titania. Catalytic performance was then assessed in both microwave assisted and conventional heat treatment conditions. The hybrid catalyst showed significant improvement under microwave irradiation, with more than 88% dye degradation after 20 minutes of treatment at 120 °C. The microwave effect was found to be more dominant in the early stages of the catalysis – the hybrid catalyst decomposed ~65% of the dye in just 5 minutes of microwave treatment compared to only 18% degradation obtained during conventional heating. The improved performance with microwaves is mainly attributed to the formation of the hot spots at the surface of the hybrid catalyst which ultimately results in higher degradation rates. The morphological and catalytic properties of the hybrid catalyst are investigated using High Resolution Transmission Electron Microscopy (HRTEM) and UV-Vis Spectroscopy, respectively. Successful reduction of GO to rGO was confirmed using Raman spectroscopy and X-ray diffraction. The outstanding performance of microwave irradiated hybrids offers a viable low energy, low carbon footprint process with a new catalyst for wastewater treatment and for highly polluted wastewater conditions where photocatalysis is deemed not feasible.
机译:为了实现有效的废水处理,使用新型混合催化剂和微波辐射研究了常见水污染物Orange G偶氮染料的降解。首先通过还原由氧化石墨烯(GO)和二氧化钛组成的前驱体,在单模微波腔中完成了基于还原氧化石墨烯-二氧化钛(rGO-TiO _(2))的杂化催化剂的制备。然后在微波辅助条件和常规热处理条件下评估催化性能。杂化催化剂在微波辐射下显示出显着改善,在120°C处理20分钟后,染料降解超过88%。发现微波作用在催化的早期阶段更为显着-杂化催化剂在微波处理仅5分钟内分解了约65%的染料,而传统加热仅降解了18%。微波性能的改善主要归因于在杂化催化剂表面形成热点,最终导致较高的降解速率。分别使用高分辨率透射电子显微镜(HRTEM)和紫外可见光谱研究了杂化催化剂的形态和催化性能。使用拉曼光谱和X射线衍射证实GO成功还原为rGO。微波辐照混合动力系统的出色性能提供了可行的低能耗,低碳足迹工艺,并采用了新型催化剂用于废水处理以及认为光催化不可行的高污染废水条件。

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