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首页> 外文期刊>Separation and Purification Technology >Coupled removal of bisphenol A and copper ion by titanate nanotubes fabricated at different calcination temperatures
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Coupled removal of bisphenol A and copper ion by titanate nanotubes fabricated at different calcination temperatures

机译:在不同煅烧温度下制备的钛酸酯纳米管偶合去除双酚A和铜离子

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摘要

One-dimensional (1-D) nanotubes are promising nanostructured materials for a wide variety of environmental applications. In this study, the 1-D titanate nanotubes (TNTs) were fabricated using an alkaline hydrothermal method and then calcined at various temperatures ranging from 200 to 600 °C in air for 4 h for coupled removal of bisphenol A (BPA) and Cu(II) ion. The as-synthesized TNTs showed tubular structures with diameter of 8-10 nm and length of few urn. After calcination at 400-600 °C, the well-crystallized anatase TiO2 nanoparticles were produced on the tube walls to form titania/TNT nanocomposites, resulting in the decrease in specific surface area and the increase in isoelectric point. The as-synthesized and calcined TNTs have good Cu(ll) adsorption capacity, and the maximum Langmuir adsorption capabilities decreased from 160mg/g for as-synthesized TNTs to 35 mg/g for TNT-600, presumably due to the decrease in specific surface area. In addition, the calcined TNT showed a good photocatalytic activity towards BPA degradation when compared with the as-synthesized TNTs. The coexistence of Cu(II) ion and BPA exhibited the synergistic effect on the enhancement of photocatalytic activity of calcined TNTs. Electron spin resonance results indicated that the copper ion was first adsorbed onto the negatively charged TNTs, and then served as the electron trap to prolong to retention time of photo-generated radicals, resulting in the enhancement of photodegradation efficiency and rate of BPA by calcined TNTs.
机译:一维(1-D)纳米管是有前景的用于多种环境应用的纳米结构材料。在这项研究中,使用碱性水热法制备1-D钛酸酯纳米管(TNT),然后在200至600°C的不同温度下于空气中煅烧4小时,以偶联去除双酚A(BPA)和Cu( II)离子。合成后的TNT呈管状结构,直径为8-10 nm,长度为几。在400-600°C下煅烧后,在管壁上生成了结晶良好的锐钛矿型TiO2纳米颗粒,形成了二氧化钛/ TNT纳米复合材料,导致比表面积减小,等电点增大。合成和煅烧的TNT具有良好的Cu(II)吸附能力,最大Langmuir吸附能力从合成TNT的160mg / g降低到TNT-600的35mg / g,这可能是由于比表面积的降低区。另外,与合成后的TNT相比,煅烧的TNT对BPA降解表现出良好的光催化活性。 Cu(II)离子和BPA的共存对增强煅烧TNT的光催化活性具有协同作用。电子自旋共振结果表明,铜离子首先被吸附到带负电的TNT上,然后作为电子陷阱延长光生自由基的保留时间,从而提高了煅烧TNT的光降解效率和BPA的速率。

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