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Wastewater Contaminated with Hydrazine as Scavenger Agent for Hydrogen Production by Cu/Ti Nanostructures

机译:用Cu / Ti纳米结构污染肼作为清除剂污染的废水

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摘要

Cu/Ti photocatalysts were prepared by the sol-gel process with different copper loadings (1.0, 2.5, and 5.0 wt.%) and then thermally treated at several calcination temperatures from 400 to 600 °C. The materials were characterized by X-ray diffraction (XRD), N2 physisorption, Scanning Electronic Microscopy with Energy Dispersive X-ray Spectroscopy (SEM-EDS), Ultraviolet-visible-Diffuse Reflection Spectroscopy, Ultraviolet-visible spectroscopy as a function of the temperature, (Temperature Programmed Reduction) TPR-chemisorption, XPS (X-ray Photoelectron Spectroscopy) and OH determination through DRIFTS (Diffuse reflectance infrared Fourier transform spectroscopy). The Cu/Ti photocatalysts were evaluated for the photocatalytic production of hydrogen using hydrazine as scavenging agent. Moreover, a detailed study of the Cu1+/Cu2+ ratio and the corresponding formation of copper oxide was carried out to understand the correlation between the copper species and the photocatalytic activity. Simultaneously, the OH groups on the TiO2 surface also show insights into the behavior of these materials during the photocatalytic reaction. Despite the low hydrazine concentration (20 mM), the 1.0 (wt.%) Cu/Ti 500 photocatalyst enhanced the hydrogen production three and two times more than photolysis and bare TiO2, respectively. The 1.0 Cu/Ti 500 photocatalyst displayed outstanding stability for at least three continuous cycles of 8 h each, preserving the hydrogen production. The novel ability shown in this work represents an alternative to reduce the hydrazine residues in wastewater to transform it into a hydrogen-producing energy source and must be extended to other reductive pollutants found in wastewater.
机译:通过溶胶 - 凝胶法制备Cu / Ti光催化剂,用不同的铜载体(1.0,2.5和5.0重量%),然后在几个煅烧温度下在400至600℃下热处理。该材料的特征在于X射线衍射(XRD),N 2物理吸附,扫描电子显微镜,具有能量分散X射线光谱(SEMEDS),紫外 - 可见光反射光谱,紫外 - 可见光谱作为温度的函数(温度编程)TPR - 化学吸附,XPS(X射线光电子能谱)和oh测定通过漂移(漫反射红外傅里叶变换光谱)。评价Cu / Ti光催化剂使用肼作为清除剂的氢催化作用。此外,对Cu1 + / Cu2 +比例的详细研究和相应的氧化铜形成以了解铜物种与光催化活性之间的相关性。同时,TiO 2表面上的OH基团也显示出在光催化反应过程中对这些材料的行为的见解。尽管肼浓度低(20mm),1.0(重量%)Cu / Ti 500光催化剂分别增强了氢气产生了三倍,而不是光解和裸TiO2。 1.0 Cu / Ti 500光催化剂显示出8小时的至少三个连续循环的出色稳定性,保持氢气产生。本作作品中所示的新型能力代表了减少废水中的肼残留物,以将其转化为氢气产生的能源,并且必须延伸到废水中发现的其他还原污染物。

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