Laboratory for Development & Application of Cold Plasma Technology, College of Chemistry and Chemical Engineering, Luoyang Normal University, Luoyang 471022, China.
School of Agriculture and Bioengineering, Heze University, Heze 274015, China.
Molecules. 2023 Jun 28;28(13):5073. doi: 10.3390/molecules28135073.
Flower-like cobalt-molybdenum mixed-oxide microspheres (CoMo-FMs) with hierarchical architecture were successfully synthesized via a hydrothermal process and subsequent calcination step. The characterization results show that CoMo-FMs were assembled from ultrathin mesoporous nanosheets with thicknesses of around 4.0 nm, providing the composite with a large pore volume and a massive surface area. The synthesized CoMo-FMs were employed as catalysts for the aerobic oxidative desulfurization (AODS) of fuel, and the reaction results show that the optimal catalyst (CoMo-FM-2) demonstrated an outstanding catalytic performance. Over CoMo-FM-2, various thiophenic sulfides could be effective removed at 80-110 °C under an atmospheric pressure, and a complete conversion of sulfides could be achieved in at least six consecutive cycles without a detectable change in chemical compositions. Further, the catalytic mechanism was explored by conducting systemic radical trapping and transformation experiments, and the excellent catalytic performance for CoMo-FMs should be mainly due to the synergistic effect of Mo and Co elements.
花状钴钼混合氧化物微球(CoMo-FMs)具有分级结构,通过水热法和随后的煅烧步骤成功合成。表征结果表明,CoMo-FMs 由厚度约为 4.0nm 的超薄介孔纳米片组装而成,为复合材料提供了大的孔体积和大量的表面积。所合成的 CoMo-FMs 被用作燃料的有氧氧化脱硫(AODS)的催化剂,反应结果表明,最佳催化剂(CoMo-FM-2)表现出优异的催化性能。在 CoMo-FM-2 上,在大气压下 80-110°C 下,可以有效地去除各种噻吩类硫化物,并且在至少六个连续循环中可以实现硫化物的完全转化,而化学组成没有可检测到的变化。此外,通过进行系统的自由基捕获和转化实验来探索催化机制,CoMo-FMs 的优异催化性能主要归因于 Mo 和 Co 元素的协同效应。