Department of Chemistry, Iran University of Science and Technology, Tehran, P. O. Box 16846-13114, Iran.
Young Researchers and Elite Club, Arak Branch, Islamic Azad University, Arak, Iran.
J Hazard Mater. 2019 Jan 5;361:210-220. doi: 10.1016/j.jhazmat.2018.08.092. Epub 2018 Sep 1.
In the present study, CuBiO/BiClO nanocomposites have been fabricated via an improved Pechini sol-gel process using the mixtures of various gelling agents and polybasic acids. This work shows that by controlling the reaction conditions such as kind of polybasic acids, gelling agents, pH and mole ratio of polybasic acid to total metals, the CuBiO/BiClO nanocomposites with ultrafine sphere-like, irregular polyhedral-like, plate-like and cubic-like morphologies were prepared. The phase, elemental composition, morphology and optical characteristics of as-synthesized CuBiO/BiClO nanostructures were analyzed utilizing UV-Vis, FESEM, TEM, HRTEM, FT-IR, XRD, TOC and EDS techniques. Furthermore, the CuBiO/BiClO nanocomposites exhibited excellent TOC removal (75%) and photocatalytic activity (92%) to photodegradation of acid brown 14 azo dye as water pollutants under visible light irradiation. The excellent degradation activity of CuBiO/BiClO photocatalyst can be attributed to the strong visible light absorption, high charge separation efficiency, fine particle size distribution and proper band gap of the nanocomposite. In addition, the reliable photocatalytic mechanism was discussed on the basis of the radical trapping study, which revealed the h and O radicals were the prevailing active species in the photocatalytic process.
在本研究中,通过使用不同的胶凝剂和多元酸的混合物,通过改进的 Pechini 溶胶-凝胶工艺制备了 CuBiO/BiClO 纳米复合材料。这项工作表明,通过控制反应条件,如多元酸的种类、胶凝剂、pH 值和多元酸与总金属的摩尔比,可以制备出具有超细球形、不规则多面体形、板形和立方体形形态的 CuBiO/BiClO 纳米复合材料。采用 UV-Vis、FESEM、TEM、HRTEM、FT-IR、XRD、TOC 和 EDS 技术分析了合成的 CuBiO/BiClO 纳米结构的物相、元素组成、形貌和光学特性。此外,在可见光照射下,CuBiO/BiClO 纳米复合材料作为水污染物,对酸性棕 14 偶氮染料的光降解具有优异的 TOC 去除率(75%)和光催化活性(92%)。CuBiO/BiClO 光催化剂具有优异的降解活性,归因于其对可见光的强吸收、高电荷分离效率、细粒径分布和合适的能带隙。此外,还基于自由基捕获研究讨论了可靠的光催化机制,表明 h 和 O 自由基是光催化过程中的主要活性物种。