Multidisciplinary Research and Innovation Laboratory, Sultan Moulay Slimane University of Beni Mellal, FP Khouribga, BP.145, 2500, Khouribga, Morocco.
Univ Rennes, Ecole Nationale Supérieure de Chimie de Rennes, CNRS, ISCR-UMR 6226, F-35000, Rennes, France.
Environ Sci Pollut Res Int. 2024 Apr;31(17):25373-25387. doi: 10.1007/s11356-024-32841-w. Epub 2024 Mar 12.
MnO/ZnO-AlO-CeO catalyst was synthesized through a solid-state process from a 3% Mn-doped Zn-(Al/Ce) layered double hydroxide structure. Detailed structural and optical characterization using XRD, FTIR, UV-visible DRS, and TEM was conducted. By investigating clofibric acid (CA) degradation in aqueous solution, MnO/ZnO-AlO-CeO photocatalytic activity was evaluated. The results show that the heterostructure mixed oxide catalyst has excellent CA photodegradation performance. Further, the characterization reveals that such photocatalytic efficiency can be attributed to two facts that are summarized in the optical properties and the synergic effect between Mn and Ce elements. The sample demonstrated a narrow band gap of 2.34 eV based on DRS. According to the experimental results of the photodegradation, after 120 min of irradiation, the photocatalyst exhibited the highest photocatalytic activity, with a degradation efficiency of 93.6%. Optimization outcomes indicated that maximum degradation efficiency was attained under the following optimum conditions: catalyst dose of 0.3 g/L, initial dye concentration of 20 mg/L, pH 3.86, and 120 min of reaction time. The quenching test demonstrates that photogenerated electrons and superoxide radicals are the most powerful reactive species. The catalyst could be useful in decreasing the photogenerated charges recombination, which offers more redox cycles simultaneously during the catalytic process. The strong Ce-Mn interaction and the formation of their different oxidation states offer a high degradation efficiency by facilitating electron-hole transfer. The introduction of MnO in the catalyst can effectively improve the visible absorption properties, which are beneficial in the photocatalytic process by reaching a high catalytic efficiency at a low cost.
MnO/ZnO-AlO-CeO 催化剂是通过 3% Mn 掺杂的 Zn-(Al/Ce) 层状双氢氧化物结构的固态过程合成的。采用 XRD、FTIR、UV-Vis DRS 和 TEM 对其进行了详细的结构和光学表征。通过研究水溶液中环丙沙星(CA)的降解,评估了 MnO/ZnO-AlO-CeO 光催化活性。结果表明,杂化结构混合氧化物催化剂具有优异的 CA 光降解性能。此外,表征表明,这种光催化效率可以归因于两个事实,即总结在光学性质和 Mn 和 Ce 元素之间的协同效应。根据 DRS 的结果,该样品表现出 2.34 eV 的窄带隙。根据光降解的实验结果,在照射 120 分钟后,催化剂表现出最高的光催化活性,降解效率为 93.6%。优化结果表明,在以下最佳条件下可达到最大降解效率:催化剂用量 0.3 g/L、初始染料浓度 20 mg/L、pH 值 3.86 和反应时间 120 分钟。猝灭实验表明,光生电子和超氧自由基是最强的活性物质。该催化剂可用于减少光生电荷的复合,同时在催化过程中提供更多的氧化还原循环。Ce-Mn 强相互作用和不同氧化态的形成通过促进电子-空穴转移提供了高的降解效率。催化剂中 MnO 的引入可以有效地提高可见光吸收性能,这有利于在光催化过程中以低成本达到高的催化效率。