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Silver-doped ZnO thin films with various loadings of Ag in the range of 0–10 mol% were prepared by the sol–gel dip-coating method. All prepared films show X-ray powder diffraction patterns that matched with ZnO in its würtzite structure. The grain size decreased as the Ag loading increased. The prepared films, under UV blacklight illumination, produced a photocatalytic degradation of methylene blue, rhodamine B and reactive orange solutions. Furthermore, they inhibited the growth of Escherichia coli bacteria under UV blacklight irradiation and to a lesser extent in dark conditions. The photocatalytic and antibacterial activities of the prepared films increased with Ag loading, presumably because Ag enhanced the efficiency of generation of superoxide anion radicals (O2 ) and hydroxyl radicals (OH).  相似文献   
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通过调节Na_3PO_4溶液中H_3PO_4的含量制得沉淀剂,AgNO_3与此沉淀剂反应制得Ag_3PO_4粉末.当沉淀剂pH=6时,所制得的Ag_3PO_4粉末表现出最高的光催化降解甲基蓝和罗丹明B活性.进一步添加KBr溶液修饰Ag_3PO_4可制得AgBr/Ag_3PO_4粉末.该光催化剂可使阴离子染料(如活性橙和甲基橙)脱色.采用适当的捕获剂考察了参与光催化降解过程的活性物种的抑制活性.光催化反应之后,质谱检测证实染料降解为更小的分子.以Chlorella vulgaris为生物指示剂考察了处理前后染料的生态毒性.  相似文献   
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Using a grinding method, nanocomposites of graphitic carbon nitride (g-C3N4) and magnesium aluminate (MgAl2O4) spinel were successfully synthesized for the photocatalytic degradation of methylene blue (MB) and methyl orange (MO). Variously formulated g-C3N4/MgAl2O4 nanocomposites were characterized by thermal gravimetric analysis (TGA), X-ray diffractometry (XRD), Fourier transform infrared spectroscopy (FTIR), X-ray photoelectron spectroscopy (XPS), scanning electron microscopy equipped with energy dispersive spectroscopy (SEM/EDS), transmission electron microscopy (TEM) and surface area and micropore analysis (BET surface area). The g-C3N4 powder exhibited a nanosheet structure whereas the MgAl2O4 spinel comprised agglomerated nanoparticles. The optical properties of the g-C3N4/MgAl2O4 nanocomposites were investigated by diffuse reflectance spectroscopy (DRS). As the g-C3N4 loading content increased from 0 to 30%, the optical band gap energy of the nanocomposite decreased from 3.84 to 2.86 eV, the specific surface area decreased from 153.78 to 114.45 m2/g, and the porosity decreased from 0.447 to 0.347 cm3/g. A 20%g-C3N4/MgAl2O4 nanocomposite proved to be the most effective photocatalyst and degraded MB faster and more completely than MO. The degradation rates of both MO (0.0107 min?1) and MB (0.0386 min?1) in a mixed MO-MB system were greater than the degradation rates in their single systems. The key factor that improved the photocatalytic degradation of MO was the synergistic effect whereas the synergistic effect and photosensitization were the key factors that enhanced the photocatalytic degradation of MB. The g-C3N4/MgAl2O4 nanocomposite is suitable for the photocatalytic degradation of mixed dyes because its point of zero charge is neutral and it is stable and recyclable.  相似文献   
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Radial spherical ZnO nanorods were synthesized directly from an aqueous zinc acetate dihydrate solution in the presence of the poly(ethylene oxide)-b-poly(propylene oxide) copolymer at a mole ratio of Zn2+:OH = 1:10. The diameter of the hexagonal facet and the length of each rod decreased with an increase of the copolymer concentrations. The blue-shift in the optical band gap was caused by an increase of the compressed lattice. The efficiency of photocatalytic degradation of methylene blue in aqueous solution increased with an increase of their surface areas. However, the decrease of their sizes did not improve their antibacterial activities.  相似文献   
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