College of Environmental and Biological Engineering, Key laboratory of Catalysis Science and Technology of Chongqing Education Commission, Chongqing Technology and Business University, Chongqing, China.
J Hazard Mater. 2012 Jun 15;219-220:26-34. doi: 10.1016/j.jhazmat.2012.03.015. Epub 2012 Mar 14.
This research represents a highly enhanced visible light photocatalytic removal of 450 ppb level of nitric oxide (NO) in air by utilizing flower-like hierarchical porous BiOI/BiOCl composites synthesized by a room temperature template free method for the first time. The facile synthesis method avoids high temperature treatment, use of organic precursors and production of undesirable organic byproducts during synthesis process. The result indicated that the as-prepared BiOI/BiOCl composites samples were solid solution and were self-assembled hierarchically with single-crystal nanoplates. The aggregation of the self-assembled nanoplates resulted in the formation of 3D hierarchical porous architecture containing tri-model mesopores. The coupling to BiOI with BiOCl led to down-lowered valence band (VB) and up-lifted conduction band (CB) in contrast to BiOI, making the composites suitable for visible light excitation. The BiOI/BiOCl composites samples exhibited highly enhanced visible light photocatalytic activity for removal of NO in air due to the large surface areas and pore volume, hierarchical structure and modified band structure, exceeding that of P25, BiOI, C-doped TiO(2) and Bi(2)WO(6). This research results could provide a cost-effective approach for the synthesis of porous hierarchical materials and enhancement of photocatalyst performance for environmental and energetic applications owing to its low cost and easy scaling up.
本研究首次利用室温无模板法合成了花状分级多孔 BiOI/BiOCl 复合材料,实现了空气中 450ppb 级一氧化氮(NO)的高效可见光光催化去除。该简便的合成方法避免了高温处理、使用有机前体以及在合成过程中产生不良的有机副产物。结果表明,所制备的 BiOI/BiOCl 复合材料样品为固溶体,并通过单晶纳米板自组装形成分级多孔结构。自组装纳米板的聚集导致形成包含三模型介孔的 3D 分级多孔结构。与 BiOI 相比,BiOCl 的耦合导致价带(VB)下移和导带(CB)上移,使复合材料适合可见光激发。BiOI/BiOCl 复合材料样品由于具有较大的比表面积和孔体积、分级结构和改良的能带结构,表现出了对空气中 NO 的高效可见光光催化活性,其活性超过了 P25、BiOI、C 掺杂 TiO(2)和 Bi(2)WO(6)。由于其成本低、易于规模化,本研究结果为多孔分级材料的合成和光催化剂性能的提高提供了一种具有成本效益的方法,可应用于环境和能源领域。