Ag-TiO2纳米复合材料:可见光还是太阳能驱动等离子体光催化?

L. Bach-Toledo, P. Peralta-Zamora, L. D. Prola
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摘要

对由太阳辐射辅助的光催化过程的需求刺激了现有系统的升级,如用贵金属修饰半导体。研究了Ag-TiO2对磺胺甲恶唑分子的合成、表征和光催化活性评价,并研究了等离子体现象在可见光(450 - 1000nm)和紫外-可见(315-800 nm)辐射下的意义。通过原位光还原在TiO2表面沉积Ag纳米粒子,合成不同比例的Ag/TiO2纳米复合材料,然后在400℃下煅烧2小时。采用紫外-可见漫反射(UV-Vis DRS)、扫描电镜(SEM)、透射电镜(TEM)、x射线能量色散光谱(EDS)对材料的化学物理性质进行了表征。实验在250W卤素灯照射下的冷却光化学反应器中进行。采用HPLC-DAD法监测磺胺甲恶唑的降解情况。虽然制备的光催化剂在500 nm处显示出强烈的等离子体带,但在人工可见光(≥450 nm)的辅助下,没有观察到光催化活性。在人工紫外-可见辐射辅助下,模型化合物(磺胺甲恶唑)的光解速率高于光催化速率,且在无紫外辐射的情况下,所有反应均被抑制。银纳米颗粒在TiO2表面的积极作用仅在涉及太阳辐射的研究中得到证实。结果表明,需要平衡紫外和可见辐射来激活纳米复合材料并进行磺胺甲恶唑的降解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ag-TiO2 Nanocomposites: visible or solar light driven plasmonic photocatalysis?
The demand for photocatalytic processes assisted by solar radiation has stimulated the upgrading of established systems, as the semiconductor modification with noble metals. the synthesis, characterization, and photocatalytic activity evaluation of the Ag-TiO2, against sulfamethoxazole molecule, and investigate the significance of the plasmonic phenomenon in Visible (450 - 1000nm) and UV-Vis (315-800 nm) radiation. Different nanocomposites Ag/TiO2 ratios were synthesized by the deposition of Ag nanoparticles on the TiO2 surface by in-situ photoreduction, and then calcinated at 400°C for 2 hr. The chemical-physical properties of the materials were examined by UV-Vis Diffuse Reflectance (UV-Vis DRS) Scanning Electronic Microscopy (SEM), Transmission Electronic Microscopy (TEM), X-Ray Energy Dispersive Spectroscopy (EDS). The experiments were conducted in a cooled photochemical reactor irradiated by halogen lamp (250W). The degradation of Sulfamethoxazole was monitored by HPLC-DAD. Although the prepared photocatalysts show an intense plasmonic band centered at 500 nm, no photocatalytic activity was observed in the process assisted by artificial visible radiation ( ≥ 450 nm). In processes assisted by artificial UV-Vis radiation, the photolysis rate of the model compound (sulfamethoxazole) was higher than the photocatalytic rate, and in the absence of UV radiation, all the reactions were inhibited. The positive effect of the presence of silver nanoparticles onto the TiO2 surface was only evidenced in studies involving solar radiation. The results suggest the need for a balance between UV and Vis radiation to activate the nanocomposite and perform the sulfamethoxazole degradation.
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