Gas Engineering Department, Petroleum University of Technology, Ahwaz, Iran.
Department of Environmental Research, Institute for Color Science and Technology, Tehran, Iran.
J Environ Sci (China). 2015 Sep 1;35:194-207. doi: 10.1016/j.jes.2015.03.030. Epub 2015 Jul 4.
The current work deals with ZnO-Ag nanocomposites (in the wide range of x in the Zn1-xO-Agx chemical composition) synthesized using microwave assisted solution combustion method. The structural, morphological and optical properties of the samples were characterized by XRD (X-ray diffraction), FTIR (Fourier transform infrared spectrometry), SEM (scanning electron microscopy technique), EDX (energy dispersive X-ray spectrum), ICP (inductively coupled plasma technique), TEM (transmission electron microscopy), BET (Brunauer-Emmett-Teller method), UV-Vis (ultraviolet-visible spectrophotometer) and photoluminescence spectrophotometer. The photocatalytic activity of the ZnO-Ag was investigated by photo-degradation of Acid Blue 113 (AB 113) under UV illumination in a semi-batch reactor. This experiment showed that ZnO-Ag has much more excellent photocatalytic properties than ZnO synthesized by the same method. The enhanced photocatalytic activity was due to the decrease in recombination of photogenerated electron-holes. The results showed the improvement of ZnO photocatalytic activity and there is an optimum amount of Ag (3.5mol%) that needs to be doped with ZnO. The effect of operating parameters such as pH, catalyst dose and dye concentration were investigated. The reaction byproducts were identified by LC/MS (liquid chromatography/mass spectrometry) analysis and a pathway was proposed as well. Kinetic studies indicated that the decolorization process follows the first order kinetics. Also, the degradation percentage of AB 113 was determined using a total organic carbon (TOC) analyzer. Additionally, cost analysis of the process, the mechanism and the role of Ag were discussed.
目前的工作涉及使用微波辅助溶液燃烧法合成的 ZnO-Ag 纳米复合材料(在 Zn1-xO-Agx 化学成分的 x 宽范围内)。通过 XRD(X 射线衍射)、FTIR(傅里叶变换红外光谱)、SEM(扫描电子显微镜技术)、EDX(能量色散 X 射线光谱)、ICP(电感耦合等离子体技术)、TEM(透射电子显微镜)、BET(Brunauer-Emmett-Teller 方法)、UV-Vis(紫外可见分光光度计)和光致发光分光光度计对样品的结构、形态和光学性质进行了表征。在半分批反应器中,通过紫外光照射下 AB 113 的光降解研究了 ZnO-Ag 的光催化活性。该实验表明,与通过相同方法合成的 ZnO 相比,ZnO-Ag 具有更好的光催化性能。增强的光催化活性归因于光生电子-空穴复合的减少。结果表明,ZnO 的光催化活性得到了提高,需要掺杂 ZnO 的最佳 Ag 量(3.5mol%)。研究了 pH、催化剂剂量和染料浓度等操作参数的影响。通过液相色谱/质谱(LC/MS)分析鉴定了反应副产物,并提出了一种途径。动力学研究表明,脱色过程遵循一级动力学。此外,还使用总有机碳(TOC)分析仪确定了 AB 113 的降解百分比。此外,还讨论了工艺的成本分析、机理和 Ag 的作用。
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