Shanghai Key Laboratory of Atmospheric Particle Pollution & Prevention (LAP3), Department of Environmental Science & Engineering, Fudan University , Shanghai 200433, China.
School of Chemistry & Chemical Engineering, University of Jinan , Jinan 250022, China.
Environ Sci Technol. 2015 Dec 15;49(24):14460-5. doi: 10.1021/acs.est.5b03972. Epub 2015 Dec 4.
The development of catalysts with simultaneous resistance to alkalis and sulfur poisoning is of great importance for efficiently controlling NOx emissions using the selective catalytic reduction of NOx with NH3 (SCR), because the conventional V2O5/WO3-TiO2 catalysts often suffer severe deactivation by alkalis. Here, we support V2O5 on a hexagonal WO3 (HWO) to develop a V2O5/HWO catalyst, which has exceptional resistance to alkali and sulfur poisoning in the SCR reactions. A 350 μmol g(-1) K(+) loading and the presence of 1,300 mg m(-3) SO2 do not almost influence the SCR activity of the V2O5/HWO catalyst, and under the same conditions, the conventional V2O5/WO3-TiO2 catalysts completely lost the SCR activity within 4 h. The strong resistance to alkali and sulfur poisoning of the V2O5/HWO catalysts mainly originates from the hexagonal structure of the HWO. The HWO allows the V2O5 to be highly dispersed on the external surfaces for catalyzing the SCR reactions and has the relatively smooth surfaces and the size-suitable tunnels specifically for alkalis' diffusion and trapping. This work provides a useful strategy to develop SCR catalysts with exceptional resistance to alkali and sulfur poisoning for controlling NOx emissions from the stationary source and the mobile source.
开发同时具有耐碱和抗硫中毒能力的催化剂对于使用氨选择性催化还原 NOx(SCR)高效控制 NOx 排放具有重要意义,因为传统的 V2O5/WO3-TiO2 催化剂通常会因碱而严重失活。在这里,我们将 V2O5 负载在六方 WO3(HWO)上,开发了一种 V2O5/HWO 催化剂,该催化剂在 SCR 反应中具有出色的耐碱和抗硫中毒能力。350 μmol g(-1) 的 K(+) 负载和 1300 mg m(-3) 的 SO2 的存在几乎不会影响 V2O5/HWO 催化剂的 SCR 活性,而在相同条件下,传统的 V2O5/WO3-TiO2 催化剂在 4 小时内完全失去了 SCR 活性。V2O5/HWO 催化剂具有很强的耐碱和抗硫中毒能力,主要源于 HWO 的六方结构。HWO 允许 V2O5 高度分散在外部表面上,以催化 SCR 反应,并且具有相对光滑的表面和尺寸合适的隧道,专门用于碱的扩散和捕获。这项工作为开发具有耐碱和抗硫中毒能力的 SCR 催化剂提供了一个有用的策略,用于控制固定源和移动源的 NOx 排放。